Page last updated: 2024-12-04

catechin

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Description

(+)-catechin monohydrate : The monohydrate of (+)-catechin. [Chemical Entities of Biological Interest (ChEBI), Hastings J, Owen G, Dekker A, Ennis M, Kale N, Muthukrishnan V, Turner S, Swainston N, Mendes P, Steinbeck C. (2016). ChEBI in 2016: Improved services and an expanding collection of metabolites. Nucleic Acids Res]

Catechin: An antioxidant flavonoid, occurring especially in woody plants as both (+)-catechin and (-)-epicatechin (cis) forms. [Medical Subject Headings (MeSH), National Library of Medicine, extracted Dec-2023]

catechin : Members of the class of hydroxyflavan that have a flavan-3-ol skeleton and its substituted derivatives. [Chemical Entities of Biological Interest (ChEBI), Hastings J, Owen G, Dekker A, Ennis M, Kale N, Muthukrishnan V, Turner S, Swainston N, Mendes P, Steinbeck C. (2016). ChEBI in 2016: Improved services and an expanding collection of metabolites. Nucleic Acids Res]

rac-catechin : A racemate comprising equimolar amounts of (+)- and (-)-catechin [Chemical Entities of Biological Interest (ChEBI), Hastings J, Owen G, Dekker A, Ennis M, Kale N, Muthukrishnan V, Turner S, Swainston N, Mendes P, Steinbeck C. (2016). ChEBI in 2016: Improved services and an expanding collection of metabolites. Nucleic Acids Res]

(+)-catechin : The (+)-enantiomer of catechin and a polyphenolic antioxidant plant metabolite. [Chemical Entities of Biological Interest (ChEBI), Hastings J, Owen G, Dekker A, Ennis M, Kale N, Muthukrishnan V, Turner S, Swainston N, Mendes P, Steinbeck C. (2016). ChEBI in 2016: Improved services and an expanding collection of metabolites. Nucleic Acids Res]

Cross-References

ID SourceID
PubMed CID1203
CHEMBL ID206452
CHEBI ID23053
SCHEMBL ID19411
SCHEMBL ID10001669
MeSH IDM0003638
PubMed CID107957
CHEMBL ID1256783
CHEBI ID58994
SCHEMBL ID133974
MeSH IDM0003638
PubMed CID24871278
CHEMBL ID1172228
SCHEMBL ID133975
MeSH IDM0003638
PubMed CID9064
CHEMBL ID311498
CHEBI ID15600
SCHEMBL ID19741
MeSH IDM0003638

Synonyms (364)

Synonym
PRESTWICK3_000817
BRD-A61899133-002-02-2
17334-50-8
epicatechol, (-)-
l-epicatechin
2-(3,4-dihydroxyphenyl)chromane-3,5,7-triol
AB00513926
(+/-)-catechin
7295-85-4
NCGC00095270-01
NCGC00095270-02
BPBIO1_000785
BSPBIO_000713
714E3A52-14F7-4C41-BF5D-1DAA0C81FCC5
(+)-3,3',4',5,7-flavanpentol
HMS1664H16
C17590
chebi:23053 ,
CHEMBL206452
2-(3,4-dihydroxyphenyl)-3,4-dihydro-2h-chromene-3,5,7-triol
NCGC00015215-02
2-(3,4-dihydroxyphenyl)-3,4-dihydro-2h-1-benzopyran-3,5,7-triol
epicatechin, (+/-)-
nsc 81162
einecs 241-357-4
cis-(1)-2-(3,4-dihydroxyphenyl)-3,4-dihydro-2h-1-benzopyran-3,5,7-triol
(2r,3r)-2-(3,4-dihydroxyphenyl)-3,4-dihydro-1(2h)-benzopyran-3,5,7-triol
13392-26-2
AKOS016009549
NCGC00015215-04
NCGC00015215-03
trans-2-(3,4-dihydroxyphenyl)-3,4-dihydro-1(2h)-benzopyran-3,5,7-triol
FT-0636422
FT-0604384
FT-0614024
FT-0613995
2-(3,4-dihydroxyphenyl)chroman-3,5,7-triol
SCHEMBL19411
catechins
SCHEMBL10001669
epi-?catechin 3-?o-?gallate
2-(3,4-dihydroxyphenyl)-3,5,7-chromanetriol #
(?)-cis-3,3',4',5,7-pentahydroxyflavane
mfcd00075648
trans-3,3',4',5,7-pentahydroxyflavane
2h-1-benzopyran-3,5,7-triol,2-(3,4-dihydroxyphenyl)-3,4-dihydro-
bdbm50479045
ec (c)
epct-pl
Q51617472
BS-15212
(+)-catechin;cianidanol;catechuic acid
dl-catechin; racemic catechin; dl-catechin; dl-catechol; rac-catechin
catechin (hydrate)
DTXSID10859304
(-)-catechinhydrate
SB18952
2h-1-benzopyran-3,5,7-triol, 2-(3,4-dihydroxyphenyl)-3,4-dihydro-,(2r,3s)-rel-
mfcd00066757
D70844
cis-(+/-)-2-(3,4-dihydroxyphenyl)-3,4-dihydro-2h-1-benzopyran-3,5,7-triol
AB85826
CS-0157109
SY066787
(2r-trans)-2-(3,4-dihydroxyphenyl)-3,4-dihydro-2h-1-benzopyran-3,5,7-triol monohydrate
(+)-catechin monohydrate
(2r,3s)-2-(3,4-dihydroxyphenyl)chromane-3,5,7-triol--water (1/1)
CHEBI:58994 ,
(2r,3s)-2-(3,4-dihydroxyphenyl)-3,4-dihydro-1(2h)-benzopyran-3,5,7-triol
S00276
(+)-catechin hydrate
(+)-cyanidol-3
cianidanol (jan/inn)
D00200
(+)-catechin hydrate, >=96.0% (sum of enantiomers, hplc)
catechin hydrate ,
smr000326724
MLS001056745 ,
(+)-catechin hydrate, >=98% (hplc), powder
88191-48-4
CHEMBL1256783
HMS2233I24
2h-1-benzopyran-3,5,7-triol, 2-(3,4-dihydroxyphenyl)-3,4-dihydro-, monohydrate, (2r,3s)-
2-(3,4-dihydroxyphenyl)-3,4-dihydro-2h-1-benzopyran-3,5,7-triol monohydrate, (2r-trans)-
2h-1-benzopyran-3,5,7-triol, 2-(3,4-dihydroxyphenyl)-3,4-dihydro-, monohydrate, (2r-trans)-
225937-10-0
SCHEMBL133974
(2r,3s)-2-(3,4-dihydroxyphenyl)chroman-3,5,7-triol hydrate
d-catechin hydrate
W-104471
(2r,3s)-2-(3,4-dihydroxyphenyl)-3,4-dihydro-2h-chromene-3,5,7-triol;hydrate
DS-2787
(2r,3s)-2-(3,4-dihydroxyphenyl)-3,4-dihydro-2h-1-benzopyran-3,5,7-triol hydrate
HMS3649E10
mfcd00149354
mfcd00150865
(+/-)-catechin hydrate, purum, >=96.0% (hplc)
(+/-)-catechin hydrate, primary pharmaceutical reference standard
SR-01000075742-11
(+)-catechin xhydrate
Q27126384
SR-01000075742-15
(+)-3,3',4',5,7-flavanpentol . h2o
DTXSID801007988
AKOS016843747
(2r,3s)-2-(3,4-dihydroxyphenyl)-chroman-3,5,7-triol hydrate
(+/-)-catechin (hydrate)
MLS002154016
smr001233344
catechin-(+,-) hydrate
NCGC00180935-01
(+/-)-catechin hydrate
CHEMBL1172228
dl-catechin trihydrate
2-(3,4-dihydroxyphenyl)-3,4-dihydro-2h-1-benzopyran-3,5,7-triol hydrate
A837686
2-[3,4-bis(oxidanyl)phenyl]-3,4-dihydro-2h-chromene-3,5,7-triol hydrate
HMS2097D15
HMS2233I18
FT-0644060
(+)-catechin (hydrate)
HMS3373N02
HMS3373F21
SCHEMBL133975
2-(3,4-dihydroxyphenyl)chromane-3,5,7-triol hydrate
AKOS026750617
J-014775
2-(3,4-dihydroxyphenyl)chroman-3,5,7-triol hydrate
3,3',4',5,7-flavanpentol hydrate
1184921-04-7
AS-19538
2-(3,4-dihydroxyphenyl)-3,4-dihydro-2h-chromene-3,5,7-triol;hydrate
(-)-cianidanol;(-)-catechuic acid
STARBLD0012191
BIDD:ER0378
BRD-K58736316-001-07-9
2h-1-benzopyran-3,7-triol, 2-(3,4-dihydroxyphenyl)-3,4-dihydro-, (2r-trans)-
(+)-catechol
catechin
nsc2819 ,
catergen
nsc-2819
catechin, d
catechinic acid
3-cyanidanol, (+)-
catechol (+)
cianidol
catechuic acid
catechin (flavan)
catechol (flavan)
(+)-cyanidan-3-ol
(+)-(2r,3s)-5,7,3',4'-tetrahydroxyflavan-3-ol
CHEBI:15600 ,
(2r,3s)-2-(3,4-dihydroxyphenyl)-3,4-dihydro-1h-chromene-3,5,7-triol
(+)-3',4',5,7-tetrahydroxy-2,3-trans-flavan-3-ol
KBIO1_000647
DIVK1C_000647
NCI60_002303
SDCCGMLS-0066526.P001
(2r,3s)-2-(3,4-dihydroxyphenyl)-3,4-dihydro-2h-chromene-3,5,7-triol
gambier
cutch (dye)
katha
catechu
EU-0100219
transepar
(2r,3s)-3,3',4',5,7-flavanpentol
cianidanol [inn:jan]
einecs 205-825-1
2,3-dihydro-4-desoxoquercetin
nsc 2819
cianidanolum [inn-latin]
SPECTRUM4_001763
SPECTRUM_000395
PRESTWICK2_000642
PRESTWICK_998
tnp00270
NCGC00017331-01
BSPBIO_001624
LOPAC0_000219
BSPBIO_000643
PRESTWICK2_000817
ACON1_001489
BPBIO1_000709
PRESTWICK3_000642
IDI1_000647
321-01-7
(+)-cianidanol
2-(3,4-dihydroxyphenyl)-3,4-dihydro-2h-1-benzopyran-3,5,7-triol, (2r-trans)
(+)-cyanidanol
nd-0342
3,3',4',5,7-flavanpentol
d-(+)-catechin
(2r,3s)-2-(3,4-dihydroxyphenyl)chromane-3,5,7-triol
2h-1-benzopyran-3,5,7-triol, 2-(3,4-dihydroxyphenyl)-3,4-dihydro-, (2r-trans)-
(2r-trans)-2-(3,4-dihydroxyphenyl)-3-4-dihydro-2h-1-benzopyran-3,5,7-triol
biocatechin
2h-1-benzopyran-3,5,7-triol, 2-(3,4-dihydroxyphenyl)-3,4-dihydro-, (2r,3s)-
sunkatol no. 1
kb-53
teafuran 30a
(+)-(2r:3s)-5,7,3',4'-tetrahydroxyflavan-3-ol
trans-(+)-3,3',4',5,7-flavanpentol
dexcyanidanol
ai3-22757
d-catechol
(+)-cyanidanol-3
ccris 6855
154-23-4
(2r,3s)-catechin
cianidanol
(2r,3s)-(+)-catechin
(+)-catechin
cyanidanol
(2r-trans)-2-(3,4-dihydroxyphenyl)-3,4-dihydro-2h-1-benzopyran-3,5,7-triol
d-catechin
C06562
dl-catechin
NCGC00093689-02
KBIO3_001124
KBIO2_003443
KBIOSS_000875
KBIO2_000875
KBIOGR_002245
KBIO2_006011
PRESTWICK0_000817
PRESTWICK1_000817
SPECTRUM3_000242
NINDS_000647
PRESTWICK1_000642
SPBIO_002634
SPBIO_000033
SPECTRUM2_000167
SPBIO_002564
PRESTWICK0_000642
SPECTRUM5_000345
(2r,3s)-2-(3,4-dihydroxyphenyl)-3,4-dihydro-2h-1-benzopyran-3,5,7-triol
bdbm23416
NCGC00093689-03
NCGC00093689-01
chembl311498 ,
zyma
z 7300
cyanidanol-3
kb 53
inchi=1/c15h14o6/c16-8-4-11(18)9-6-13(20)15(21-14(9)5-8)7-1-2-10(17)12(19)3-7/h1-5,13,15-20h,6h2/t13-,15+/m0/s
2,3-trans-catechin
LMPK12020001
NCGC00017331-02
D4A04A57-7609-451F-A446-53F4DFAD15F5
C 1251
AC-11608
kxn ,
NCGC00017331-05
HMS502A09
HMS1570D15
HMS1570A05
A809512
HMS2097A05
HMS3260L19
(3s,2r)-2-(3,4-dihydroxyphenyl)chromane-3,5,7-triol
(+)-2-(3,4-dihydroxyphenyl)-3,5,7-chromantriol
cianidanolum
8r1v1stn48 ,
unii-8r1v1stn48
100786-01-4
catechin, d-
nsc755824
pharmakon1600-00210205
nsc-755824
(2r,3s)-2-(3,4-dihydroxyphenyl)chroman-3,5,7-triol
S3974
S4722
AKOS015960546
CCG-40007
NCGC00017331-03
NCGC00017331-04
(+-)-catechin
dl-catechol
catechine dl-form
unii-5j4y243w61
trans-2-(3,4-dihydroxyphenyl)-3,4-dihydro-2h-1-benzopyran-3,5,7-triol
5j4y243w61 ,
einecs 230-731-2
( inverted exclamation marka)-catechin hydrate
LP00219
(+)-catechin (constituent of maritime pine) [dsc]
(+)-catechin [usp-rs]
cianidanol [inn]
catechin [mi]
cianidanol [mart.]
cianidanol [who-dd]
catechin [vandf]
cianidanol [jan]
EPITOPE ID:116872
4C94
catechin dl-form [mi]
racemic catechin
rac-catechin
2h-1-benzopyran-3,5,7-triol, 2-(3,4-dihydroxyphenyl)-3,4-dihydro-, (2s,3r)-rel-
(+/-)-catechol
cianidanol, (+/-)-
catechin, dl-
catechol, (+/-)-
SCHEMBL19741
NCGC00260904-01
tox21_500219
CS-3759
(2r,3s)-2-(3,4-dihydroxyphenyl)chroman-3,5,7-triol;hydrate
(2r,3s)-2-(3,4-dihydroxyphenyl)-3,4-dihydro-2h-1-benzopyran-3,5,7-triol;hydrate
bdbm60836
(2r,3s)-2-[3,4-bis(oxidanyl)phenyl]-3,4-dihydro-2h-chromene-3,5,7-triol;hydrate
cid_107957
Q-100183
HY-N0898
AB00051886_13
mfcd00075649
DTXSID3022322 ,
sr-01000075742
SR-01000075742-14
(+)-catechin, united states pharmacopeia (usp) reference standard
(+)-catechin, analytical standard
catechinate
yk-85 light yellow powder 85
trans3,3,4,5,7 pentahydroxyflavane
catechuate
AS-72772
SR-01000075742-7
SR-01000075742-10
SR-01000075742-8
SR-01000075742-1
SR-01000075742-12
SR-01000075742-9
natural brown 3 (cutch extra or gambier)
SBI-0050207.P003
(+)-catechin, pharmaceutical secondary standard; certified reference material
Q415007
DB14086
(+)-catechin,(s)
drenoliver
tanningenic acid
BRD-K58736316-001-08-7
SDCCGSBI-0050207.P004
NCGC00017331-19
STL570276
H10916
D95105
(+/-)-catechin 1000 microg/ml in acetonitrile
(+)-catechin 1000 microg/ml in acetonitrile
A878497
(+)-catechin 1000 microg/ml in acetone
dl-catechine
DTXSID001349029
EN300-6498629
AC-35859
dtxcid202322
(+)-catechin (constituent of powdered decaffeinated green tea extract)
(+)-catechin (constituent of grape seeds oligomeric proanthocyanidins)
(+)-catechin (usp-rs)
cianidanol (mart.)
(+)-catechin (constituent of maritime pine)
cianidanolum (inn-latin)
slim 2
154-23-4 , anhydride

Research Excerpts

Toxicity

Daily intake of a standardized, decaffeinated, catechin mixture containing 200 mg EGCG BID taken with food for 1 year accumulated in plasma and was well tolerated and did not produce treatment related adverse effects in men with baseline HGPIN or ASAP.

ExcerptReferenceRelevance
" The hepatoprotective agents dithiocarb and (+)-cyanidanol-3 proved well able to antagonize these toxic effects of VDC."( Effects of dithiocarb and (+)-cyanidanol-3 on the hepatotoxicity and metabolism of vinylidene chloride in rats.
Schmitt, G; Siegers, CP; Younes, M, 1979
)
0.26
"0 mg/ml could protect the hepatocytes against the toxic effects of CCl4 and d-GalN."( [Effect of d-catechin on carbon tetrachloride- and d-galactosamine-induced cytotoxicity in primary cultured rat hepatocytes].
Fang, R, 1992
)
0.28
" NT was less toxic than its parent compound, AT."( Protective effect of flavonoids on drug-induced hepatotoxicity in vitro.
Acosta, D; Davila, JC; Lenherr, A, 1989
)
0.28
" (+)-Cyanidanol-3 was not toxic at concentrations up to 2 x 10(-3)M, but no obvious protective effect from AFB1-induced injury was evidenced in human cells."( Differential response of primary cultures of human and rat hepatocytes to aflatoxin B1-induced cytotoxicity and protection by the hepatoprotective agent (+)-cyanidanol-3.
Baffet, G; Bégué, JM; Campion, JP; Guillouzo, A, 1988
)
0.27
" Our studies on the evaluation of some histidine decarboxylase inhibitors show that these compounds have a promising potential for developing an effective and safe anti-ulcer drug."( Histidine decarboxylase inhibition: a novel approach towards the development of an effective and safe gastric anti-ulcer drug.
Gulati, OP; Hennings, G; Parmar, NS, 1984
)
0.27
" Several reports suggest that oxygen free radicals produced during the metabolic activation of dox may have toxic effects on heart muscle."( Prevention of doxorubicin induced cardiotoxicity by catechin.
Güran, Z; Kozluca, O; Kulaksiz, T; Olcay, E; Sürücü, S; Uskent, N, 1996
)
0.29
" GTE was not toxic and no harmful effect was found during its clinical use."( Inhibitory effects and toxicity of green tea polyphenols for gastrointestinal carcinogenesis.
Iwata, Y; Kikuoka, N; Kitao, Y; Matsumoto, H; Nakatani, H; Oya, K; Takahashi, T; Yamane, T, 1996
)
0.29
" A screening assay has been developed based on protection of human liver-derived HepG2 cells against toxic damage."( Screening of hepatoprotective plant components using a HepG2 cell cytotoxicity assay.
Hughes, RD; McFarlane, IG; Thabrew, MI, 1997
)
0.3
" There were no serious adverse events or laboratory abnormalities."( A double blind, randomized, placebo-controlled phase II study to assess the safety and efficacy of orally administered SP-303 for the symptomatic treatment of diarrhea in patients with AIDS.
Holodniy, M; Khandwala, A; Koch, J; Mistal, M; Pennington, JE; Porter, SB; Schmidt, JM, 1999
)
0.3
"SP-303 is safe and well tolerated."( A double blind, randomized, placebo-controlled phase II study to assess the safety and efficacy of orally administered SP-303 for the symptomatic treatment of diarrhea in patients with AIDS.
Holodniy, M; Khandwala, A; Koch, J; Mistal, M; Pennington, JE; Porter, SB; Schmidt, JM, 1999
)
0.3
" Catechin suppresses lipid peroxidation and increases enzyme activity, therefore it seems to be capable of protecting liver parenchyma against the direct toxic effect of halothane."( Hepatobiliary scintigraphy for evaluating the hepatotoxic effect of halothane and the protective effect of catechin in comparison with histo-chemical analysis of liver tissue.
Ciftçi, S; Karamanlioğlu, B; Salihoğlu, YS; Temiz, E; Yüksel, M, 2002
)
0.31
" In the present study we investigated whether vitamin E and catechin can reduce the toxic effects of idarubicin."( Protective role of antioxidant vitamin E and catechin on idarubicin-induced cardiotoxicity in rats.
Ates, A; Candan, S; Kalender, S; Kalender, Y; Olcay, E; Yel, M, 2002
)
0.31
" These results indicate that Poly E, although toxic at high doses (2,000 mg/kg/day), poses minimal genotoxic concern."( Genotoxicity and toxicity of the potential cancer-preventive agent polyphenon E.
Bakke, JP; Chang, PY; Crowell, JA; Fairchild, D; Hara, Y; Lee, PS; Mirsalis, J; Phillips, S; Riccio, ES; Shimon, J, 2003
)
0.32
"To study the protective effects of green tea (-)-epicatechin (EC) against the toxic effects of streptozotocin (STZ), a selective beta cell toxin, on pancreatic islets in vivo and in vitro."( Protective effects of epicatechin against the toxic effects of streptozotocin on rat pancreatic islets: in vivo and in vitro.
Chung, JS; Hahn, SJ; Jo, YH; Kim, MJ; Kim, MS; Min, DS; Rhie, DJ; Ryu, GR; Sim, SS; Yoon, SH, 2003
)
0.32
"We conclude that it is safe for healthy individuals to take green tea polyphenol products in amounts equivalent to the EGCG content in 8-16 cups of green tea once a day or in divided doses twice a day for 4 weeks."( Pharmacokinetics and safety of green tea polyphenols after multiple-dose administration of epigallocatechin gallate and polyphenon E in healthy individuals.
Alberts, DS; Brooks, CA; Cai, Y; Chow, HH; Crowell, JA; Dorr, RT; Hakim, IA; Hara, Y; Shahi, F, 2003
)
0.32
"beta-Amyloid peptide (beta-AP) elicits a toxic effect on neurons in vitro and in vivo."( Synergistic protection of PC12 cells from beta-amyloid toxicity by resveratrol and catechin.
Conte, A; Pellegrini, S; Tagliazucchi, D, 2003
)
0.32
"Functional foods need to be assessed for beneficial effects to support claims, but also for toxic effects."( Initial in vitro toxicity testing of functional foods rich in catechins and anthocyanins in human cells.
Böhm, V; Glei, M; Matuschek, M; Persin, C; Pool-Zobel, BL; Steiner, C,
)
0.13
" The antiproliferative effects of tea polyphenolic extracts and EGCG were more pronounced towards immortalized, tumourigenic (CAL27, HSC-2, and HSG(1)) and non-tumourigenic (S-G) cells than towards normal (GN56 and HGF-1) fibroblasts and green tea was more toxic than black tea."( In vitro cytotoxicity of epigallocatechin gallate and tea extracts to cancerous and normal cells from the human oral cavity.
Babich, H; Sedaghat, T; Weisburg, JH; Weissman, DB, 2004
)
0.32
"Nephrotoxicity is a clinically important side effect of cyclosporine (CsA)."( Effect of epigallocatechin gallate on renal function in cyclosporine-induced nephrotoxicity.
Chang, EJ; Mun, KC, 2004
)
0.32
" In the present study we investigated whether vitamin E and catechin can reduce the toxic effects of doxorubicin."( Doxorubicin hepatotoxicity and hepatic free radical metabolism in rats. The effects of vitamin E and catechin.
Kalender, S; Kalender, Y; Yel, M, 2005
)
0.33
" The dietary administration of EGCG preparation to rats for 13 weeks was not toxic at doses up to 500 mg/kg/day."( Safety studies on epigallocatechin gallate (EGCG) preparations. Part 2: dermal, acute and short-term toxicity studies.
Bausch, J; Davidovich, A; Edwards, JA; Isbrucker, RA; Wolz, E, 2006
)
0.33
" A two-generation study in rats fed 1200, 3600 or 12,000 ppm EGCG preparation showed no adverse effects on reproduction or fertility."( Safety studies on epigallocatechin gallate (EGCG) preparations. Part 3: teratogenicity and reproductive toxicity studies in rats.
Bausch, J; Davidovich, A; Edwards, JA; Isbrucker, RA; Wolz, E, 2006
)
0.33
" The compounds with a gallate group were more toxic than the corresponding products without one."( Comparative study of the cytotoxicity induced by antioxidant epicatechin conjugates obtained from grape.
Lozano, C; Mitjans, M; Torres, JL; Ugartondo, V; Vinardell, MP, 2006
)
0.33
" In a single dose toxicity study administration of Oligonol (2000mg/kg bw) by gavage for 4 weeks was found to be safe with no side effects (such as abnormal behavior and alopecia)."( Evaluation of the safety and toxicity of the oligomerized polyphenol Oligonol.
Aruoma, OI; Fujii, H; Hirose, A; Nishioka, H; Sun, B, 2007
)
0.34
" Assays were performed in treated cells to evaluate the ability of EGCG to prevent the toxic effects of EtOH."( Epigallocatechin-3-gallate(-)protects Chang liver cells against ethanol-induced cytotoxicity and apoptosis.
Anuradha, CV; Gunasekaran, P; Kaviarasan, S; Ramamurthy, N; Varalakshmi, E, 2007
)
0.34
" This data provides useful information to help design safe antioxidant products that act without altering critical cell functions."( Comparative antioxidant and cytotoxic effect of procyanidin fractions from grape and pine.
Mitjans, M; Torres, JL; Touriño, S; Ugartondo, V; Vinardell, MP, 2007
)
0.34
" For these agents, normal dietary intake, doses used in clinical trials, efficacious doses in rodents, and where available, toxic doses are compared."( Putative cancer chemopreventive agents of dietary origin-how safe are they?
Gescher, AJ; Steward, WP; Verschoyle, RD, 2007
)
0.34
" The objective of the present study was to evaluate potential adverse effects, if any, of two standardized green tea catechin (GTC) preparations: one that underwent heat sterilization (GTC-H) and one that was not heat-sterilized (GTC-UH)."( 28-Day oral (gavage) toxicity studies of green tea catechins prepared for beverages in rats.
Beck, MJ; Chengelis, CP; Kirkpatrick, JB; Morita, O; Radovsky, AE; Regan, KS; Suzuki, H; Tamaki, Y, 2008
)
0.35
" Ingestion of the catechin-rich beverage was not associated with any adverse effects."( Catechin safely improved higher levels of fatness, blood pressure, and cholesterol in children.
Kamimaki, I; Matsuyama, T; Nagao, T; Tanaka, Y; Tokimitsu, I, 2008
)
0.35
" Oligonol caused no adverse effects and body weight gain and food consumption were within normal range, thus the LD(50) of Oligonol was determined to be greater than 2000mg/kg."( Acute, subchronic and genotoxicity studies conducted with Oligonol, an oligomerized polyphenol formulated from lychee and green tea extracts.
Fujii, H; Magnuson, BA; Nishioka, H; Roberts, A; Wakame, K, 2008
)
0.35
"OBJECTIVE; Cadmium (Cd) is one of the most toxic and carcinogenic heavy metals to organisms."( Role of +(-)catechin against cadmium toxicity in the rat testes.
Dursun, S; Ozdemir, S, 2009
)
0.35
" On oxidation, polyphenols with B-ring catechol functionality form toxic alkylating quinones that are normally inactivated by cellular antioxidant defense and redox maintenance systems, including reduction by ascorbate and NAD(P)H:quinone oxidoreductase 1 (NQO1)."( Polyphenol cytotoxicity induced by the bacterial toxin pyocyanin: role of NQO1.
Muller, M, 2009
)
0.35
" In the present study, potential adverse effects of a standardized heat-sterilized green tea catechin (GTC-H) preparation was investigated following gavage administration to rats at doses of 0, 120, 400, 1200 mg/kg/day for 6 months."( Safety assessment of heat-sterilized green tea catechin preparation: a 6-month repeat-dose study in rats.
Beck, MJ; Bruner, RH; Chengelis, CP; Kirkpatrick, JB; Morita, O; Tamaki, Y, 2009
)
0.35
"This study evaluates the toxic effects of catechol (a component from cigarette smoke) on Müller cells (MIO-M1) in vitro, and investigates the inhibitors memantine and epicatechin to determine if they can reverse the catechol toxic effects."( Protective effects of memantine and epicatechin on catechol-induced toxicity on Müller cells in vitro.
Gupta, N; Kenney, MC; Kuppermann, BD; Limb, GA; Luczy-Bachman, G; Mansoor, S, 2010
)
0.36
" Results obtained showed that, CyA exert its toxic effect by increasing the free radicals and ROS that causes lipid peroxidation and cell damage, this is detected by elevation of hydroperoxides and thiobarbituric acid reactive substances, while the activities of antioxidant enzymes include (superoxide dismutase [SOD], catalase [CAT] and glutathione peroxidase [GPx]) were significantly decreased as compared with control rats."( The protective effect of epicatchin against oxidative stress and nephrotoxicity in rats induced by cyclosporine.
Al-Malki, AL; Moselhy, SS, 2011
)
0.37
" Amyloid fibrils formed from IAPP, intermediates generated in the assembly of IAPP amyloid, or both are toxic to β-cells, suggesting that islet amyloid formation may contribute to the pathology of type 2 diabetes."( The flavanol (-)-epigallocatechin 3-gallate inhibits amyloid formation by islet amyloid polypeptide, disaggregates amyloid fibrils, and protects cultured cells against IAPP-induced toxicity.
Abedini, A; Meng, F; Plesner, A; Raleigh, DP; Verchere, CB, 2010
)
0.36
" The flavocoxid group had significantly fewer upper gastrointestinal (UGI) and renal (edema) adverse events (AEs) as well as a strong trend toward fewer respiratory AEs."( Efficacy and safety of flavocoxid, a novel therapeutic, compared with naproxen: a randomized multicenter controlled trial in subjects with osteoarthritis of the knee.
Bart, B; Bell, M; Burnett, BP; Caldron, P; Ermolova, T; Kantemirova, R; Khokhlov, A; Kopenkin, S; Levy, RM; Mazurov, V; Pillai, L, 2010
)
0.36
" It is obvious that hawthorn, particularly flavonoids constituents with antioxidative activity, reduced the oxidative stress and genotoxicity induced by toxic compounds."( Protective effect of hawthorn extract against genotoxicity induced by methyl methanesulfonate in human lymphocytes.
Azadbakht, M; Hosseinimehr, SJ; Mahmodzadeh, A; Mohammadifar, S; Tanha, M, 2011
)
0.37
"Arsenic trioxide (ATO) treatment is a useful therapy against human acute promyelocytic leukemia (APL), however, it concomitantly brings potential adverse consequences including serious side effect, human carcinogenicity and possible development of resistance."( Cytotoxicity of arsenic trioxide is enhanced by (-)-epigallocatechin-3-gallate via suppression of ferritin in cancer cells.
Cheng, IC; Lee, TC; Shue, JJ; Wang, TC, 2011
)
0.37
" Assuming both studies were valid, at the identified no observed adverse effect levels (NOAEL) of each study, systemic exposures (based on area under the curve [AUC]) were actually lower in fasted than nonfasted dogs, suggesting that fasting may have rendered the target organ systems potentially more vulnerable to the effects of green tea extract."( Green tea extract-induced lethal toxicity in fasted but not in nonfasted dogs.
Boring, D; Wu, KM; Yao, J, 2011
)
0.37
" However, because there were no signs indicative of hepatotoxicity on serum biochemical and histopathological examinations, the changes observed in the liver were regarded as adaptation, and not adverse effects."( Lack of chronic toxicity and carcinogenicity of dietary administrated catechin mixture in Wistar Hannover GALAS rats.
Inoue, K; Nakae, D; Nishikawa, A; Takahashi, M; Yoshida, M, 2011
)
0.37
" OLG treatment at two different doses (15 or 30 mg/kg body weight) and two different time points (1 day or 7 days of treatment) demonstrated that no toxic effects were observed on heart, liver and renal functions."( Safety of oligonol, a highly bioavailable lychee-derived polyphenolic antioxidant, on liver, kidney and heart function in rats.
Bagchi, M; Fujii, H; Moriyama, H; Thirunavukkarasu, M; Wakame, K; Zhan, L, 2012
)
0.38
" The aim of this study was to investigate the effect of green tea epigallocatechin-3-gallate on the nicotine-induced toxic and inflammatory responses in oral epithelial cells and gingival fibroblasts."( Neutralizing effect of green tea epigallocatechin-3-gallate on nicotine-induced toxicity and chemokine (C-C motif) ligand 5 secretion in human oral epithelial cells and fibroblasts.
Desjardins, J; Grenier, D, 2012
)
0.38
" Pretreatment of cells with epigallocatechin-3-gallate efficiently neutralized the nicotine-induced toxic effects in epithelial cells and fibroblasts."( Neutralizing effect of green tea epigallocatechin-3-gallate on nicotine-induced toxicity and chemokine (C-C motif) ligand 5 secretion in human oral epithelial cells and fibroblasts.
Desjardins, J; Grenier, D, 2012
)
0.38
"Excessive nitric oxide (NO) production is toxic to the cochlea and induces hearing loss."( (-)-Epigallocatechin-3-gallate protects against NO-induced ototoxicity through the regulation of caspase- 1, caspase-3, and NF-κB activation.
Hong, SH; Kim, BS; Kim, SJ; Lee, JH; Myung, NY; Park, R; So, HS; Um, JY, 2012
)
0.38
" A frequent side effect of etoposide is myelosuppression, which restricts the use of this drug."( The influence of curcumin and (-)-epicatechin on the genotoxicity and myelosuppression induced by etoposide in bone marrow cells of male rats.
Papież, MA, 2013
)
0.39
"Selenium, an essential trace element, can also be toxic at higher levels of exposure."( High-dose sodium selenite toxicity cannot be prevented by the co-administration of pharmacological levels of epigallocatechin-3-gallate which in turn aggravates the toxicity.
Sun, K; Thompson, HJ; Wan, X; Wang, Y; Wu, S; Zhang, J, 2013
)
0.39
"The article presents a method of conservative treatment of men with I-II stage prostatic adenoma using a combination of doxazosin and indigal, which has antioxidant, antiproliferative and anti-inflammatory properties, that allowed improving urodynamic parameters and reducing the progression prostate adenoma, minimizing the adverse effects of treatment."( [Results of open multicenter study of the safety of doxazosin in combination with indigal in men with stages I-II prostatic adenoma].
Abzalilov, RA; Bliumberg, BI; Boiarko, AV; Grigor'ev, MÉ; Izmaĭlov, AA; Kazikhinoruv, AA; Komiakov, BK; Pavlov, VN; Sivkov, AV,
)
0.13
" Our results demonstrate that TCDD is highly toxic for INS-1E cells, suggesting that pancreatic beta cells should be considered a relevant and sensitive target for dioxin acute toxicity."( The aryl receptor inhibitor epigallocatechin-3-gallate protects INS-1E beta-cell line against acute dioxin toxicity.
Beffy, P; De Tata, V; Giacopelli, D; Martino, L; Masiello, P; Masini, M; Novelli, M, 2013
)
0.39
" Long-term (32 weeks) treatment with Polyphenon E was safe and well tolerated with no evidence of toxicity in C57BL/6J mice."( Safety and chemopreventive effect of Polyphenon E in preventing early and metastatic progression of prostate cancer in TRAMP mice.
Amankwah, E; Choi, J; Chornokur, G; Connors, S; Cornnell, H; Engelman, RW; Hashim, AI; Kim, SJ; Kumar, N; Park, HY; Park, JY; Rincon, M; Tsai, YY, 2014
)
0.4
" Consumption of EGCG during DOX therapy seems to be safe and beneficial, since EGCG does not decrease DOX anticancer efficacy and could ameliorate DOX hepatotoxicity."( Effect of selected catechins on doxorubicin antiproliferative efficacy and hepatotoxicity in vitro.
Bártíková, H; Boušová, I; Hanušová, V; Matoušková, P; Rudolfová, P; Skálová, L, 2014
)
0.4
" This results in protein aggregation and generation of toxic oligomers and fibrils."( Epigallocatechin-3-gallate and tetracycline differently affect ataxin-3 fibrillogenesis and reduce toxicity in spinocerebellar ataxia type 3 model.
Bonanomi, M; Colombo, G; Cornelli, G; Doglia, SM; Malabarba, MG; Natalello, A; Pastori, V; Penco, A; Regonesi, ME; Relini, A; Tortora, P; Visentin, C, 2014
)
0.4
"Cisplatin (CP) is a commonly used anticancer drug, but its notable side effect of nephrotoxicity limits its use in clinic."( Epigallocatechin-3-gallate protects against cisplatin nephrotoxicity by inhibiting the apoptosis in mouse.
Chen, B; Hu, Z; Jiang, B; Liu, G; Pei, F; Song, J; Yang, X; Zou, P, 2014
)
0.4
"Consumer use of herbal and dietary supplements has recently grown in the United States and, with increased use, reports of rare adverse reactions have emerged."( Sensitivity to hepatotoxicity due to epigallocatechin gallate is affected by genetic background in diversity outbred mice.
Ballard, S; Church, RJ; Churchill, GA; Eaddy, JS; Gatti, DM; Harrill, AH; Long, N; Mosedale, M; Navarro, V; Shi, Q; Threadgill, DW; Urban, TJ; Watkins, PB; Yang, X, 2015
)
0.42
" Overall, it appears that EGCG can modulate its own bioavailability and that dietary treatment may reduce the toxic potential of acute high oral bolus doses of EGCG."( Dietary pretreatment with green tea polyphenol, (-)-epigallocatechin-3-gallate reduces the bioavailability and hepatotoxicity of subsequent oral bolus doses of (-)-epigallocatechin-3-gallate.
Forester, SC; James, KD; Lambert, JD, 2015
)
0.42
" (-)-EPI was safe to use, with no observed adverse effects, and our findings suggest that increases in NO metabolites, mitochondrial enzyme function and plasma follistatin levels may underlie some of the beneficial effects of cocoa products or (-)-EPI as reported in other studies."( Pharmacokinetic, partial pharmacodynamic and initial safety analysis of (-)-epicatechin in healthy volunteers.
Barnett, CF; Ceballos, G; Dugar, S; Moreno-Ulloa, A; Ramirez-Sanchez, I; Schreiner, G; Shiva, S; Su, Y; Taub, PR; Villarreal, F, 2015
)
0.42
" EGCG in concentrations lower than 10 μmol/L was recognized as safe for hepatocytes in vitro."( In vitro toxicity of epigallocatechin gallate in rat liver mitochondria and hepatocytes.
Cervinkova, Z; Drahota, Z; Endlicher, R; Kucera, O; Lotkova, H; Mezera, V; Moravcova, A, 2015
)
0.42
"Green tea is thought to provide health benefits, though adverse reactions to green tea extract (GTE) have been reported."( The safety of green tea extract supplementation in postmenopausal women at risk for breast cancer: results of the Minnesota Green Tea Trial.
Bedell, S; Dostal, AM; Kurzer, MS; Le, C; Samavat, H; Swenson, K; Torkelson, C; Ursin, G; Wang, R; Wu, AH; Yuan, JM, 2015
)
0.42
" A potential adverse effect of high-dose EGCG or green tea extracts is hepatotoxicity."( Melatonin attenuates (-)-epigallocatehin-3-gallate-triggered hepatotoxicity without compromising its downregulation of hepatic gluconeogenic and lipogenic genes in mice.
Reiter, RJ; Wan, X; Wang, D; Wang, T; Wei, Y; Yang, CS; Zhang, J, 2015
)
0.42
" Because of the probable link between hIAPP and the development of type II diabetes, there has been strong interest in developing reagents to study the aggregation of hIAPP and possible therapeutics to block its toxic effects."( Inhibition of IAPP Aggregation and Toxicity by Natural Products and Derivatives.
Brender, JR; Fierke, CA; Pithadia, A; Ramamoorthy, A, 2016
)
0.43
" However, the potential adverse health effects of Ni NPs are unclear."( Inhibition of Nickel Nanoparticles-Induced Toxicity by Epigallocatechin-3-Gallate in JB6 Cells May Be through Down-Regulation of the MAPK Signaling Pathways.
Bowman, L; Ding, M; Gu, Y; Liu, K; Liu, Y; Mao, G; Wang, Y; Xu, J; Zhao, J; Zhou, Q; Zou, B, 2016
)
0.43
" coli) as model organisms and was found to be more toxic towards gram-positive bacteria."( Selective toxicity of Catechin-a natural flavonoid towards bacteria.
Fathima, A; Rao, JR, 2016
)
0.43
" No differences were noted in adverse effects between the two treatment groups."( Safety and efficacy of cognitive training plus epigallocatechin-3-gallate in young adults with Down's syndrome (TESDAD): a double-blind, randomised, placebo-controlled, phase 2 trial.
Benejam, B; Blanco-Hinojo, L; Bléhaut, H; Catuara-Solarz, S; Cuenca-Royo, A; de la Torre, R; de Sola, S; Del Hoyo, L; Delabar, JM; Dierssen, M; Dueñas-Espín, I; Espadaler, JM; Farré, M; Fitó, M; Hernandez, G; Janel, N; Langohr, K; Principe, A; Pujol, J; Rodriguez, J; Sanchez-Benavides, G; Videla, S; Xicota, L, 2016
)
0.43
" Mice were allowed free access to tea infusion (1:30, w/v) for one week, and the rare smoked tea caused salient adverse reactions, including hepatic and gastrointestinal toxicities; meanwhile, the widely-consumed green and black teas, unlike the rare yellow tea, suppressed growth in fast-growing healthy mice."( Safety and anti-hyperglycemic efficacy of various tea types in mice.
Han, M; Ning, J; Sun, F; Wan, X; Wang, D; Wang, Y; Zhang, J; Zhao, G, 2016
)
0.43
" A secondary study endpoint in this trial was a comparison of the overall one-year treatment related adverse events and grade 3 or higher adverse event on the two study arms."( Randomized, placebo-controlled trial evaluating the safety of one-year administration of green tea catechins.
Kumar, NB; Park, J; Parnes, H; Pow-Sang, J; Salup, R; Schell, MJ; Spiess, PE; Williams, CR, 2016
)
0.43
"Daily intake of a standardized, decaffeinated, catechin mixture containing 200 mg EGCG BID taken with food for 1 year accumulated in plasma and was well tolerated and did not produce treatment related adverse effects in men with baseline HGPIN or ASAP."( Randomized, placebo-controlled trial evaluating the safety of one-year administration of green tea catechins.
Kumar, NB; Park, J; Parnes, H; Pow-Sang, J; Salup, R; Schell, MJ; Spiess, PE; Williams, CR, 2016
)
0.43
" Consumption of green tea is not associated with liver damage in humans, and green tea infusion and GTE-based beverages are considered safe in the range of historical uses."( Safety assessment of green tea based beverages and dried green tea extracts as nutritional supplements.
Dekant, W; Fujii, K; Morita, O; Shibata, E; Shimotoyodome, A, 2017
)
0.46
" Our findings demonstrate proof of concept for the feasibility of green tea catechin-based micellar nanocomplexes as a safe and effective cisplatin nanomedicine for ovarian cancer treatment."( Hyaluronic acid-green tea catechin micellar nanocomplexes: Fail-safe cisplatin nanomedicine for the treatment of ovarian cancer without off-target toxicity.
Ang, WX; Bae, KH; Chung, JE; Gao, SJ; Kurisawa, M; Tan, S; Wang, S; Yamashita, A, 2017
)
0.46
" The results suggest that exposure to DTC reduces toxic threshold of dietary polyphenols from green tea and possibly other plants, and vice versa."( Synergistic toxicity of epigallocatechin-3-gallate and diethyldithiocarbamate, a lethal encounter involving redox-active copper.
Dong, R; Sun, K; Wang, J; Wang, X; Yang, CS; Zhang, J; Zhang, K, 2017
)
0.46
" Although green tea beverage has a long history of safe use, a growing number of case-reports have linked GTE-based supplements to incidents of hepatotoxicity."( Potential role of the mitochondria as a target for the hepatotoxic effects of (-)-epigallocatechin-3-gallate in mice.
James, KD; Kennett, MJ; Lambert, JD, 2018
)
0.48
" By facilitating the fibril formation and thus eliminating the toxic AOs, EGCG was shown to suppress the membrane disrupting radiating amyloid fibril formation on the surface of liposomal membranes and thus protect the cells which could be readily affected by AOs."( EGCG-mediated Protection of the Membrane Disruption and Cytotoxicity Caused by the 'Active Oligomer' of α-Synuclein.
Bhak, G; Lee, JT; Lee, S; Paik, SR; Park, JH; Rhoo, KY; Yang, JE, 2017
)
0.46
" Platinum-based therapeutic compounds used to treat lung cancer have not been able to increase the survival of patients and such compounds have a high incidence of adverse and toxic effects."( Characterization of the cytotoxic effects of the combination of cisplatin and flavanol (-)-epicatechin on human lung cancer cell line A549. An isobolographic approach.
Ceballos, G; Cordero, P; Gutiérrez-Iglesias, G; Meaney, E; Nájera, N; Palma, I; Ramirez-Sanchez, I; Rubio-Gayosso, I; Varela-Castillo, O; Villarreal, F, 2018
)
0.48
" Therefore, habitat management is reported for the first time as a safe and effective approach to improving the yield and quality of tea leaves."( Habitat management as a safe and effective approach for improving yield and quality of tea (Camellia sinensis) leaves.
Chen, Y; Li, J; Qiao, X; Tang, H; Tang, J; Zhou, B; Zhou, Y, 2019
)
0.51
"Amyloid-β, one of the hallmarks of Alzheimer's disease (AD), is toxic to neurons and can also cause brain cell death."( Ingredients in Zijuan Pu'er Tea Extract Alleviate β-Amyloid Peptide Toxicity in a
Bai, S; Du, F; Fu, X; Jiao, Y; Ma, J; Wang, L; Zhou, L, 2019
)
0.51
" The adverse health effects resulting from methylmercury (MeHg) exposure in humans are of worldwide concern."( (-)-Epigallocatechin-3-gallate attenuates the toxicity of methylmercury in Caenorhabditis elegans by activating SKN-1.
Cao, JJ; Chen, M; Chen, WH; Han, X; Ji, X; Liu, AL; Lu, WQ; Lu, WW; Wang, F, 2019
)
0.51
" These adverse effects of Pb were ameliorated by EGCG treatment, which increased testosterone, E2 serum level, and aromatase P450 gene expression, and improved testicular architecture and semen picture."( The protective effect of epigallocatechin-3-gallate on testicular oxidative stress in lead-induced toxicity mediated by Cyp19 gene / estradiol level.
Hassan, E; Hassan, M; Kahilo, K; Kamal, T; Saleh Elgawish, M, 2019
)
0.51
" The reductions in CYP-mediated acetaminophen bioactivation and uptake transporter, as well as enhanced antioxidant enzyme activity, may limit the accumulation of toxic products in the liver and thus lower hepatotoxicity."( Epigallocatechin-3-Gallate Reduces Hepatic Oxidative Stress and Lowers CYP-Mediated Bioactivation and Toxicity of Acetaminophen in Rats.
Chang, CH; Li, CC; Yao, HT, 2019
)
0.51
"To examine the role of the transcription factor nuclear factor-erythroid 2 (NF-E2)-related factor 2 (Nrf2) and the SAFE pathway (JAK/STAT) in the induction of germ cell apoptosis (GCA) and the protective role of epigallocatechin-3-gallate (EGCG) during testicular ischemia reperfusion injury (tIRI)."( Epigallocatechin-3-gallate modulates germ cell apoptosis through the SAFE/Nrf2 signaling pathway.
Al-Maghrebi, M; Alnajem, AS; Esmaeil, A, 2020
)
0.56
" PCP is highly toxic and carcinogenic."( Protective effect of catechin on pentachlorophenol-induced cytotoxicity and genotoxicity in isolated human blood cells.
Maheshwari, N; Mahmood, R, 2020
)
0.56
" There were no serious adverse events."( Safety and efficacy of (+)-epicatechin in subjects with Friedreich's ataxia: A phase II, open-label, prospective study.
Anderson, JR; Badley, AD; Clark, V; Driscoll, SW; Dugar, S; Gavrilova, RH; Glockner, J; Huston, J; Johnson, JN; Kemppainen, JL; Moutvic, MA; Oglesbee, D; Patterson, MC; Qureshi, MY; Schreiner, G; Tebben, PJ; Touchette, JC; Wackel, P, 2021
)
0.62
"The clinical studies proved the adverse effect of Propranolol on sexual function."( An Herbal Nanohybrid Formula of Epigallocatechin Gallate-Chitosan-Alginate Efficiently Restrict the Sexual Dysfunction Adverse Effect of
Abo El-Ela, FI; El-Banna, HA; El-Nesr, KA; El-Shahawy, AAG; Khaled, E; Zanaty, MI, 2020
)
0.56
" Animals received a single toxic dose of CP (7."( Epigallocatechin gallate and coenzyme Q10 attenuate cisplatin-induced hepatotoxicity in rats via targeting mitochondrial stress and apoptosis.
Aljaser, FS; Alrashed, M; Alsharidah, AS; AlSubki, RA; Banu, N; Fatima, S; Suhail, N; Wasi, S, 2021
)
0.62
" Our study investigates the role of EGCG on N,N'-dimethylhydrazine (DMH), a toxic environmental pollutant, induced colon toxicity."( Amelioration of N,N'-dimethylhydrazine induced colon toxicity by epigallocatechin gallate in Wistar rats.
Afzal, SM; Ali, N; Islam, J; Rashid, S; Shree, A; Sultana, S; Vafa, A, 2021
)
0.62
"Doxorubicin (DOX) is the most effective and frequently used anticancer drug but its cardiotoxicity is the most important side effect that limits the clinical use of it."( Potential protective effect of catechin on doxorubicin-induced cardiotoxicity in adult male albino rats.
Saleh Ahmed, AS, 2022
)
0.72
" The drink was not toxic to cells and animals."( Identifying Chemical Composition, Safety and Bioactivity of Thai Rice Grass Extract Drink in Cells and Animals.
Chaiyasut, C; Daw, R; Hutachok, N; Kampoun, T; Koonyosying, P; Phimphilai, S; Prasartthong-Osoth, V; Srichairatanakool, S, 2021
)
0.62
" Serious adverse events from supplements with these ingredients are rare and typically involve unusually high intakes."( Dietary Supplements for Weight Management: A Narrative Review of Safety and Metabolic Health Benefits.
Blumberg, JB; Chen, O; Liska, DJ; Mah, E, 2022
)
0.72
" Of 72 treated participants, 62 (86%) had 229 treatment-emergent adverse events (AEs)."( Safety and preliminary efficacy on cognitive performance and adaptive functionality of epigallocatechin gallate (EGCG) in children with Down syndrome. A randomized phase Ib clinical trial (PERSEUS study).
Aldea-Perona, A; Cés, SV; Cieuta-Walti, C; Cuenca-Royo, A; Dairou, J; Dierssen, M; Durand, S; Forcano, L; Fornell, RT; García, JG; Gomis-Gonzalez, M; González, TB; González-Lamuño Leguina, D; Janel, N; Lacaille, F; Langohr, K; Lévy, M; Lirio, J; López-Vílchez, MÁ; Mircher, C; Rakic, C; Ravel, A; Roure, MR; Sacco, S; Walti, H, 2022
)
0.72
"The use of EGCG is safe and well-tolerated in children with DS, but efficacy results do not support its use in this population."( Safety and preliminary efficacy on cognitive performance and adaptive functionality of epigallocatechin gallate (EGCG) in children with Down syndrome. A randomized phase Ib clinical trial (PERSEUS study).
Aldea-Perona, A; Cés, SV; Cieuta-Walti, C; Cuenca-Royo, A; Dairou, J; Dierssen, M; Durand, S; Forcano, L; Fornell, RT; García, JG; Gomis-Gonzalez, M; González, TB; González-Lamuño Leguina, D; Janel, N; Lacaille, F; Langohr, K; Lévy, M; Lirio, J; López-Vílchez, MÁ; Mircher, C; Rakic, C; Ravel, A; Roure, MR; Sacco, S; Walti, H, 2022
)
0.72
" This systematic review and meta-analysis found that 1) curcumin may decrease body mass index (BMI), Aspartate aminotransferase (AST), Alanine aminotransferase (ALT), Triglycerides (TG) total cholesterol (TC), and Homeostasis Model Assessment-Insulin Resistance (HOMA-IR) compared to placebo; and curcumin does not increase the occurrence of adverse events."( Efficacy and safety of dietary polyphenol supplementation in the treatment of non-alcoholic fatty liver disease: A systematic review and meta-analysis.
Chen, J; Ge, A; Ge, J; Wang, S; Xu, H; Yang, K; Yuan, X; Zeng, L; Zhang, T, 2022
)
0.72
" Specifically, our aim was to assess any adverse effects of EGCG alone or in combination with an ovarian stimulator on serum liver function tests (LFTs) and folate level."( Assessing the Hepatic Safety of Epigallocatechin Gallate (EGCG) in Reproductive-Aged Women.
Al-Hendy, A; Christman, GM; Flaminia, A; Flores, VA; González, F; Huang, H; Johnson, JJ; Segars, J; Siblini, H; Singh, B; Taylor, HS; Zhang, H, 2023
)
0.91
" No adverse events were observed and reported associated with EGCG."( Efficacy and safety of epigallocatechin-3-gallate in treatment acute severe dermatitis in patients with cancer receiving radiotherapy: a phase I clinical trial.
Jia, L; Li, X; Meng, X; Wang, X; Xie, J; Xie, P; Xing, L; Yin, X; Zhao, H; Zhu, W, 2023
)
0.91
" These results underscore the potential of EGCG as a protective agent against the adverse effects of water-pipe smoking."( Assessing the Protective Role of Epigallocatechin Gallate (EGCG) against Water-Pipe Smoke-Induced Toxicity: A Comparative Study on Gene Expression and Histopathology.
Al Bawareed, O; Al Farraj, J; Al-Ameer, HJ; Al-Awaida, W; Goh, KW; Gushchina, YS; Hamad, I; Severin, AE; Srour, B; Torshin, VI, 2023
)
0.91

Pharmacokinetics

We performed a Phase I pharmacokinetic study to determine the systemic availability of green tea catechins after single oral dose administration of EGCG and Polyphenon E (decaffeinated greenTea catechin mixture) We also studied the effects of sanguisorba tannins and saponins compatibility at different proportions [tannins-saponins (1∶1) and tannin-saponins(8∵1) in rats.

ExcerptReferenceRelevance
" A few methods for quantitative analysis of d-catechin in biological fluids have been reported, but they are not so sensitive or specific for pharmacokinetic interest."( [Determination of D-catechin plasma concentration and pharmacokinetic parameters using HPLC method].
Liu, DL; Lu, ML; Pan, HY; Xu, PP, 1991
)
0.28
"), as evidenced by a shift of tmax from 2 h in controls to 6 h in (+)-catechin-treated animals."( [Effect of (+)-catechin on the pharmacokinetics of carbamazepine in rabbits].
Pentz, R; Siegers, CP; Younes, M, 1982
)
0.26
" The goal of this study was to determine the stability and pharmacokinetic parameters of pure EGCG administered topically to human and mouse skin."( Pharmacokinetics of the green tea derivative, EGCG, by the topical route of administration in mouse and human skin.
Alberts, DS; Dorr, RT; Dvorakova, K; Timmermann, B; Valcic, S, 1999
)
0.3
" To determine pharmacokinetic parameters of EGCG following topical application."( Pharmacokinetics of the green tea derivative, EGCG, by the topical route of administration in mouse and human skin.
Alberts, DS; Dorr, RT; Dvorakova, K; Timmermann, B; Valcic, S, 1999
)
0.3
" We performed a Phase I pharmacokinetic study to determine the systemic availability of green tea catechins after single oral dose administration of EGCG and Polyphenon E (decaffeinated green tea catechin mixture)."( Phase I pharmacokinetic study of tea polyphenols following single-dose administration of epigallocatechin gallate and polyphenon E.
Alberts, DS; Cai, Y; Chow, HH; Crowell, JA; Dorr, R; Hakim, I; Hara, Y; Shahi, F; Yang, CS, 2001
)
0.31
" The mean elimination half-life (t(1/2,beta)) for EC, EGCG and ECG across doses were 43, 124, and 222 min respectively, and were invariant with dose."( Pharmacokinetics and system linearity of tea catechins in rat.
Chen, Y; Li, RC; Zhu, M, 2001
)
0.31
" In this report, the pharmacokinetic parameters of (-)-epigallocatechin-3-gallate (EGCG), (-)-epigallocatechin (EGC), and (-)-epicatechin (EC) were analyzed after administration of a single oral dose of green tea or decaffeinated green tea (20 mg tea solids/kg) or EGCG (2 mg/kg) to eight subjects."( Pharmacokinetics of tea catechins after ingestion of green tea and (-)-epigallocatechin-3-gallate by humans: formation of different metabolites and individual variability.
Bondoc, FY; Chen, L; Lambert, G; Lee, MJ; Maliakal, P; Meng, X; Mohr, S; Prabhu, S; Yang, CS, 2002
)
0.31
" The present pharmacokinetic study was designed to find out whether the improved water solubility in the presence of procyanidin B2 or hyperoside is correlated to increased plasma levels of hypericin."( Plasma levels of hypericin in presence of procyanidin B2 and hyperoside: a pharmacokinetic study in rats.
Butterweck, V; Liefländer-Wulf, U; Nahrstedt, A; Winterhoff, H, 2003
)
0.32
" Pharmacokinetic parameters were assessed using non-compartmental methodology."( Food effects on the absorption and pharmacokinetics of cocoa flavanols.
Ensunsa, JL; Holt, RR; Karim, M; Keen, CL; Kirkpatrick, NJ; Polagruto, JA; Schmitz, HH; Schrader, HR; Schramm, DD, 2003
)
0.32
" Cmax and AUC(0-72 h) were higher in female rats than in male rats, a finding which suggested a sex difference in rats."( Pharmacokinetics of TJ-8117 (Onpi-to), a drug for renal failure (I): Plasma concentration, distribution and excretion of [3H]-(-)epicatechin 3-O-gallate in rats and dogs.
Aburada, M; Morota, T; Nishimura, H; Takeda, S; Takizawa, Y; Tomisawa, H,
)
0.13
" AUC(0-72 h) and Cmax in the non-fasted was 123% and 248% of those in the fasted."( Pharmacokinetics of TJ-8117(Onpi-to), a drug for renal failure (II): effects of food, repeated administration and renal failure to plasma concentration of [3H]-(-)epicatechin 3-O-gallate in rats.
Aburada, M; Fujitsuka, N; Kase, Y; Kido, A; Miyamoto, K; Morita, T; Shindou, S; Takeda, S; Takizawa, Y; Tomisawa, H,
)
0.13
"We carried out a pharmacokinetic study to determine the levels and profiles of catechins in pregnant rats and their fetuses after ingestion of green tea extract (GTE)."( Pharmacokinetic studies of green tea catechins in maternal plasma and fetuses in rats.
Chan, KP; Choy, KW; Chu, CY; Chu, KO; Pang, CP; Rogers, MS; Wang, CC, 2006
)
0.33
" The elimination half-life of EGCG was 62 +/- 11 and 48 +/- 13 min for intravenous (10 mg/kg) and oral (100 mg/kg) administration, respectively."( Pharmacokinetics of (-)-epigallocatechin-3-gallate in conscious and freely moving rats and its brain regional distribution.
Lin, LC; Sung, JS; Tsai, TH; Tseng, TY; Wang, MN, 2007
)
0.34
"Little is known regarding pharmacokinetic (PK) or pharmacodynamic interactions of flavonoids with each other: this is of significance since multiple flavonoids are present in the diet and in dietary supplements."( Pharmacokinetics and bioavailability of the bioflavonoid biochanin A: effects of quercetin and EGCG on biochanin A disposition in rats.
Moon, YJ; Morris, ME,
)
0.13
" The pharmacokinetic data indicate that the area under the plasma concentration-time curves (AUC) of CPT-11 and SN-38 were increased by 57."( Food-drug interaction of (-)-epigallocatechin-3-gallate on the pharmacokinetics of irinotecan and the metabolite SN-38.
Lin, LC; Tsai, TH; Wang, MN, 2008
)
0.35
" Pharmacokinetic parameters of diltiazem and desacetyldiltiazem were determined following the oral administration of diltiazem (15 mg x kg(-1)) in the presence or absence of EGCG (1, 4 and 12 mg x kg(-1))."( Effects of epigallocatechin gallate on the bioavailability and pharmacokinetics of diltiazem in rats.
Choi, JS; Li, C, 2008
)
0.35
" A pharmacokinetic study measured total radioactivity in the blood (n = 9)."( In vivo bioavailability, absorption, excretion, and pharmacokinetics of [14C]procyanidin B2 in male rats.
Barron, D; Brown, JE; Clifford, MN; King, LJ; Stoupi, S; Viton, F; Williamson, G, 2010
)
0.36
" The pharmacokinetic experiment indicated that there was an approximately 151% increase in the maximum plasma concentration (C(max)) and an approximately 425% increase in the area under the plasma concentration curve (AUC) of 5-FU in the green tea-treated group compared with the control group."( Effect of green tea on pharmacokinetics of 5-fluorouracil in rats and pharmacodynamics in human cell lines in vitro.
Du, J; Gu, C; Han, M; Lu, W; Qiao, J; Shang, W; Wang, W; Yin, W; Zhu, M, 2011
)
0.37
" However, there is little information about pharmacokinetic profiles in the brain and in vivo BBB penetration of C and EC."( Pharmacokinetics and blood-brain barrier penetration of (+)-catechin and (-)-epicatechin in rats by microdialysis sampling coupled to high-performance liquid chromatography with chemiluminescence detection.
Li, J; Lv, C; Wu, L; Yin, FX; Yuan, Y; Zhang, QL; Zhang, XY, 2012
)
0.38
" The integrated plasma concentration (C') of TP was calculated by means of self-defined weighing coefficient based on percent AUC of individual components, thereby assessing integrated pharmacokinetic (PK) parameters of TP via log C'-T curve."( [Integrated pharmacokinetic study of multiple effective components of tea polyphenols and its correlation with anti-free radical pharmacodynamics in rats].
Han, GZ; Li, N; Li, QS; Lü, L; Wang, CY; Xi, H; Zou, LL, 2012
)
0.38
" Further, cocrystallization resulted in marked effects on pharmacokinetic parameters including Cmax, Tmax, area under curve, relative bioavailability, and apparent terminal half-life."( Crystal engineering of green tea epigallocatechin-3-gallate (EGCg) cocrystals and pharmacokinetic modulation in rats.
Arora, KK; Kavuru, P; Kesani, S; Shytle, RD; Smith, AJ; Tan, J; Zaworotko, MJ, 2013
)
0.39
" Pharmacokinetic parameters were estimated by a noncompartmental analysis."( Effects of green tea extract and (-)-epigallocatechin-3-gallate on pharmacokinetics of nadolol in rats.
Fukushima, T; Kimura, J; Misaka, S; Miyazaki, N; Yamada, S, 2013
)
0.39
" In vivo pharmacokinetic studies in rats by high-performance liquid chromatography confirmed a sustained and sequential release of both the drugs in plasma, indicating prolonged circulation of the nanomedicine and enhanced availability of the drugs when compared to the bare drugs."( Sequentially releasing dual-drug-loaded PLGA-casein core/shell nanomedicine: design, synthesis, biocompatibility and pharmacokinetics.
Manzoor, K; Menon, D; Mohan, CC; Narayanan, D; Narayanan, S; Pavithran, M; Viswanath, A, 2014
)
0.4
" Plasma and various ocular tissues were taken for pharmacokinetic analysis, oxidation marker testings and gene expression assays."( Effects of EGCG content in green tea extract on pharmacokinetics, oxidative status and expression of inflammatory and apoptotic genes in the rat ocular tissues.
Chan, KP; Chan, SO; Chu, KO; Li, WY; Pang, CP; Qin, YJ; Wang, CC; Yang, YP, 2015
)
0.42
"We performed a phase II pharmacodynamic prevention trial of Polyphenon E [a green tea polyphenol formulation primarily consisting of epigallocatechin gallate (EGCG)] in patients prior to bladder cancer surgery."( A Phase II Randomized, Double-blind, Presurgical Trial of Polyphenon E in Bladder Cancer Patients to Evaluate Pharmacodynamics and Bladder Tissue Biomarkers.
Bailey, HH; Downs, T; Gee, JR; Havighurst, TC; House, MG; Huang, W; Kim, K; Kolesar, J; Mukhtar, H; Parnes, HL; Saltzstein, DR; Stublaski, J; Wollmer, BW, 2017
)
0.46
" In pharmacokinetic studies, rats were divided into four groups."( Study on the pharmacokinetics of deoxyschizandrin and schizandrin in combination with epigallocatechin gallate, a component of green tea, in rats.
Liu, X; Liu, Y; Wang, Y; Zhang, D; Zhang, W, 2018
)
0.48
" Blood samples for the pharmacokinetic assessments were collected up to 8 hours after each dose of rosuvastatin."( Effect of epigallocatechin-3-gallate, major ingredient of green tea, on the pharmacokinetics of rosuvastatin in healthy volunteers.
Ha, N; Jeon, JY; Kim, H; Kim, MG; Kim, TE; Kim, Y; Lee, JW, 2017
)
0.46
" An 8-h pharmacokinetic study was performed."( Influence of diabetes on plasma pharmacokinetics and brain bioavailability of grape polyphenols and their phase II metabolites in the Zucker diabetic fatty rat.
Chen, TY; Cooper, B; Ferruzzi, MG; Ho, L; Janle, EM; Pasinetti, GM; Simon, JE; Talcott, ST; Todd, G; Wang, J; Wu, QL, 2017
)
0.46
"To study the effects of sanguisorba tannins and saponins compatibility at different proportions [tannins-saponins (1∶1) and tannins-saponins(8∶1)] after intragastric administration (50 mg•kg⁻¹) on pharmacokinetic parameters of catechin, epicatechin and ziyuglycoside Ⅰ in rats by using pharmacokinetic techniques and methods."( [Effects of sanguisorba tannins and saponins compatibility on pharmacokinetic parameters of catechin, epicatechin and ziyuglycoside Ⅰ in rats].
Xiong, YA; Yang, M, 2016
)
0.43
"The aim of the present study is to investigate a possible role of a single dose of (-)-epigallocatechin gallate (EGCG), the major catechin in green tea, for the pharmacokinetic interaction between green tea and nadolol in humans."( Role of (-)-epigallocatechin gallate in the pharmacokinetic interaction between nadolol and green tea in healthy volunteers.
Abe, O; Fromm, MF; Kimura, J; Misaka, S; Miura, I; Müller, F; Ogata, H; Ono, T; Onoue, S; Sato, H; Shikama, Y; Yabe, H, 2018
)
0.48
" Blood samples for the pharmacokinetic assessments of digoxin were collected up to 8 hours after each dose."( Effect of green tea catechins on the pharmacokinetics of digoxin in humans.
Choi, DH; Kim, MG; Kim, TE; Kwon, KJ; Lee, J; Park, JE; Shin, KH; Yun, YM, 2018
)
0.48
" Plasma samples were collected for pharmacokinetic analysis."( Effect of tea polyphenols on the oral and intravenous pharmacokinetics of ticagrelor in rats and its in vitro metabolism.
Cai, WM; Liu, SB; Sun, H; Tang, ZJ; Wang, ZT; Xue, Y; Zhang, Z, 2020
)
0.56
" EGCG may be the main ingredient of green tea that affects the pharmacokinetic parameters of rosuvastatin."( Effect of Green Tea and (-)-Epigallocatechin Gallate on the Pharmacokinetics of Rosuvastatin.
Bian, Y; Huang, C; Huang, S; Liu, L; Miao, L; Xu, Q; Zhang, S, 2020
)
0.56
"Based on pharmacodynamic, pharmacokinetic and tissue distribution studies, we explored the potential effect of grape seed proanthocyanidin extract (GSPE) on dextran sodium sulfate (DSS) -induced ulcerative colitis in mice and its underlying mechanism."( Protective Effects of Grape Seed Proanthocyanidin Extract in Preventing DSS Induced Ulcerative Colitis Based on Pharmacodynamic, Pharmacokinetic and Tissue Distribution.
Li, J; Liu, D; Liu, Y; Quan, S; Sun, H; Wang, X; Zhang, J, 2022
)
0.72
" The pharmacokinetic results showed that catechin, epicatechin, and procyanidins B1, B2, and B4 are widely distributed in the tissues and blood of rats and may accumulate in some tissues."( Protective Effects of Grape Seed Proanthocyanidin Extract in Preventing DSS Induced Ulcerative Colitis Based on Pharmacodynamic, Pharmacokinetic and Tissue Distribution.
Li, J; Liu, D; Liu, Y; Quan, S; Sun, H; Wang, X; Zhang, J, 2022
)
0.72

Compound-Compound Interactions

Polyphenol-protein reactions in model solutions of β-lactoglobulin (β-LG) incubated with (-)-epicatechin were monitored by microLC-timsTOF Pro-MS/MS combined with bioinformatics strategies. In this study, we evaluated metabolic properties of oral nutritional supplement epigallocatechin gallate (EGCG) in combination with GLP-1 agonist exendin-4 in a mouse model of dietary-induced diabetes and obesity.

ExcerptReferenceRelevance
" In fact, GTCs treatment for men at high risk of CaP as first line prevention therapy in combination with the 8-genes signature profiling in tissue needle biopsies for real time monitoring of patient's response might importantly change, in the near future, the clinical managing of this highly diffuse malignancy."( Clinical relevance of the inhibitory effect of green tea catechins (GtCs) on prostate cancer progression in combination with molecular profiling of catechin-resistant tumors: an integrated view.
Belloni, L; Bettuzzi, S; Rizzi, F, 2007
)
0.34
" In the present study, the stability of EGCG and product formation in Tris-HCl buffer was investigated using real- time mass spectrometry combined with tandem mass ion mapping."( Autoxidative quinone formation in vitro and metabolite formation in vivo from tea polyphenol (-)-epigallocatechin-3-gallate: studied by real-time mass spectrometry combined with tandem mass ion mapping.
Buckley, B; Ho, CT; Sang, S; Yang, CS; Yang, I, 2007
)
0.34
" These results indicate that EGCG, which has anticandidal activity causing blockage of the hyphal formation, has the synergism combined with Amp B against disseminated candidiasis."( Synergic anticandidal effect of epigallocatechin-O-gallate combined with amphotericin B in a murine model of disseminated candidiasis and its anticandidal mechanism.
Han, Y, 2007
)
0.34
" The results demonstrate that tamoxifen at realistic doses (75 mug kg(-1)) can suppress the growth of ER-negative breast cancer when combined with EGCG."( A new role for tamoxifen in oestrogen receptor-negative breast cancer when it is combined with epigallocatechin gallate.
Menzies, AR; Rosengren, RJ; Scandlyn, MJ; Somers-Edgar, TJ; Stuart, EC, 2008
)
0.35
" Finally, the effect of curcumin in combination with the green tea extract epigallocatechin-3 gallate (EGCG) was evaluated."( Curcumin inhibits prosurvival pathways in chronic lymphocytic leukemia B cells and may overcome their stromal protection in combination with EGCG.
Ghosh, AK; Kay, NE; Secreto, CR; Shanafelt, TD, 2009
)
0.35
" These results indicate that procyanidin-induced vasorelaxation is associated with NO-cGMP pathway in combination with hyperpolarization due to multiple activation of Ca(2+)-dependent and -independent K(+) channels."( Apple procyanidins induced vascular relaxation in isolated rat aorta through NO/cGMP pathway in combination with hyperpolarization by multiple K+ channel activations.
Byun, EB; Kanda, T; Korematsu, S; Matsui, T; Nishizuka, T; Ohshima, S, 2009
)
0.35
"The antimicrobial activities of tetracycline, mupirocin, and fusidic acid are tested in combination with Epicatechin Gallate (ECG), and Ethyl Gallate (EG) using 2 Methicillin resistant (MRSA) and 2 Methicillin sensitive (MSSA) strains of Staphylococcus aureus."( In vitro drug interactions of gallates with antibiotics in Staphylococcus Aureus.
Chu Sing Lim, L; Sakharkar, KR; Sakharkar, MK; Soe, WM; Tzer Pin Lin, R, 2010
)
0.36
" In this study, we determined if vorinostat alone or in combination with EGCG imparts anti-proliferative effects against human melanoma cells."( Anti-melanoma effects of vorinostat in combination with polyphenolic antioxidant (-)-epigallocatechin-3-gallate (EGCG).
Nihal, M; Roelke, CT; Wood, GS, 2010
)
0.36
" Antitumor activity of bortezomib in combination with EGCG or ascorbic acid was determined using several dosing regimens to evaluate different target plasma concentrations of EGCG and ascorbic acid."( Preclinical evaluation of the antitumor activity of bortezomib in combination with vitamin C or with epigallocatechin gallate, a component of green tea.
Bannerman, B; Berger, A; Bolen, J; Claiborne, C; Dick, L; Fleming, P; Hales, P; Jones, M; Kupperman, E; Manfredi, M; Monbaliu, J; Tsu, C; Xu, L; Yu, J, 2011
)
0.37
" However, when combined with EGCG such that the plasma concentrations of EGCG were >200 μM at the time of bortezomib dosing, all antitumor activity was abrogated (TGI = -17."( Preclinical evaluation of the antitumor activity of bortezomib in combination with vitamin C or with epigallocatechin gallate, a component of green tea.
Bannerman, B; Berger, A; Bolen, J; Claiborne, C; Dick, L; Fleming, P; Hales, P; Jones, M; Kupperman, E; Manfredi, M; Monbaliu, J; Tsu, C; Xu, L; Yu, J, 2011
)
0.37
" In the present study, we have tested the cytotoxicity of ascorbate to MMe cells in combination with drugs used in MMe therapy, such as cisplatin, etoposide, gemcitabine, imatinib, paclitaxel, and raltitrexed, as well as with promising antitumor compounds like taurolidine, α-tocopherol succinate, and epigallocatechin-3-gallate (EGCG)."( In vitro screening of synergistic ascorbate-drug combinations for the treatment of malignant mesothelioma.
Burlando, B; Martinotti, S; Ranzato, E, 2011
)
0.37
"Low-dose metronomic (LDM) chemotherapy represents a new strategy to treat solid tumors by stronger antiangiogenic activity and less side-effects, especially in combination with other antiangiogenic agents."( Low-dose docetaxel combined with (-)-epigallocatechin-3-gallate inhibits angiogenesis and tumor growth in nude mice with gastric cancer xenografts.
Wu, H; Xiao, Y; Xin, Y; Zhao, J, 2012
)
0.38
" The KNN method in combination with chemical analysis is recommended for discrimination of the production seasons of Chinese green tea."( Discrimination of the production season of Chinese green tea by chemical analysis in combination with supervised pattern recognition.
Li, D; Song, Q; Wan, X; Xu, W, 2012
)
0.38
" In experiment 1, we investigated the effects of vitamin C combined with polyphenol supplementation on chilled semen quality."( Long-term preservation of chilled canine semen using vitamin C in combination with green tea polyphenol.
Chatdarong, K; Kimura, T; Kodama, R; Namula, Z; Otoi, T; Sato, Y; Taniguchi, M; Techakumphu, M; Wittayarat, M,
)
0.13
" The effect of EGCG combined with ALA is greater than the effect of EGCG alone in all anti-inflammation and anti-oxidant experiments."( Epigallocatechin-3-gallate combined with alpha lipoic acid attenuates high glucose-induced receptor for advanced glycation end products (RAGE) expression in human embryonic kidney cells.
Jian, JH; Leu, JG; Liang, YJ; Lin, CY; Shih, CY,
)
0.13
" Treatment of mice with EGCG in combination with tolcapone increased the bioavailability of EGCG and decreased the methylation of plasma norepinephrine: no apparent liver or behavioral toxicity was observed."( Synergistic inhibition of lung cancer cell lines by (-)-epigallocatechin-3-gallate in combination with clinically used nitrocatechol inhibitors of catechol-O-methyltransferase.
Forester, SC; Lambert, JD, 2014
)
0.4
" The hypoglycemic action of JAT was also confirmed: JAT, in combination with acarbose, produced a synergistic inhibitory effect on plasma glucose levels in vivo."( Inhibitory effect of black tea and its combination with acarbose on small intestinal α-glucosidase activity.
Igarashi, M; Satoh, T; Takahashi, N; Watanabe, K; Yamada, S, 2015
)
0.42
" (+)-Catechin activity was investigated when combined with different ratios of Cu(2+) ; 100°C heat treatment; autoclaving; and 14 day storage against Staphylococcus aureus."( Heat treatment enhances the antimicrobial activity of (+)-Catechin when combined with copper sulphate.
Fielder, MD; Gould, SW; Holloway, AC; Kelly, AF; Mueller-Harvey, I; Naughton, DP, 2015
)
0.42
" fruticosa leaves extracts (PFE) combined with green tea polyphenols (GTP) were studied to elucidate their use in combination and find specific combinations with least concentrations that enhance the antioxidant activity."( Synergistic Effects of Potentilla fruticosa L. Leaves Combined with Green Tea Polyphenols in a Variety of Oxidation Systems.
Jia, C; Li, D; Liu, Z; Luo, Z; Wang, D, 2016
)
0.43
" In this study we have examined the effects of four naturally occurring polyphenols in combination with β-cyclodextrin (β-CD) on the aggregation of α-synuclein in the presence of macromolecular crowding agents."( Polyphenols in combination with β-cyclodextrin can inhibit and disaggregate α-synuclein amyloids under cell mimicking conditions: A promising therapeutic alternative.
Batra, R; Chowdhury, PK; Gautam, S; Karmakar, S; Kundu, B; Pradhan, P; Sharma, P; Singh, J, 2017
)
0.46
" Each group was orally treated with DSD alone (Group 1), DSD combined with EGCG (Group 2), SD alone (Group 3) and SD combined with EGCG (Group 4)."( Study on the pharmacokinetics of deoxyschizandrin and schizandrin in combination with epigallocatechin gallate, a component of green tea, in rats.
Liu, X; Liu, Y; Wang, Y; Zhang, D; Zhang, W, 2018
)
0.48
" In this study, we evaluated metabolic properties of oral nutritional supplement epigallocatechin gallate (EGCG) in combination with GLP-1 agonist exendin-4 in a mouse model of dietary-induced diabetes and obesity."( Beneficial metabolic effects of dietary epigallocatechin gallate alone and in combination with exendin-4 in high fat diabetic mice.
Flatt, PR; Gault, VA; Millar, PJB; Pathak, NM; Pathak, V, 2018
)
0.48
"EGCG alone and particularly in combination with exendin-4 exerts positive metabolic properties in HF mice."( Beneficial metabolic effects of dietary epigallocatechin gallate alone and in combination with exendin-4 in high fat diabetic mice.
Flatt, PR; Gault, VA; Millar, PJB; Pathak, NM; Pathak, V, 2018
)
0.48
" Combined with retention time, accurate mass, characteristic fragments and previous literature data, the structures of the filtered compounds were identified or tentatively characterized."( [Rapid analysis on phenolic compounds in Rheum palmatum based on UPLC-Q-TOF/MSE combined with diagnostic ions filter].
Fu, S; Gao, XY; Huang, ZH; Liu, YH; Lu, ZW; Wang, ML; Wang, Q; Xie, ZY; Yu, HH; Zhang, QQ; Zhang, ZX; Zhao, HZ; Zhou, WJ, 2017
)
0.46
" The metabolic profile of guarana from the two largest producing regions was investigated using UPLC-MS combined with multivariate statistical analysis."( Chemical profiling of guarana seeds (Paullinia cupana) from different geographical origins using UPLC-QTOF-MS combined with chemometrics.
Canuto, KM; Coutinho, JP; da Silva, GS; de Brito, ES; de Jesus, RM; Nascimento, MM; Ribeiro, PRV; Zocolo, GJ, 2017
)
0.46
" The noncovalent complex of catechins that interact with SOD1 was found and retained in the gas phase under native ESI-MS condition."( Determining the Effect of Catechins on SOD1 Conformation and Aggregation by Ion Mobility Mass Spectrometry Combined with Optical Spectroscopy.
Liu, S; Liu, Z; Pi, Z; Song, F; Zhao, B; Zhuang, X, 2018
)
0.48
"A systematic investigation of the chemopreventive effect of sulindac (SL) in combination with either epigallocatechin gallate (EGCG) or kaempferol similar (KMP) has been carried out 1,2-dimethyl hydrazine-treated rats (DMH)."( Chemopreventive effect of sulindac in combination with epigallocatechin gallate or kaempferol against 1,2-dimethyl hydrazine-induced preneoplastic lesions in rats: A Comparative Study.
Elahl, HMS; Hassan, ESG; Hassanein, NMA; Hegab, AM, 2018
)
0.48
" Induction of apoptosis was also higher after treatment with EGCG in combination with eugenol-amrogentin than individual compound treatments."( Epigallocatechin gallate in combination with eugenol or amarogentin shows synergistic chemotherapeutic potential in cervical cancer cell line.
Kumar Panda, C; Mandal, S; Pal, D; Roy, R; Sur, S, 2018
)
0.48
" The effects of EPI in combination with diuretics for clinical use, as well as with L-NAME, atropine and indomethacin were also explored."( Preclinical evaluation of the diuretic and saluretic effects of (-)-epicatechin and the result of its combination with standard diuretics.
Andrade, SF; Boeing, T; Cechinel-Filho, V; da Silva, LM; da Silva, RCMVAF; de Souza, P; Mariano, LNB; Niero, R, 2018
)
0.48
" salivarius WB21 on periodontitis and oral malodor may be synergistically enhanced by use in combination with EGCg."( Effects of Lactobacillus salivarius WB21 combined with green tea catechins on dental caries, periodontitis, and oral malodor.
Hanioka, T; Higuchi, T; Hirofuji, T; Nakaya, S; Omagari, S; Suzuki, N; Yoneda, M, 2019
)
0.51
"Electronic nose (E-nose), electronic tongue (E-tongue) and electronic eye (E-eye) combined with chemometrics methods were applied for qualitative identification and quantitative prediction of tea quality."( The qualitative and quantitative assessment of tea quality based on E-nose, E-tongue and E-eye combined with chemometrics.
Wang, J; Xu, M; Zhu, L, 2019
)
0.51
" In this study, DBS-NP was fabricated using an eco-friendly method involving ultrasonication combined with recrystallization."( Green fabrication and characterization of debranched starch nanoparticles via ultrasonication combined with recrystallization.
Hu, Y; Jin, Z; Qin, Y; Qiu, C; Wang, J; Xu, X; Xue, L, 2020
)
0.56
" Various natural compounds, including epigallocatechin-3-gallate (EGCG) in combination with taxane, have the potential to be developed as anticancer therapeutics."( Multifunctional nanoparticles for targeting the tumor microenvironment to improve synergistic drug combinations and cancer treatment effects.
Chen, ML; Huang, CM; Lai, CJ; Lin, YH; Lin, YN, 2020
)
0.56
"This study was aimed to investigate the effect of green tea extract (GTE) combined with brisk walking on lipid profiles and the liver function in overweight and obese men."( Effects of green tea extract combined with brisk walking on lipid profiles and the liver function in overweight and obese men: A randomized, double-blinded, placebo-control trial.
Chen, SI; Hou, Z; Li, N; Saito, A; Zhang, T, 2020
)
0.56
"Administration of green tea (GT) catechins has been reported to ensue antitumor activity in combination with chemotherapeutic drugs against different cancer types."( Green tea catechins in combination with irinotecan attenuates tumorigenesis and treatment-associated toxicity in an inflammation-associated colon cancer mice model.
Bharali, MK; Borah, G, 2021
)
0.62
"In this study, we investigated the antitumor effects of GT alone or in combination with IRN in inflammation-associated colon cancer mouse model induced by azoxymethane (AOM) and dextran sulfate sodium (DSS)."( Green tea catechins in combination with irinotecan attenuates tumorigenesis and treatment-associated toxicity in an inflammation-associated colon cancer mice model.
Bharali, MK; Borah, G, 2021
)
0.62
"To verify synergistic effects, we investigated the antimicrobial activity of seven phenolic phytochemicals (gallic acid; epicatechin; epigallocatechin gallate; daidzein; genistein; myricetin; 3-hydroxy-6-methoxyflavone) in combination with six antibiotics against multidrug-resistant isolates from the ESKAPE group."( Synergistic antimicrobial activities of epigallocatechin gallate, myricetin, daidzein, gallic acid, epicatechin, 3-hydroxy-6-methoxyflavone and genistein combined with antibiotics against ESKAPE pathogens.
Borchardt, J; Böttcher, I; Buchmann, D; Guenther, S; Schaufler, K; Schultze, N, 2022
)
0.72
"The aim of this study is to demonstrate the potential use of phenolic natural compounds in combination with conventional antibiotics against multidrug-resistant bacteria of the ESKAPE group."( Synergistic antimicrobial activities of epigallocatechin gallate, myricetin, daidzein, gallic acid, epicatechin, 3-hydroxy-6-methoxyflavone and genistein combined with antibiotics against ESKAPE pathogens.
Borchardt, J; Böttcher, I; Buchmann, D; Guenther, S; Schaufler, K; Schultze, N, 2022
)
0.72
" The characteristic spectral information of the array was obtained by UV-visible spectroscopy and subsequently combined with machine learning algorithms to construct a black tea fermentation quality evaluation model."( Rapid monitoring of black tea fermentation quality based on a solution-phase sensor array combined with UV-visible spectroscopy.
Chen, Q; Chen, Y; Cui, Q; Li, L; Li, M; Liu, Y; Ning, J; Wang, Y; Zhang, Z, 2022
)
0.72
" In this study, the PME inhibition and mechanism by HHP (600 MPa/10 min) combined with epigallocatechin gallate (HHP-EGCG) treatment were investigated."( Inhibition effect of high hydrostatic pressure combined with epigallocatechin gallate treatments on pectin methylesterase in orange juice and model system.
Liao, X; Liu, Y; Rao, L; Tian, X; Wang, Y; Zhao, L, 2022
)
0.72
"In this study, we investigated the protective effects and possible mechanism of epigallocatechin-3-o-gallate (EGCG) combined with organic selenium in transforming growth factor (TGF)-β1-activated LX-2 cells."( Protective effects of epigallocatechin-3-o-gallate combined with organic selenium against transforming growth factor-beta 1-induced fibrosis in LX-2 cells.
Li, YH; Qin, LQ; Xu, JY; Yin, XB; Yuan, L; Zhang, L, 2022
)
0.72
"Polyphenol-protein reactions in model solutions of β-lactoglobulin (β-LG) incubated with (-)-epicatechin at 37 °C and 60 °C were monitored by microLC-timsTOF Pro-MS/MS combined with bioinformatics strategies."( A model study on the site-specificity of (-)-epicatechin-induced reactions in β-lactoglobulin by high-resolution mass spectrometry in combination with bioinformatics.
Börsig, A; Dalabasmaz, S; Konar, N, 2023
)
0.91
" In conclusion, CGA in combination with EGCG ameliorated the gut alterations induced by aging, in part, through antioxidant and anti-inflammatory effects, along with its gut microbiota modulatory capacity."( Chlorogenic acid combined with epigallocatechin-3-gallate mitigates D-galactose-induced gut aging in mice.
Mackenzie, GG; Su, Z; Wei, R, 2023
)
0.91
" Treatment with EGCG combined with Dexa notably reduced tubular injury, MCP-1, HSP-70, NF-κB, and TLR-4 levels (p < 0."( Epigallocatechin-3-gallate in combination with corticosteroids mitigates heat stress-induced acute kidney injury through modulating heat shock protein 70 and toll-like receptor 4-dependent pathways.
Abu-Elsaad, N; El-Kashef, DH; Ibrahim, T; Shafeek, F, 2023
)
0.91

Bioavailability

In this study, we found that PEG may increase bioavailability of catechin. Epigallocatechin gallate-casein complexes were able to decrease the proliferation of HT-29 cancer cells.

ExcerptReferenceRelevance
" The results indicated that tea catechin, EGCg, is absorbed from the digestive tract into the rat and human body and that the CL-HPLC method reported here should be a powerful tool for studying the metabolic fate and bioavailability of EGCg."( Chemiluminescence-high-performance liquid chromatographic determination of tea catechin, (-)-epigallocatechin 3-gallate, at picomole levels in rat and human plasma.
Miyazawa, T; Nakagawa, K, 1997
)
0.3
" To understand the bioavailability of tea catechins in humans, we gave 18 individuals different amounts of green tea and measured the time-dependent plasma concentrations and urinary excretion of tea catechins."( Blood and urine levels of tea catechins after ingestion of different amounts of green tea by human volunteers.
Balentine, D; Chen, L; Kuo, MC; Lee, MJ; Schantz, SP; Yang, CS, 1998
)
0.3
"Catechins from green tea and black tea are rapidly absorbed and milk does not impair the bioavailability of tea catechins."( Bioavailability of catechins from tea: the effect of milk.
Kivits, GA; Tijburg, LB; van het Hof, KH; Weststrate, JA, 1998
)
0.3
" Our work has so far produced several important results with EGCG and green tea: a wide range of target organs in animal experiments for cancer prevention, wide bioavailability of 3H-EGCG in various organs of mice, delayed cancer onset of patients with a history of consuming over 10 cups of green tea per day, and absence of any severe adverse effects among volunteers who took 15 green tea tablets per day (2."( Mechanistic findings of green tea as cancer preventive for humans.
Fujiki, H; Imai, K; Kimura, S; Nakachi, K; Okabe, S; Sueoka, E; Suga, K; Suganuma, M, 1999
)
0.3
" The study on bioavailability of 3H-EGCG in mice revealed the wide distribution of radioactivity in multiple organs."( Green tea and cancer chemoprevention.
Fujiki, H; Imai, K; Matsuyama, S; Nakachi, K; Okabe, S; Sueoka, E; Sueoka, N; Suganuma, M, 1999
)
0.3
" A radioactive purity close to 100% and specific activities suitable for bioavailability studies were obtained."( Carbon-14 biolabeling of (+)-catechin and proanthocyanidin oligomers in willow tree cuttings.
Déprez, S; Mila, I; Scalbert, A, 1999
)
0.3
" It is essential to know the bioavailability of flavonoids involving intestinal absorption, metabolic conversion and urinary excretion, in order to evaluate their in vivo antioxidant activity after intake."( Dietary flavonoids as antioxidants in vivo: conjugated metabolites of (-)-epicatechin and quercetin participate in antioxidative defense in blood plasma.
Terao, J, 1999
)
0.3
"There is considerable interest in the bioavailability of flavonoids and phenolic components of the diet and their bioactivity in vivo."( Decomposition of cocoa procyanidins in the gastric milieu.
Chaudry, F; Debnam, E; Pannala, AS; Rice-Evans, C; Spencer, JP; Srai, SK, 2000
)
0.31
"The absorption characteristics and oral bioavailability of three tea catechins, namely (-)-epicatechin (EC), (-)-epicatechin gallate (ECG), and (-)-epigallocatechin gallate (EGCG), were assessed in this study."( Oral absorption and bioavailability of tea catechins.
Chen, Y; Li, RC; Zhu, M, 2000
)
0.31
" However, the bioavailability and the biological effects of the chocolate flavonoids are poorly understood."( Epicatechin in human plasma: in vivo determination and effect of chocolate consumption on plasma oxidation status.
Fraga, CG; Holt, RR; Keen, CL; Lotito, S; Rein, D; Schmitz, HH, 2000
)
0.31
"There is considerable interest in the bioavailability of polyphenols and their bioactivity in vivo."( Epicatechin and catechin are O-methylated and glucuronidated in the small intestine.
Debnam, ES; Hahn, U; Kuhnle, G; Rice-Evans, C; Schroeter, H; Shenoy, B; Spencer, JP; Srai, SK, 2000
)
0.31
" Thus, the natural abundance and favorable bioavailability of (+)-catechin make it a promising addition to the list of potential colorectal cancer chemopreventive agents."( (+)-Catechin inhibits intestinal tumor formation and suppresses focal adhesion kinase activation in the min/+ mouse.
Bertagnolli, MM; Carothers, AM; Dannenberg, AJ; Weyant, MJ, 2001
)
0.31
" Glucuronidation may reduce the bioavailability of this compound however, flavonoids inhibit resveratrol glucuronidation and such an inhibition might improve the bioavailability of resveratrol."( Glucuronidation of resveratrol, a natural product present in grape and wine, in the human liver.
de Santi, C; Mosca, F; Pacifici, GM; Pietrabissa, A, 2000
)
0.31
" However, differences in bioavailability of the various catechins may play a role; effects on individual cancer sites cannot be excluded and merit further investigation."( Dietary catechins and epithelial cancer incidence: the Zutphen elderly study.
Arts, IC; Bueno De Mesquita, HB; Feskens, EJ; Hollman, PC; Kromhout, D, 2001
)
0.31
" The bioavailability of the dietary polyphenols is discussed extensively, because the tissue levels of the effective compounds determine the biological activity."( Inhibition of carcinogenesis by dietary polyphenolic compounds.
Huang, MT; Landau, JM; Newmark, HL; Yang, CS, 2001
)
0.31
"Tea consumption has been associated with reduced risk of both cancer and cardiovascular disease in population studies, but clinical data demonstrating bioavailability of the individual catechins and other polyphenolic components of tea are limited."( Catechins are bioavailable in men and women drinking black tea throughout the day.
Balentine, DA; Beecher, GR; Clevidence, BA; Smith, LS; Warden, BA, 2001
)
0.31
"In this report, evaluation of polyphenol bioavailability was carried out by using segments of the small intestine from rat."( Evaluation of polyphenol bioavailability in rat small intestine.
Carbonaro, M; Grant, G; Pusztai, A, 2001
)
0.31
" These results suggest that the bioavailability of (-)-epicatechin is higher than that of (+)-catechin in rats, and that, in combination, (+)-catechin and (-)-epicatechin might be absorbed competitively in the gastrointestinal tract of rats."( In vivo comparison of the bioavailability of (+)-catechin, (-)-epicatechin and their mixture in orally administered rats.
Baba, S; Muto, Y; Natsume, M; Osakabe, N; Takizawa, T; Terao, J, 2001
)
0.31
" However, there is limited knowledge of the oral bioavailability of these dietary compounds."( Transport and metabolism of the tea flavonoid (-)-epicatechin by the human intestinal cell line Caco-2.
Vaidyanathan, JB; Walle, T, 2001
)
0.31
"These results suggest an important role for the multispecific organic anion transporter MRP2 in the bioavailability of EC and possibly other tea flavonoids."( Transport and metabolism of the tea flavonoid (-)-epicatechin by the human intestinal cell line Caco-2.
Vaidyanathan, JB; Walle, T, 2001
)
0.31
" These results suggest that, in the dose range examined in this study, bioavailability of (-)-epicatechin following administration of either (-)-epicatechin or cocoa powder shows dose dependence and that the various compounds present in cocoa powder have little effect on the bioavailability of (-)-epicatechin in cocoa powder."( Absorption and urinary excretion of (-)-epicatechin after administration of different levels of cocoa powder or (-)-epicatechin in rats.
Baba, S; Muto, Y; Natsume, M; Osakabe, N; Takizawa, T; Terao, J, 2001
)
0.31
" The bioavailability and biotransformation of tea polyphenols, however, are key factors limiting these activities in vivo."( Inhibition of carcinogenesis by tea.
Maliakal, P; Meng, X; Yang, CS, 2002
)
0.31
"There is considerable interest in the bioavailability of flavan-3-ols such as tea catechins and cocoa-derived procyanidin components of the diet and their bioactivity in vivo."( Bioavailability of flavan-3-ols and procyanidins: gastrointestinal tract influences and their relevance to bioactive forms in vivo.
Rechner, AR; Rice-Evans, C; Schroeter, H; Spencer, JP, 2001
)
0.31
" Thus, GTPs or EGCG might be potential agents for modulating the bioavailability of P-gp substrates at the intestine and the multidrug resistance phenotype associated with expression of this transporter in cancer cells."( Inhibition of the multidrug resistance P-glycoprotein activity by green tea polyphenols.
Beliveau, R; Demeule, M; Jodoin, J, 2002
)
0.31
"-) generation, thus the bioavailability of (*)NO was increased."( A flavonoid-rich diet increases nitric oxide production in rat aorta.
Benito, S; Buxaderas, S; Lopez, D; Mitjavila, MT; Puig-Parellada, P; Sáiz, MP; Sánchez, J, 2002
)
0.31
" The distinct effects found for catechins derived from solid foods (fruits) and beverages (tea) may be due to differences in bioavailability or metabolism of the catechins, or to their interactions with other dietary components."( Dietary catechins and cancer incidence among postmenopausal women: the Iowa Women's Health Study (United States).
Arts, IC; Folsom, AR; Gross, M; Harnack, LJ; Jacobs, DR, 2002
)
0.31
" Our results suggested that low molecular weight polyphenols are absorbed in the intestine and metabolized to their glucuronide conjugates, which exhibit antioxidative activity in plasma, and that TA can enhance the bioavailability of wine polyphenols."( Absorption and metabolism of antioxidative polyphenolic compounds in red wine.
Harada, M; Kiso, Y; Koda, H; Sakane, T; Sezaki, H; Sugiura, N; Yamashita, S, 2002
)
0.31
"We evaluated the bioavailability and plasma antioxidative activity after administration of procyanidin B2 [epicatechin-(4beta-8)-epicatechin] in rats."( Absorption and urinary excretion of procyanidin B2 [epicatechin-(4beta-8)-epicatechin] in rats.
Baba, S; Natsume, M; Osakabe, N; Terao, J, 2002
)
0.31
" However, its bioavailability is not clearly understood."( Glucuronidation and sulfation of the tea flavonoid (-)-epicatechin by the human and rat enzymes.
Vaidyanathan, JB; Walle, T, 2002
)
0.31
"Phenolic compounds have recently attracted special attention due to their beneficial health effects; their intestinal absorption and bioavailability need, therefore, to be investigated and Caco-2 cell culture model appeared as a promising tool."( Hydrogen peroxide generation in caco-2 cell culture medium by addition of phenolic compounds: effect of ascorbic acid.
Besançon, P; Caporiccio, B; Landrault, N; Laurent, C; Roques, SC; Rouane, JM; Teissèdre, PL, 2002
)
0.31
" Inadequate knowledge regarding the bioavailability and biotransformation of EGCG in humans, however, has limited our understanding of its possible beneficial health effects."( Identification and characterization of methylated and ring-fission metabolites of tea catechins formed in humans, mice, and rats.
Ho, CT; Lee, MJ; Lu, H; Meng, X; Sang, S; Sheng, S; Yang, CS; Zhu, N, 2002
)
0.31
" The bioavailability and metabolic fate of tea polyphenols in humans, however, are not clearly understood."( Pharmacokinetics of tea catechins after ingestion of green tea and (-)-epigallocatechin-3-gallate by humans: formation of different metabolites and individual variability.
Bondoc, FY; Chen, L; Lambert, G; Lee, MJ; Maliakal, P; Meng, X; Mohr, S; Prabhu, S; Yang, CS, 2002
)
0.31
" Oral bioavailability of green tea catechins has been shown to be low in animals and possibly in humans."( Contribution of presystemic hepatic extraction to the low oral bioavailability of green tea catechins in rats.
Anavy, ND; Cai, Y; Chow, HH, 2002
)
0.31
" There is considerable interest in the bioavailability of epicatechin after oral ingestion."( Uptake and metabolism of epicatechin and its access to the brain after oral ingestion.
Abd El Mohsen, MM; Jenner, P; Kuhnle, G; Rechner, AR; Rice-Evans, CA; Rose, S; Schroeter, H, 2002
)
0.31
" The importance of some of these mechanisms in vivo remains in question due to an incomplete understanding of the bioavailability of the polyphenolic compounds in tea."( Cancer chemopreventive activity and bioavailability of tea and tea polyphenols.
Lambert, JD; Yang, CS,
)
0.13
" There have been several reports concerning the bioavailability of catechins, however, the chemical structure of (-)-epicatechin metabolites in blood, tissues, and urine remains unclear."( Structures of (-)-epicatechin glucuronide identified from plasma and urine after oral ingestion of (-)-epicatechin: differences between human and rat.
Baba, S; Nakamura, Y; Natsume, M; Osakabe, N; Osawa, T; Oyama, M; Sasaki, M; Terao, J, 2003
)
0.32
" Both compounds increased the oral bioavailability of hypericin by ca."( Plasma levels of hypericin in presence of procyanidin B2 and hyperoside: a pharmacokinetic study in rats.
Butterweck, V; Liefländer-Wulf, U; Nahrstedt, A; Winterhoff, H, 2003
)
0.32
" in comparison with topical application may be due to its less bioavailability in skin target cells."( Treatment of green tea polyphenols in hydrophilic cream prevents UVB-induced oxidation of lipids and proteins, depletion of antioxidant enzymes and phosphorylation of MAPK proteins in SKH-1 hairless mouse skin.
Elmets, CA; Katiyar, SK; Vayalil, PK, 2003
)
0.32
" cell-mediated) types of action in protecting LDL against oxidation, strengthening the need for improving the knowledge of its bioavailability in humans."( Grape and grape seed extract capacities at protecting LDL against oxidation generated by Cu2+, AAPH or SIN-1 and at decreasing superoxide THP-1 cell production. A comparison to other extracts or compounds.
Carbonneau, MA; Descomps, B; Leger, CL; Shafiee, M; Urban, N, 2003
)
0.32
" Metabonomic methods utilizing (1)H NMR spectroscopy of biofluids and principal component analysis (PCA) have been applied to investigate the bioavailability and metabolic responses of rats to a single dose of 22 mg of epicatechin (EC) dissolved in water."( NMR-based metabonomic studies on the biochemical effects of epicatechin in the rat.
Bailey, NJ; Davis, AL; Holmes, E; Lindon, JC; Mulder, TP; Nicholson, JK; Solanky, KS; Van Duynhoven, JP, 2003
)
0.32
" Bioavailability and cellular uptake of (-)-epicatechin are not yet fully characterized."( Amphiphilic properties of (-)-epicatechin and their significance for protection of cells against peroxynitrite.
Klotz, LO; Schroeder, P; Sies, H, 2003
)
0.32
" The bioavailability and pharmacokinetic characteristics of the tea antioxidants (+)-catechin and (-)-epicatechin were investigated in the rat following intake of dietary doses."( Bioavailability of dietary doses of 3H-labelled tea antioxidants (+)-catechin and (-)-epicatechin in rat.
Catterall, F; Clifford, MN; Ioannides, C; King, LJ, 2003
)
0.32
"Polyphenols are antioxidants, which are known to influence bioavailability of metals in the body."( Coordination of aluminium with purpurogallin and theaflavin digallate.
Astill, C; Baderschneider, B; O'Coinceanainn, M, 2003
)
0.32
" MRP type efflux pumps may limit the bioavailability of EGCG."( Involvement of multidrug resistance-associated proteins in regulating cellular levels of (-)-epigallocatechin-3-gallate and its methyl metabolites.
Hong, J; Lambert, JD; Lee, SH; Sinko, PJ; Yang, CS, 2003
)
0.32
"There is considerable interest in the bioavailability of flavan-3-ols such as tea catechins and their bioactivity in vivo."( Metabolism of tea flavonoids in the gastrointestinal tract.
Spencer, JP, 2003
)
0.32
" It is becoming increasingly evident, however, that the bioavailability of these compounds is poor as a result of limited absorption and presystemic metabolism by mammalian and microbial enzymes."( Antimutagenic activity of tea: role of polyphenols.
Ioannides, C; Yoxall, V, 2003
)
0.32
" The bioavailability of EGCG in the most commonly used animal species, mice, is poorly understood."( Epigallocatechin-3-gallate is absorbed but extensively glucuronidated following oral administration to mice.
Hong, JJ; Lambert, JD; Lee, MJ; Lu, H; Meng, X; Seril, DN; Sturgill, MG; Yang, CS, 2003
)
0.32
" In the present study we examined the antioxidant activity and bioavailability of these epimers compared with their corresponding precursors."( Comparison of antioxidant activity and bioavailability of tea epicatechins with their epimers.
Chang, Q; Chen, ZY; Huang, Y; Xu, JZ; Yeung, SY, 2004
)
0.32
" But studies suggest that EGCG and other catechins are poorly absorbed and undergo substantial biotransformation to species that include glucuronides, sulfates, and methylated compounds."( Green tea polyphenols and cancer chemoprevention: multiple mechanisms and endpoints for phase II trials.
Kumar, NB; Moyers, SB, 2004
)
0.32
" Previously, we reported the bioavailability of EGCG in rats (1."( Piperine enhances the bioavailability of the tea polyphenol (-)-epigallocatechin-3-gallate in mice.
Hong, J; Kim, DH; Lambert, JD; Mishin, VM; Yang, CS, 2004
)
0.32
" The rate of absorption of alpha-NA in the presence of these polyphenols also varied."( Dietary polyphenols (-)-epicatechin and chrysin inhibit intestinal glucuronidation metabolism to increase drug absorption.
Awazu, S; Mizuma, T, 2004
)
0.32
" Polymeric proanthocyanidins are poorly absorbed in the small intestine of humans, and exposure may result from metabolism to phenolic acids by colonic bacteria."( Supplementation with grape seed polyphenols results in increased urinary excretion of 3-hydroxyphenylpropionic Acid, an important metabolite of proanthocyanidins in humans.
Croft, KD; Hodgson, JM; Puddey, IB; Ward, NC, 2004
)
0.32
" As tea catechins are well absorbed in the gastrointestinal tract and they interact synergistically in their disease-modifying actions, thus drinking unfractionated green tea is the most simple and beneficial way to prevent gastrointestinal disorders."( Pharmacological effects of green tea on the gastrointestinal system.
Cho, CH; Koo, MW, 2004
)
0.32
" The relatively low bioavailability of catechins reported after oral exposure to green tea argues, however, against a causal role of these constituents in the reported liver disorders."( Toxicity of green tea extracts and their constituents in rat hepatocytes in primary culture.
Baumgart, A; Guédon, D; Kreuter, MH; Netsch, MI; Schmidlin, CB; Schmidt, M; Schmitz, HJ; Schrenk, D, 2005
)
0.33
" The reasons for this are 1) lack of validated in vivo biomarkers, especially in the area of carcinogenesis; 2) lack of long-term studies; and 3) lack of understanding or consideration of bioavailability in the in vitro studies, which are subsequently used for the design of in vivo experiments."( Bioavailability and bioefficacy of polyphenols in humans. II. Review of 93 intervention studies.
Manach, C; Williamson, G, 2005
)
0.33
" However, the understanding of the molecular mechanisms of EGCG's activity in vivo have been confounded by its low oral bioavailability and low plasma levels."( Novel D-ring analog of epigallocatechin-3-gallate inhibits tumor growth and VEGF expression in breast carcinoma cells.
Bensari, A; Chao, WR; Waleh, NS; Zaveri, NT,
)
0.13
" The oral bioavailability of the major green tea constituents, green tea catechins, is low, resulting in systemic catechin levels in humans many fold less than the effective concentrations determined in in vitro systems."( Effects of dosing condition on the oral bioavailability of green tea catechins after single-dose administration of Polyphenon E in healthy individuals.
Alberts, DS; Celaya, CA; Chew, WM; Chow, HH; Crowell, JA; Hakim, IA; Hara, Y; Ranger-Moore, J; Rodney, SR; Vining, DR, 2005
)
0.33
"We conclude that greater oral bioavailability of free catechins can be achieved by taking the Polyphenon E capsules on an empty stomach after an overnight fast."( Effects of dosing condition on the oral bioavailability of green tea catechins after single-dose administration of Polyphenon E in healthy individuals.
Alberts, DS; Celaya, CA; Chew, WM; Chow, HH; Crowell, JA; Hakim, IA; Hara, Y; Ranger-Moore, J; Rodney, SR; Vining, DR, 2005
)
0.33
" The aim of the present study was to bring data on the bioavailability of quercetin and catechin when administered simultaneously."( Co-administration of quercetin and catechin in rats alters their absorption but not their metabolism.
Manach, C; Morand, C; Remesy, C; Scalbert, A; Silberberg, M, 2005
)
0.33
" Critical areas of future investigation include: (1) identification of the direct molecular target(s) of EGCG and related polyphenolic compounds in cells; (2) the in vivo metabolism and bioavailability of these compounds; (3) the ancillary effects of these compounds on tumor-stromal interactions; (4) the development of synergistic combinations with other antitumor agents to enhance efficacy in cancer prevention and therapy, and also minimize potential toxicities."( Modulation of signal transduction by tea catechins and related phytochemicals.
Shimizu, M; Weinstein, IB, 2005
)
0.33
" Final questions surround bioavailability and dosing frequency."( Flavanols for cardiovascular health: the science behind the sweetness.
Fisher, ND; Hollenberg, NK, 2005
)
0.33
" A human intervention study was performed to evaluate the bioavailability and antioxidant capacity of (-)-epigallocatechin-3-gallate (EGCG) administered as a single large dose in the form of either purified EGCG or as green tea extract (Polyphenon E)."( Bioavailability and antioxidant effect of epigallocatechin gallate administered in purified form versus as green tea extract in healthy individuals.
Carpenter, CL; Hara, Y; Heber, D; Henning, SM; Lee, NH; Liu, Y; Minutti, RR; Niu, Y; Thames, GD; Wang, H, 2005
)
0.33
" Among the different activities of EGCG observed in cell culture systems, we need to select the physiologically relevant ones based on the biological importance of the target as well as the effective concentration and whether the reaction can take place in vivo because of the limited bioavailability of EGCG."( Possible mechanisms of the cancer-preventive activities of green tea.
Hou, Z; Ju, J; Lambert, JD; Lu, G; Sang, S; Yang, CS, 2006
)
0.33
" The review encompasses the occurrence and bioavailability of the polyphenolics, the in vitro and in vivo evidence for their effects on cancer, both positive and negative, and the various mechanisms by which the chemicals may exert their effects."( A review of the effects and mechanisms of polyphenolics in cancer.
Barney, DL; Exon, JH; Nichenametla, SN; Taruscio, TG, 2006
)
0.33
" However, the use of green tea as a cancer chemopreventive or for other health benefits has been confounded by the low oral bioavailability of its active polyphenolic catechins, particularly epigallocatechin-3-gallate (EGCG), the most active catechin."( Green tea and its polyphenolic catechins: medicinal uses in cancer and noncancer applications.
Zaveri, NT, 2006
)
0.33
" The bioavailability and stereochemistry could be related to the antiviral and genotoxic effects detected."( Evaluation of antiherpetic activity and genotoxic effects of tea catechin derivatives.
Barardi, CR; Savi, LA; Simões, CM, 2006
)
0.33
" EGCG is poorly bioavailable in man and rodents."( Transdermal delivery of (-)-epigallocatechin-3-gallate, a green tea polyphenol, in mice.
Kim, DH; Lambert, JD; Yang, CS; Zheng, R, 2006
)
0.33
" The objective of this study was to determine the bioavailability and bioactivity of tea polyphenols (PP) and theaflavins in human serum and human and mouse tissues."( Tea polyphenols and theaflavins are present in prostate tissue of humans and mice after green and black tea consumption.
Aronson, W; Barnard, RJ; Conde, F; Csathy, G; Go, VL; Harris, DM; Heber, D; Henning, SM; Hong, J; Lee, NH; Lee, RP; Lu, J; Moro, A; Niu, Y; Pak-Shan, L; Seeram, NP; Wang, H; Ziaee, HG, 2006
)
0.33
" Previously, we have reported the low bioavailability of EGCG in rats and mice."( Peracetylation as a means of enhancing in vitro bioactivity and bioavailability of epigallocatechin-3-gallate.
Ho, CT; Hong, J; Kwon, SJ; Lambert, JD; Lee, MJ; Sang, S; Yang, CS, 2006
)
0.33
" Previous studies have shown poor bioavailability of catechin when consumed in chocolate."( (+)-Catechin is more bioavailable than (-)-catechin: relevance to the bioavailability of catechin from cocoa.
Cooper, KA; Crespy, V; Donovan, JL; Gibson, BB; Oliveira, M; Williamson, G, 2006
)
0.33
" Potential beneficial effect of cocoa may be attributed to flavanol-mediated improvement of endothelial function, as well as to enhancement of bioavailability and bioactivity of nitric oxide in vivo."( Myeloperoxidase-mediated LDL oxidation and endothelial cell toxicity of oxidized LDL: attenuation by (-)-epicatechin.
Schewe, T; Sies, H; Steffen, Y, 2006
)
0.33
" bioavailability of EGCG."( Effects of repeated green tea catechin administration on human cytochrome P450 activity.
Alberts, DS; Chew, WM; Chow, HH; Cordova, CA; Crowell, JA; Hakim, IA; Hsu, CH; Ranger-Moore, J; Vining, DR; Xu, MJ, 2006
)
0.33
"Consumption of polyphenols is associated with health promotion through diet, although many are poorly absorbed in animals and humans alike."( Protection of lipids from oxidation by epicatechin, trans-resveratrol, and gallic and caffeic acids in intestinal model systems.
Chetrit, D; Kerem, Z; Regev-Shoshani, G; Shoseyov, O, 2006
)
0.33
" Because of the rather low bioavailability of most polyphenolic compounds, how much of an effect dietary polyphenols would have on DNA methylation in humans is not clear."( Dietary polyphenols may affect DNA methylation.
Chen, D; Fang, M; Yang, CS, 2007
)
0.34
"The bioavailability of green tea catechins (GTCs), including epigallocatechin gallate (EGCG), epigallocatechin (EGC), epicatechin gallate (ECG) and epicatechin (EC) is low in both animals and humans."( Intestinal efflux transport kinetics of green tea catechins in Caco-2 monolayer model.
Chan, KY; Zhang, L; Zuo, Z, 2007
)
0.34
" Such disparity may reflect an inability of semiquantitative assessment to consider how infusion time and addition of milk affect the bioavailability of potentially beneficial antioxidant polyphenols."( Effects of infusion time and addition of milk on content and absorption of polyphenols from black tea.
Duthie, GG; Kyle, JA; McNeill, G; Morrice, PC, 2007
)
0.34
"Sorghum bran is concentrated with procyanidins (predominately polymers), which may be beneficial for health in humans; however, the bioavailability of procyanidins is not well-understood."( Sorghum bran in the diet dose dependently increased the excretion of catechins and microbial-derived phenolic acids in female rats.
Gu, L; House, SE; Prior, RL; Rooney, L, 2007
)
0.34
" The bioavailability of these tea polyphenols to different organ sites may contribute to the differing preventive efficacy of Polyphenon E against urinary bladder and mammary cancers."( Preventive effects of polyphenon E on urinary bladder and mammary cancers in rats and correlations with serum and urine levels of tea polyphenols.
Crowell, JA; Grubbs, CJ; Hara, Y; Juliana, MM; Kapetanovic, IM; Lee, MJ; Lubet, RA; Steele, VE; Yang, CS, 2007
)
0.34
" Polyphenon E was taken on an empty stomach to optimize the oral bioavailability of EGCG."( Modulation of human glutathione s-transferases by polyphenon e intervention.
Alberts, DS; Briehl, MM; Chow, HH; Cordova, CA; Crowell, JA; Hakim, IA; Mikhael, DM; Ranger-Moore, J; Tome, ME; Vining, DR, 2007
)
0.34
" However, some of these agents have poor bioavailability and many of the in-depth studies into their mechanisms of action have been carried out in vitro using doses which are unachievable in humans."( Predicting the physiological relevance of in vitro cancer preventive activities of phytochemicals.
Andreadi, CK; Foreman, BE; Howells, LM; Hudson, EA; Manson, MM; Moiseeva, EP; Neal, CP; Sun, YY, 2007
)
0.34
" In conclusion, various beverages, especially teas, inhibit the function of SULT1A3, and therefore may have the potential to increase the bioavailability of orally administered substrates of SULT1A3, such as beta(2) agonists."( Inhibitory effects of various beverages on human recombinant sulfotransferase isoforms SULT1A1 and SULT1A3.
Hiratsuka, A; Nishimuta, H; Ogura, K; Ohtani, H; Sawada, Y; Tsujimoto, M, 2007
)
0.34
" The bioavailability and biotransformation of tea catechins play a key role in determining the importance of various mechanisms in vivo."( Biotransformation of green tea polyphenols and the biological activities of those metabolites.
Lambert, JD; Sang, S; Yang, CS,
)
0.13
" Our objective was to determine the effect of quercetin and (-)-epigallocatechin-3-gallate (EGCG), major flavonoids present in the diet, on the PK and bioavailability of biochanin A, a flavonoid with chemopreventive properties."( Pharmacokinetics and bioavailability of the bioflavonoid biochanin A: effects of quercetin and EGCG on biochanin A disposition in rats.
Moon, YJ; Morris, ME,
)
0.13
"Catechins and procyanidins are beneficial for human health; however, their bioavailability is low."( Sorghum extrusion increases bioavailability of catechins in weanling pigs.
Gu, L; House, SE; Prior, RL; Rooney, LW, 2008
)
0.35
"The Purdue-University of Alabama Botanicals Research Center for Age Related Disease joins novel technologies to study the bioavailability of bioactive polyphenolic constituents and their relation to health."( Botanicals for age-related diseases: from field to practice.
Barnes, S; Ferruzzi, MG; Janle, EM; Kim, H; Lila, MA; Morré, DJ; Morré, DM; Simon, JE; Weaver, CM; Wyss, JM, 2008
)
0.35
" Gamma-linolenic acid (GLA) and catechins bioavailability and their effects on skin functionality have not been previously investigated from a fermented dairy product."( Consumption of functional fermented milk containing borage oil, green tea and vitamin E enhances skin barrier function.
Blachon, JL; Guyonnet, D; Lassel, T; Puch, F; Rawlings, AV; Samson-Villeger, S, 2008
)
0.35
"Despite presenting bioavailability problems, tea catechins have emerged as promising chemopreventive agents because of their observed efficacy in various animal models."( Synthesis and biological activity of a 3,4,5-trimethoxybenzoyl ester analogue of epicatechin-3-gallate.
Cabezas-Herrera, J; Chazarra, S; Otón, F; Rodríguez-López, JN; Sánchez-del-Campo, L; Tárraga, A, 2008
)
0.35
"Epidemiological and clinical studies revealed that high-flavanol diet or isolated (-)-epicatechin improves the function of the vascular endothelium, as assessed by flow-mediated dilation, through elevation of bioavailability and bioactivity of NO*."( How do dietary flavanols improve vascular function? A position paper.
Schewe, T; Sies, H; Steffen, Y, 2008
)
0.35
"Multicompound allelochemical interactions were studied using Centaurea maculosa as a model source to understand how the bioavailability of complex allelochemical mixtures is modified in soil-microbial systems."( Bioavailability of allelochemicals as affected by companion compounds in soil matrices.
Bhowmik, PC; Tharayil, N; Xing, B, 2008
)
0.35
" The extent and rate of absorption of EGCG by the small intestine depends on various factors such as molecular size, lipophilicity, solubility, pKa, gastric and intestinal transit time, lumen pH, membrane permeability and first pass metabolism."( Effect of nutrient mixture and black grapes on the pharmacokinetics of orally administered (-)epigallocatechin-3-gallate from green tea extract: a human study.
Gawande, S; Kale, A; Kotwal, S, 2008
)
0.35
" To investigate the bioavailability of EGCG in humans, we generated a monoclonal antibody against EGCG in BALB/c mice by immunizing thyroglobulin-conjugated EGCG."( Generation of mouse monoclonal antibody against (-)-epigallocatechin gallate.
Fujiki, H; Kise, D; Kuzuhara, T; Sasada, K; Shirakawa, Y; Suganuma, M, 2008
)
0.35
" The advantage of EGCG-P is that it may act as a prodrug, leading to higher bioavailability than EGCG itself."( Effect of a prodrug of the green tea polyphenol (-)-epigallocatechin-3-gallate on the growth of androgen-independent prostate cancer in vivo.
Chan, TH; Chan, WK; Lam, WH; Lee, SC; Lee, TW; Wang, X; Wong, YC, 2008
)
0.35
" Induction of Cytochrome P450 (Cyp)1b1 in maternal liver may reduce bioavailability of DBP to the fetus as a mechanism of chemoprevention."( Chemoprevention of dibenzo[a,l]pyrene transplacental carcinogenesis in mice born to mothers administered green tea: primary role of caffeine.
Castro, DJ; Dashwood, RH; Fischer, KA; Giovanini, JN; Löhr, CV; Orner, GA; Pereira, CB; Williams, DE; Yu, Z, 2008
)
0.35
" This article gives an overview of the role of chemical characteristics and endogenous metabolism of tea PP and their bioavailability in humans and describes attempts to increase their bioavailability."( Nongallated compared with gallated flavan-3-ols in green and black tea are more bioavailable.
Choo, JJ; Heber, D; Henning, SM, 2008
)
0.35
" Previously, we have reported the bioavailability of EGCG in rats and mice."( Effect of genistein on the bioavailability and intestinal cancer chemopreventive activity of (-)-epigallocatechin-3-gallate.
Bose, M; Hao, X; Hong, J; Ju, J; Kwon, SJ; Lambert, JD; Lee, MJ; Yang, CS, 2008
)
0.35
" On the other hand, there are a number of issues, such as stability, bioavailability and metabolic transformations under physiological conditions, facing the development of green tea polyphenols into therapeutic agents."( The challenge of developing green tea polyphenols as therapeutic agents.
Chan, TH; Chen, D; Dou, QP; Huo, C; Lam, WH; Landis-Piwowar, KR; Li, L; Wan, SB; Wang, Z, 2008
)
0.35
"This study investigated the effect of orally administered epigallocatechin gallate (EGCG), a flavonoid, on the bioavailability or pharmacokinetics of diltiazem and its main active metabolites desacetyldiltiazem in rats."( Effects of epigallocatechin gallate on the bioavailability and pharmacokinetics of diltiazem in rats.
Choi, JS; Li, C, 2008
)
0.35
" However, the importance of these health beneficial effects of these botanicals remains elusive due to incomplete understanding of uptake, metabolism and bioavailability of proanthocyanidins in vivo."( Liquid chromatography tandem mass spectrometry identification of proanthocyanidins in rat plasma after oral administration of grape seed extract.
Arabshahi, A; Barnes, S; Dai, Y; Kim, H; Michael Wyss, J; Moore, R; Peng, N; Prasain, JK; Watts, RL; Wilson, L, 2009
)
0.35
" After oral administration of 50 mg/kg, there was a great variation in the pharmacokinetics, and the mean oral bioavailability of EC was 4%."( Pharmacokinetics of (-)-epicatechin in rabbits.
Chen, YA; Hsu, KY, 2009
)
0.35
" Despite promising results in preclinical settings, its applicability to humans has met with limited success largely due to inefficient systemic delivery and bioavailability of promising chemopreventive agents."( Introducing nanochemoprevention as a novel approach for cancer control: proof of principle with green tea polyphenol epigallocatechin-3-gallate.
Adhami, VM; Ahmad, N; Asim, M; Bharali, DJ; Cui, H; Hafeez, BB; Khwaja, SI; Mousa, SA; Mukhtar, H; Siddiqui, IA, 2009
)
0.35
" However, compared with the controls, both the AUC and the relative bioavailability of verapamil were significantly (p<0."( Effects of oral epigallocatechin gallate on the oral pharmacokinetics of verapamil in rats.
Choi, DH; Choi, JS; Chung, JH, 2009
)
0.35
" Most of the procyanidins present in blueberry pomace, however, are large molecular weight compounds that are poorly absorbed and show weak bioactivity compared to the smaller molecular weight monomers and dimers."( Influence of extrusion processing on procyanidin composition and total anthocyanin contents of blueberry pomace.
Brownmiller, CR; Howard, LR; Khanal, RC; Prior, RL, 2009
)
0.35
" In our efforts to improve the stability and bioavailability of green tea polyphenols for cancer therapy, we synthesized a trimethoxy derivative of epicatechin-3-gallate, which showed high antiproliferative and proapoptotic activity against melanoma."( Melanoma activation of 3-o-(3,4,5-trimethoxybenzoyl)-(-)-epicatechin to a potent irreversible inhibitor of dihydrofolate reductase.
Cabezas-Herrera, J; Montenegro, MF; Rodríguez-López, JN; Sánchez-del-Campo, L; Tárraga, A,
)
0.13
"Cocoa drinks containing flavan-3-ols are associated with many health benefits, and conflicting evidence exists as to whether milk adversely affects the bioavailability of flavan-3-ols."( Milk decreases urinary excretion but not plasma pharmacokinetics of cocoa flavan-3-ol metabolites in humans.
Borges, G; Crozier, A; Donovan, JL; Edwards, CA; Lean, ME; Mullen, W; Serafini, M, 2009
)
0.35
"The objective was to determine the effect of milk on the bioavailability of cocoa flavan-3-ol metabolites."( Milk decreases urinary excretion but not plasma pharmacokinetics of cocoa flavan-3-ol metabolites in humans.
Borges, G; Crozier, A; Donovan, JL; Edwards, CA; Lean, ME; Mullen, W; Serafini, M, 2009
)
0.35
" Studies that showed protective effects of cocoa and those that showed no effect of milk on bioavailability used products that have a much higher flavan-3-ol content than does the commercial cocoa used in the present study."( Milk decreases urinary excretion but not plasma pharmacokinetics of cocoa flavan-3-ol metabolites in humans.
Borges, G; Crozier, A; Donovan, JL; Edwards, CA; Lean, ME; Mullen, W; Serafini, M, 2009
)
0.35
"The effects of epigallocatechin gallate (EGCG) on the oral bioavailability and pharmacokinetics of tamoxifen and its metabolite, 4-hydroxytamoxifen, were investigated in rats."( Effects of epigallocatechin gallate on the oral bioavailability and pharmacokinetics of tamoxifen and its main metabolite, 4-hydroxytamoxifen, in rats.
Choi, JS; Shin, SC, 2009
)
0.35
"Epigallocatechin gallate (EGCG), a main anticancer component in green tea, has a poor bioavailability in rats and humans due to oxidation, metabolism and its efflux."( Studies on the effects of oral administration of nutrient mixture, quercetin and red onions on the bioavailability of epigallocatechin gallate from green tea extract.
Gawande, S; Ivanov, V; Kale, A; Kotwal, S; Netke, S; Niedzwiecki, A; Rath, M; Roomi, W, 2010
)
0.36
"The present study explored the bioavailability and brain deposition of a grape seed polyphenolic extract (GSPE) previously found to attenuate cognitive deterioration in a mouse model of Alzheimer's disease (AD)."( Bioavailability of gallic acid and catechins from grape seed polyphenol extract is improved by repeated dosing in rats: implications for treatment in Alzheimer's disease.
Cooper, B; Ferruzzi, MG; Ho, L; Janle, EM; Lobo, JK; Pasinetti, GM; Simon, JE; Weaver, C; Welch, C; Wu, QL, 2009
)
0.35
" Urinary metabolites of polyphenols could complement dietary assessment of the bioavailability of these nutrients."( Urinary polyphenols and breast cancer risk: results from the Shanghai Women's Health Study.
Cai, H; Cai, Q; Chow, WH; Dai, Q; Franke, AA; Gao, YT; Li, H; Luo, J; Rothman, N; Shrubsole, MJ; Shu, XO; Yang, G; Zheng, W, 2010
)
0.36
"As intestinal metabolism strongly influences the bioavailability of flavonoids, this study investigated the microbial deconjugation and degradation of the most common flavan-3-ols using the pig cecum in vitro model system developed in the authors' group."( Degradation and metabolism of catechin, epigallocatechin-3-gallate (EGCG), and related compounds by the intestinal microbiota in the pig cecum model.
Humpf, HU; van't Slot, G, 2009
)
0.35
" These findings (modulation of plasma EGCG level by CAF) provide ideas for modulating the bioavailability of tea catechins, which can be applied to tea-related drinks and foods."( Effects of co-administration of tea epigallocatechin-3-gallate (EGCG) and caffeine on absorption and metabolism of EGCG in humans.
Kimura, F; Miyazawa, T; Nakagawa, K; Nakamura, M; Nakayama, K; Niino, H; Sookwong, P; Tsuduki, T, 2009
)
0.35
"The bioavailability values observed are in agreement with previous reports, although the dosage of polyphenols ingested in this study is remarkably lower."( Bioavailability of catechins from ready-to-drink tea.
Brighenti, F; Calani, L; Cordero, C; Del Rio, D; Jechiu, L; Scazzina, F, 2010
)
0.36
" These results demonstrate the feasibility of developing a diet-based combinatorial approach for CaP prevention and treatment and raise the possibility that serum added to culture medium might affect uptake, bioavailability and biological efficacy of dietary phytochemicals."( Targeting CWR22Rv1 prostate cancer cell proliferation and gene expression by combinations of the phytochemicals EGCG, genistein and quercetin.
Hsieh, TC; Wu, JM, 2009
)
0.35
" Reduction in endothelin-1 (ET-1) synthesis may also increase bioavailability of nitric oxide."( Green tea polyphenol epigallocatechin gallate reduces endothelin-1 expression and secretion in vascular endothelial cells: roles for AMP-activated protein kinase, Akt, and FOXO1.
Kim, JA; Quon, MJ; Reiter, CE, 2010
)
0.36
" Absolute bioavailability of (14)C from [(14)C]procyanidin B2 was calculated as approximately 82% using the values for total urinary (14)C."( In vivo bioavailability, absorption, excretion, and pharmacokinetics of [14C]procyanidin B2 in male rats.
Barron, D; Brown, JE; Clifford, MN; King, LJ; Stoupi, S; Viton, F; Williamson, G, 2010
)
0.36
" While some studies suggest that methylations can increase the bioavailability of polyphenols, other studies indicate a decrease in the anticancer benefits of methylated polyphenols."( Polyphenols: biological activities, molecular targets, and the effect of methylation.
Dou, QP; Landis-Piwowar, KR, 2008
)
0.35
" However, the stability and bioavailability of EGCG are restricted."( A pro-drug of the green tea polyphenol (-)-epigallocatechin-3-gallate (EGCG) prevents differentiated SH-SY5Y cells from toxicity induced by 6-hydroxydopamine.
Chan, TH; Chang, RC; Chao, J; Ho, YS; Huie, MJ; Lai, CS; Lam, WH; Lau, WK; Wang, M; Yu, MS; Yuen, WH, 2010
)
0.36
" The data obtained point to the importance of the colonic microflora in the overall bioavailability and potential bioactivity of dietary flavonoids."( Green tea flavan-3-ols: colonic degradation and urinary excretion of catabolites by humans.
Crozier, A; Edwards, CA; Lean, ME; Mullen, W; Roowi, S; Stalmach, A, 2010
)
0.36
"The aim of this study was to investigate green tea flavan-3-ol catabolism and plasma pharmacokinetic and urinary excretion by high-performance liquid chromatography with tandem mass spectrometry to evaluate their absolute bioavailability by taking into account all known and some unknown catabolites deriving from their interaction with the gastrointestinal tract and its host microflora."( Bioavailability and catabolism of green tea flavan-3-ols in humans.
Brighenti, F; Calani, L; Cordero, C; Del Rio, D; Pellegrini, N; Salvatore, S,
)
0.13
" The calculated bioavailability was equal to 39% and it is interesting to notice the great variability in urinary excretion of colonic metabolites among participants, probably related to differences in their own colonic microflora."( Bioavailability and catabolism of green tea flavan-3-ols in humans.
Brighenti, F; Calani, L; Cordero, C; Del Rio, D; Pellegrini, N; Salvatore, S,
)
0.13
" We have recently shown promising preclinical results with the use of green tea polyphenol, (-)-epigallocatechin-3-gallate (EGCG) in mouse models of both diseases, however the translation into clinical use has been problematic primarily as a result of poor bioavailability and inefficient delivery to the central nervous system (CNS)."( Nanolipidic particles improve the bioavailability and alpha-secretase inducing ability of epigallocatechin-3-gallate (EGCG) for the treatment of Alzheimer's disease.
Bickford, PC; Fountain, M; Giunta, B; Shytle, RD; Smith, A; Tan, J, 2010
)
0.36
" Fish oil enhanced bioavailability of EGCG versus EGCG treatment alone (P<0."( Fish oil enhances anti-amyloidogenic properties of green tea EGCG in Tg2576 mice.
Giunta, B; Hou, H; Ruscin, A; Salemi, J; Shytle, RD; Tan, J; Zhu, Y, 2010
)
0.36
"Hyperglycaemia is known to reduce nitric oxide (NO) bioavailability by modulating endothelial NO synthase (eNOS) activity, and polyphenols are believed to have cardiovascular benefit."( Beneficial effect of the oligomerized polyphenol oligonol on high glucose-induced changes in eNOS phosphorylation and dephosphorylation in endothelial cells.
Fujii, H; Hattori, Y; Hayashi, T; Matsuda, N; Nishioka, H; Yokoo, H; Zhang, XH, 2010
)
0.36
" Central to this opportunity is a need to better understand factors that may affect the bioavailability of specific phenolic components from coffee and tea based beverages."( The influence of beverage composition on delivery of phenolic compounds from coffee and tea.
Ferruzzi, MG, 2010
)
0.36
" Compared to controls (without EGCG), the AUCs of oral nicardipine and the extent of absolute oral bioavailability (F) were also greater with oral EGCG."( Effects of oral epigallocatechin gallate on the pharmacokinetics of nicardipine in rats.
Burm, JP; Choi, JS, 2009
)
0.35
" Amongst many reasons, inefficient systemic delivery and bioavailability of promising chemopreventive agents are considered to significantly contribute to such a disconnect."( Nanochemoprevention by bioactive food components: a perspective.
Mukhtar, H; Siddiqui, IA, 2010
)
0.36
"Many polyphenolic compounds are poorly digested, and have low bioavailability due to their long chain lengths and chemical composition."( Bioactivity of a flavanol-rich lychee fruit extract in adipocytes and its effects on oxidant defense and indices of metabolic syndrome in animal models.
Fujii, H; Gross, HB; Hackman, RM; Kalgaonkar, S; Keen, CL; Nishioka, H, 2010
)
0.36
" The review also addresses the limitations of the dose, pharmacokinetics, and bioavailability of EGCG in experimental animals and findings related to the EGCG-drug interaction."( Green tea polyphenol epigallocatechin 3-gallate in arthritis: progress and promise.
Ahmed, S, 2010
)
0.36
" Here, we present evidence that TMECG markedly reduces melanoma H(4)B and NO bioavailability and that TMECG action is abolished by the eNOS inhibitor N(omega)-nitro-L-arginine methyl ester or the H(2)O(2) scavenger catalase, which strongly suggests H(2)O(2)-dependent DHFR downregulation."( Mechanism of dihydrofolate reductase downregulation in melanoma by 3-O-(3,4,5-trimethoxybenzoyl)-(-)-epicatechin.
Cabezas-Herrera, J; Chazarra, S; Montenegro, MF; Rodríguez-López, JN; Sánchez-del-Campo, L, 2010
)
0.36
" Plasma free catechins were detectable in both beverage and extract groups versus controls at screen and at 8 weeks, indicating compliance and bioavailability of green tea catechins."( Green tea supplementation affects body weight, lipids, and lipid peroxidation in obese subjects with metabolic syndrome.
Aston, CE; Basu, A; Betts, NM; Leyva, MJ; Lyons, TJ; Sanchez, K; Wu, M, 2010
)
0.36
" Their respective bioavailability has been studied separately, but absorption of their respective bioactive phenolics has not been compared."( Plasma appearance and correlation between coffee and green tea metabolites in human subjects.
Barron, D; Cavin, C; Dionisi, F; Fraering, AL; Guy, P; Longet, K; Marmet, C; Moulin, J; Renouf, M; Steiling, H; Williamson, G, 2010
)
0.36
" Studies have shown that concomitant use of a COMT inhibitor is highly beneficial in controlling the wearing-off phenomenon by improving L-DOPA bioavailability as well as brain entry."( Dual beneficial effects of (-)-epigallocatechin-3-gallate on levodopa methylation and hippocampal neurodegeneration: in vitro and in vivo studies.
Bishop, SC; Fukui, M; Kang, KS; Wen, Y; Yamabe, N; Zhu, BT, 2010
)
0.36
" Despite accomplished outcomes in preclinical settings, its applicability to humans has met with limited success for many reasons including inefficient systemic delivery and bioavailability of promising chemopreventive agents."( Nanochemoprevention: sustained release of bioactive food components for cancer prevention.
Adhami, VM; Ahmad, N; Mukhtar, H; Siddiqui, IA, 2010
)
0.36
" On the basis of the excretory pattern of (epi)catechins in the urine, data suggested that the bioavailability of epicatechins may be higher than that of catechins and that (epi)catechins may be more available from blueberries compared to cranberries."( Urinary excretion of (Epi)catechins in rats fed different berries or berry products.
Howard, LR; Khanal, RC; Prior, RL; Rogers, TJ; Wilkes, SE, 2010
)
0.36
"Bioactive constituents of pecan nuts such as γ-tocopherol and flavan-3-ol monomers show antioxidant properties in vitro, but bioavailability in humans is not known."( Pecans acutely increase plasma postprandial antioxidant capacity and catechins and decrease LDL oxidation in humans.
Haddad, EH; Hudthagosol, C; McCarthy, K; Oda, K; Sabaté, J; Wang, P, 2011
)
0.37
" While bioavailability of green tea bioactives is fairly well understood, some gaps still remain to be filled, especially the identification and quantification of conjugated metabolites in plasma, such as, sulphated, glucuronidated or methylated compounds."( Plasma pharmacokinetics of catechin metabolite 4'-O-Me-EGC in healthy humans.
Dionisi, F; Kussmann, M; Longet, K; Marmet, C; Nagy, K; Redeuil, K; Renouf, M; Williamson, G, 2011
)
0.37
" Its presence in significant amounts should not be overlooked when assessing human bioavailability of green tea."( Plasma pharmacokinetics of catechin metabolite 4'-O-Me-EGC in healthy humans.
Dionisi, F; Kussmann, M; Longet, K; Marmet, C; Nagy, K; Redeuil, K; Renouf, M; Williamson, G, 2011
)
0.37
"We attempted to improve the bioavailability of green tea catechins by using food ingredients."( Increased plasma concentration of epigallocatechin in mice after orally administering a green tea (Camellia sinensis L.) extract supplemented by steamed rice.
Ema, K; Maeda-Yamamoto, M; Monobe, M; Tokuda, Y, 2011
)
0.37
"Despite bioavailability issues, tea catechins have emerged as promising chemopreventive agents because of their efficacy in various animal models."( Comparison of a pair of synthetic tea-catechin-derived epimers: synthesis, antifolate activity, and tyrosinase-mediated activation in melanoma.
Cabezas-Herrera, J; Chazarra, S; Montenegro, MF; Rodríguez-López, JN; Sáez-Ayala, M; Sánchez-del-Campo, L; Tárraga, A, 2011
)
0.37
"The aim of this work was to investigate whether the oral bioavailability and brain regional distribution of (+)-catechin could be improved by utilizing elastic liposomes."( Elastic liposomes as carriers for oral delivery and the brain distribution of (+)-catechin.
Fang, JY; Huang, YB; Tsai, MJ; Tsai, YH; Wu, PC; Wu, YH, 2011
)
0.37
" Our study firstly showed that EGCG interacted with sunitinib and reduced the bioavailability of sunitinib."( Interaction of green tea polyphenol epigallocatechin-3-gallate with sunitinib: potential risk of diminished sunitinib bioavailability.
Chen, Y; Cheng, K; Dong, H; Gao, F; Ge, J; He, JP; Hou, JM; Li, HZ; Li, LH; Lin, HJ; Liu, JY; Peng, XC; Qiu, M; Su, JM; Tan, BX; Wei, M; Wu, Y; Yang, L; Zhao, Y; Zhao, YL, 2011
)
0.37
" Future studies should be designed to account for a disease process in which the pathogenic factors may take place for years before disease manifestations take place, the possibly limited bioavailability of polyphenols, and the potential need to provide combinations or modifications of polyphenols."( Polyphenols: planting the seeds of treatment for the metabolic syndrome.
Cherniack, EP, 2011
)
0.37
"The bioactivities and bioavailability of plant polyphenols including proanthocyanidins and other catechin derivatives may be affected by covalent reaction between polyphenol and proteins."( Capillary electrophoresis methods for the determination of covalent polyphenol-protein complexes.
Danielson, ND; Hagerman, AE; Loegel, TN; Trombley, JD, 2011
)
0.37
" However, the major concerns with GTPs are their bioavailability and stability under physiologic conditions."( A novel prodrug of epigallocatechin-3-gallate: differential epigenetic hTERT repression in human breast cancer cells.
Chan, TH; Meeran, SM; Patel, SN; Tollefsbol, TO, 2011
)
0.37
" However, the effects of concurrent consumption of tea on the bioavailability and the net therapeutic potential of co-administered chemical drugs are not clear."( Effect of green tea on pharmacokinetics of 5-fluorouracil in rats and pharmacodynamics in human cell lines in vitro.
Du, J; Gu, C; Han, M; Lu, W; Qiao, J; Shang, W; Wang, W; Yin, W; Zhu, M, 2011
)
0.37
" However, poor bioavailability following ingestion limits their efficacy in vivo."( Sustained systemic delivery of green tea polyphenols by polymeric implants significantly diminishes benzo[a]pyrene-induced DNA adducts.
Cai, J; Cao, P; Gupta, RC; Spencer, WA; Vadhanam, MV, 2011
)
0.37
" All these actions would be limited by the bioavailability of flavanols at the target tissue."( Dietary flavonoids: Role of (-)-epicatechin and related procyanidins in cell signaling.
Fraga, CG; Oteiza, PI, 2011
)
0.37
" Current knowledge on how to enhance bioavailability could be the answer to some of these issues."( Epigallocatechin-3-gallate (EGCG) for clinical trials: more pitfalls than promises?
Hunstein, W; Mereles, D, 2011
)
0.37
" The study aimed to determine the bioavailability of green tea polyphenols in prostate tissue and to measure its effects on systemic and tissue biomarkers of prostate cancer carcinogenesis."( Randomized, double-blind, placebo-controlled trial of polyphenon E in prostate cancer patients before prostatectomy: evaluation of potential chemopreventive activities.
Ahmann, FR; Chow, HH; Gretzer, MB; Hsu, CH; Nagle, RB; Nguyen, MM; Parnes, HL; Sokoloff, MH; Tangrea, JA, 2012
)
0.38
" Unlike the flavanol monomers EC and ECG, therefore, B2G2 bioavailability should not be limited by metabolism."( Glucuronidation and methylation of procyanidin dimers b2 and 3,3″-di-o-galloyl-b2 and corresponding monomers epicatechin and 3-o-galloyl-epicatechin in mouse liver.
Agarwal, C; Agarwal, R; Gu, M; Shrestha, SP; Thompson, JA; Wempe, MF, 2012
)
0.38
" Both epidemiological and biological evidence suggests a health-protective role for dietary flavan-3-ols, leading to increased interest in the bioavailability of these compounds from foods."( Influence of formulation and processing on absorption and metabolism of flavan-3-ols from tea and cocoa.
Ferruzzi, MG; Neilson, AP, 2011
)
0.37
" The average 48 h bioavailability was close to 62%, major contributors being microbial metabolites."( Updated bioavailability and 48 h excretion profile of flavan-3-ols from green tea in humans.
Brighenti, F; Calani, L; Del Rio, D; Luisa Callegari, M; Morelli, L, 2012
)
0.38
"Nanochemoprevention by oral consumption was developed by the encapsulation of (-)-epigallocatechin-3-gallate (EGCG) with nanoparticles that were electrostatically assembled from bioactive caseinophosphopeptides and chitosan, which was highly biocompatible and able to enhance the bioavailability of EGCG."( Nanochemoprevention by encapsulation of (-)-epigallocatechin-3-gallate with bioactive peptides/chitosan nanoparticles for enhancement of its bioavailability.
Hu, B; Huang, Q; Tang, W; Ting, Y; Yang, X; Zeng, X, 2012
)
0.38
" Flavonoids have been shown to possess antioxidant and anti-inflammatory properties and we investigated whether flavonoids, at submicromolar concentrations relevant to their bioavailability from the diet, were able to modulate NF-κB signalling in astrocytes."( Regulation of NF-κB activity in astrocytes: effects of flavonoids at dietary-relevant concentrations.
Rattray, M; Spencer, JP; Spilsbury, A; Vauzour, D, 2012
)
0.38
"9 mg/kg body weight) or the combination of the both - piperine was used in this combination to enhance the bioavailability of EGCG."( Green tea polyphenol epigallocatechin-3-gallate shows therapeutic antioxidative effects in a murine model of colitis.
Brückner, M; Domschke, W; Kucharzik, T; Lügering, A; Westphal, S, 2012
)
0.38
"Compared to control, consumption of GT with milk, caseinate, or soy protein significantly reduced the bioavailability (mean area under the plasma concentration-time curve) of total catechins (means ± SEM; GT + M, 87 ± 5%; GT + CS, 79 ± 5%; GT + S, 88 ± 4%), epigallocatechin gallate (GT + M, 68 ± 4%; GT + CS, 63 ± 5%; GT + S, 76 ± 5%), and epicatechin gallate (GT + M, 68 ± 5%; GT + CS, 66 ± 6%; GT + S, 77 ± 6%), while the bioavailability of non-galloylated catechins such as epigallocatechin (GT + M, 134 ± 9%; GT + CS, 118 ± 9 %; GT + S, 123 ± 8%) and epicatechin (GT + M, 125 ± 10%; GT + CS, 114 ± 11%; GT + S, 110 ± 8%) significantly increased."( Simultaneous ingestion of dietary proteins reduces the bioavailability of galloylated catechins from green tea in humans.
Egert, S; Frank, J; Müller, MJ; Rimbach, G; Tereszczuk, J; Wein, S; Wolffram, S, 2013
)
0.39
"Simultaneous ingestion of dietary proteins reduces the bioavailability of galloylated catechins from GT in humans."( Simultaneous ingestion of dietary proteins reduces the bioavailability of galloylated catechins from green tea in humans.
Egert, S; Frank, J; Müller, MJ; Rimbach, G; Tereszczuk, J; Wein, S; Wolffram, S, 2013
)
0.39
" An assessment of literature data strongly suggested that the majority of reports where enzyme hydrolysis was used had significantly underestimated epicatechin bioavailability in humans."( Human O-sulfated metabolites of (-)-epicatechin and methyl-(-)-epicatechin are poor substrates for commercial aryl-sulfatases: implications for studies concerned with quantifying epicatechin bioavailability.
de Roos, B; Duthie, GG; Hollands, W; Kroon, PA; Needs, PW; Ostertag, LM; Saha, S, 2012
)
0.38
" The effect of quercetin on bioavailability and metabolism of GTPs was confirmed in vivo."( Quercetin increased bioavailability and decreased methylation of green tea polyphenols in vitro and in vivo.
Heber, D; Henning, SM; Wang, P, 2012
)
0.38
" Indeed, natural products have been the most productive source of leads for the development of anti-cancer drugs but perceived disadvantages, such as low bioavailability and week potency, have limited their development and use in the clinic."( Novel epigallocatechin gallate (EGCG) analogs activate AMP-activated protein kinase pathway and target cancer stem cells.
Chan, TH; Chen, D; Cui, Q; Dou, QP; Pamu, S, 2012
)
0.38
" According to present literature C-glycosylated flavones and oligomeric procyanidins are considered to be the active ingredients, despite the fact that no systematic data are available on systemic bioavailability of proanthocyanidins after oral intake."( In vitro intestinal transport of oligomeric procyanidins (DP 2 to 4) across monolayers of Caco-2 cells.
Deters, A; Hensel, A; Zumdick, S, 2012
)
0.38
" The bioavailability of catechin may be improved by co-administration of functional foods."( Influence of gallate and pyrogallol moieties on the intestinal absorption of (-)-epicatechin and (-)-epicatechin gallate.
Choshi, T; Hibino, S; Kamishikiryou, J; Sugihara, N; Tagashira, T, 2012
)
0.38
" The bioavailability of these natural compounds is an important factor that determines their efficacy."( Tea phenols in bulk and nanoparticle form modify DNA damage in human lymphocytes from colon cancer patients and healthy individuals treated in vitro with platinum-based chemotherapeutic drugs.
Alotaibi, A; Anderson, D; Bhatnagar, P; Gupta, KC; Najafzadeh, M, 2013
)
0.39
" A prodrug of EGCG (pro-EGCG, EGCG octaacetate) is utilized to enhance the stability and bioavailability of EGCG in vivo."( Prodrug of green tea epigallocatechin-3-gallate (Pro-EGCG) as a potent anti-angiogenesis agent for endometriosis in mice.
Chan, TH; Cheng, JT; Chu, CY; Chu, KO; He, YX; Kwong, J; Lau, TS; Li, G; Man, GC; Qin, L; Wang, CC; Xu, H; Zhang, T, 2013
)
0.39
"This study was carried out to elucidate the structural advantage of a gallated form of tea catechin on modulating bioavailability of dietary starch in rats."( Gallated form of tea catechin, not nongallated form, increases fecal starch excretion in rats.
Matsumoto, Y; Unno, T; Yamamoto, Y, 2012
)
0.38
"Human bioavailability of cocoa flavanols and phenolic acids from a cocoa-nut cream (CC) and from CC enriched with a 1·5 % (w/w) cocoa polyphenol extract in free form (FPC) or encapsulated with a gastric-resistant high-amylose maize starch (EPC), was studied."( Human bioavailability of flavanols and phenolic acids from cocoa-nut creams enriched with free or microencapsulated cocoa polyphenols.
Barone Lumaga, R; Ferracane, R; Fogliano, V; Morelló, JR; Reguant Miranda, J; Sellitto, S; Shimoni, E; Vitaglione, P, 2013
)
0.39
" The stronger in vivo effect of (+)-catechin on L-DOPA methylation compared to the other dietary compounds is due to its better bioavailability in vivo."( Beneficial effects of natural phenolics on levodopa methylation and oxidative neurodegeneration.
Fukui, M; Kang, KS; Wen, Y; Yamabe, N; Zhu, BT, 2013
)
0.39
" Since the anticancer activity of polyphenols largely depends on their susceptibility to biotransformation reactions, numerous EGCG derivatives, analogs and prodrugs have been designed to improve the stability, bioavailability and anticancer potency of the native compound."( Novel epigallocatechin gallate analogs as potential anticancer agents: a patent review (2009 - present).
Chan, TH; Chen, D; Dou, QP; Foldes, R; Landis-Piwowar, K, 2013
)
0.39
"Green tea catechins (GTC) reduce UV radiation (UVR)-induced inflammation in experimental models, but human studies are scarce and their cutaneous bioavailability and mechanism of photoprotection are unknown."( Oral green tea catechin metabolites are incorporated into human skin and protect against UV radiation-induced cutaneous inflammation in association with reduced production of pro-inflammatory eicosanoid 12-hydroxyeicosatetraenoic acid.
Bennett, S; Clarke, KA; Darby, G; Dew, TP; Farrar, MD; Massey, KA; Nicolaou, A; Rhodes, LE; Watson, RE; Williamson, G, 2013
)
0.39
"The interaction of procyanidins with proteins has aroused extensive attention due to its important relationship with the bioavailability and astringent property of polyphenols."( Interaction between lysozyme and procyanidin: multilevel structural nature and effect of carbohydrates.
He, Z; Liang, M; Liu, R; Qi, W; Su, R; Wang, L; Yu, Y, 2013
)
0.39
" Finally, we highlight the role of synergy, bioavailability and pharmacokinetics of tea polyphenols, current status of clinical trials, discuss future directions, and comment on the future challenges involved in the effective use of tea polyphenols for the prevention and management of liver cancer."( Chemopreventive and therapeutic potential of tea polyphenols in hepatocellular cancer.
Bishayee, A; Darvesh, AS, 2013
)
0.39
" It emerged that the poor bioavailability of these nutraceuticals poses an obstacle to their exerting adequate anti-cancer potential."( Nutraceuticals as new treatment approaches for oral cancer: II. Green tea extracts and resveratrol.
Chaushu, G; Dayan, A; Dayan, D; Salo, T; Vered, M; Zlotogorski, A, 2013
)
0.39
" Results provide a potential strategy to enhance the delivery and bioavailability of catechins in humans by modulating green tea formulation with vitamin C and xylitol."( Green tea formulations with vitamin C and xylitol on enhanced intestinal transport of green tea catechins.
Chung, JH; Chung, JO; Kim, S; Lee, SJ; Oh, YJ; Shim, SM, 2013
)
0.39
" However, metabolism and bioavailability of C are not fully understood."( Dose-response plasma appearance of green tea catechins in adults.
Beaumont, M; Dionisi, F; Guy, PA; Lepage, M; Marmet, C; Renouf, M; Williamson, G, 2013
)
0.39
"This study investigates the human bioavailability (plasma appearance) of C after drinking three doses of infused green tea in a randomized cross-over design."( Dose-response plasma appearance of green tea catechins in adults.
Beaumont, M; Dionisi, F; Guy, PA; Lepage, M; Marmet, C; Renouf, M; Williamson, G, 2013
)
0.39
" However, the low level of stability and bioavailability in the body makes administering EGCG at chemopreventive doses unrealistic."( Anticancer activities of (-)-epigallocatechin-3-gallate encapsulated nanoliposomes in MCF7 breast cancer cells.
Cai, Q; de Pace, RC; Fan, Z; Gao, W; Liu, X; Nie, S; Pan, X; Sun, M; Wang, S; Zhang, J, 2013
)
0.39
" The biological effects depend on bioavailability of flavanols which may be influenced by food matrix and dose ingested."( Bioavailability of epicatechin and effects on nitric oxide metabolites of an apple flavanol-rich extract supplemented beverage compared to a whole apple puree: a randomized, placebo-controlled, crossover trial.
Dainty, JR; Hart, DJ; Hasselwander, O; Hollands, WJ; Kroon, PA; Tiihonen, K; Wood, R, 2013
)
0.39
"Oral bioavailability of apple epicatechin increases at higher doses, is reduced by whole apple matrix and has the potential to increase NO bioavailability."( Bioavailability of epicatechin and effects on nitric oxide metabolites of an apple flavanol-rich extract supplemented beverage compared to a whole apple puree: a randomized, placebo-controlled, crossover trial.
Dainty, JR; Hart, DJ; Hasselwander, O; Hollands, WJ; Kroon, PA; Tiihonen, K; Wood, R, 2013
)
0.39
" The bioavailability and efficacy of antioxidants in human corneal limbal epithelial (HCLE) cells were measured to determine whether antioxidants might be beneficial constituents of lubricant eye drops."( Bioavailability of antioxidants applied to stratified human corneal epithelial cells.
Koetje, LR; Mitchell, AK; Schotanus, MP; Stoddard, AR; Ubels, JL, 2013
)
0.39
" Many reasons are attributed to this limited success, including inefficient systemic delivery and bioavailability under in vivo conditions."( Synthesis of PLGA nanoparticles of tea polyphenols and their strong in vivo protective effect against chemically induced DNA damage.
Bhatnagar, P; Gupta, KC; Kumar, P; Mishra, S; Shukla, Y; Singh, M; Srivastava, AK, 2013
)
0.39
" Conventional preformulation methods have been employed to improve the bioavailability of EGCg."( Crystal engineering of green tea epigallocatechin-3-gallate (EGCg) cocrystals and pharmacokinetic modulation in rats.
Arora, KK; Kavuru, P; Kesani, S; Shytle, RD; Smith, AJ; Tan, J; Zaworotko, MJ, 2013
)
0.39
" Water deficit increased the content of procyanidins of low molecular mass, improving their potential bioavailability and possible physiological effects on human health."( Effect of water deficit and domestic storage on the procyanidin profile, size, and aggregation process in pear-jujube (Z. jujuba) fruits.
Collado-González, J; Cruz, ZN; Díaz-Baños, FG; Ferreres, F; Galindo, A; García de la Torre, J; Gil-Izquierdo, A; Medina, S; Rodríguez, P; Torrecillas, A, 2013
)
0.39
" This research provided a practical approach that may enhance the bioavailability and bioactivity of procyanidins in cranberries."( Depolymerization of cranberry procyanidins using (+)-catechin, (-)-epicatechin, and (-)-epigallocatechin gallate as chain breakers.
Gao, JM; Gu, L; Liu, H; Zou, T, 2013
)
0.39
" Poor absorption results in low systemic bioavailability of EGCG after oral administration but high colonic mucosal exposure."( A pilot study to evaluate the safety and efficacy of an oral dose of (-)-epigallocatechin-3-gallate-rich polyphenon E in patients with mild to moderate ulcerative colitis.
Beatty, K; Dryden, GW; Lam, A; McClain, CJ; Qazzaz, HH, 2013
)
0.39
" Finally, the challenges of developing flavonoid delivery systems that improve flavonoid bioavailability and their anticancer therapy potentials were summarized."( Delivering flavonoids into solid tumors using nanotechnologies.
Chen, M; Wang, S; Wang, Y; Zhang, J, 2013
)
0.39
" This drawback could be overcome by designing green tea catechins with better bioavailability and/or by cotreatment combining breast cancer endocrine treatment with green tea catechins."( Effect of green tea catechins on breast carcinogenesis: a systematic review of in-vitro and in-vivo experimental studies.
Yiannakopoulou, ECh, 2014
)
0.4
" To increase the bioavailability and selectivity to cancer cells, various liposomes of catechin viz."( A study on the role of (+)-catechin in suppression of HepG2 proliferation via caspase dependent pathway and enhancement of its in vitro and in vivo cytotoxic potential through liposomal formulation.
Jagani, HV; Jain, P; Josyula, VR; Kumar, N; Mallikarjuna Rao, C; Udupa, N; Vasanth Raj, P, 2013
)
0.39
"The in vitro bioaccessibility, bioavailability and plasma protein interaction of polyphenols from Annurca apple and other conventional cultivars were evaluated."( In vitro bioaccessibility, bioavailability and plasma protein interaction of polyphenols from Annurca apple (M. pumila Miller cv Annurca).
Campiglia, P; Novellino, E; Ritieni, A; Tenore, GC, 2013
)
0.39
" In order to improve pharmacological activity and bioavailability of natural tea catechins, two major strategies have been adopted to date which include synthesizing catechin analogs/prodrugs and the development of novel drug delivery systems."( Catechin prodrugs and analogs: a new array of chemical entities with improved pharmacological and pharmacokinetic properties.
Bansal, S; Bhattacharya, S; Sharma, M; Vyas, S, 2013
)
0.39
" However, the limited bioavailability of active agents could be one reason for their restricted usefulness for human consumption."( Oral administration of naturally occurring chitosan-based nanoformulated green tea polyphenol EGCG effectively inhibits prostate cancer cell growth in a xenograft model.
Adhami, VM; Bharali, DJ; Cui, H; Khan, N; Mousa, SA; Mukhtar, H; Shabana, SM; Siddiqui, IA, 2014
)
0.4
" plantarum IFPL935 may have an impact on the bioavailability of these dietary polyphenols."( Lactobacillus plantarum IFPL935 favors the initial metabolism of red wine polyphenols when added to a colonic microbiota.
Barroso, E; Bartolomé, B; Martín-Alvarez, PJ; Martínez-Cuesta, MC; Moreno-Arribas, MV; Peláez, C; Requena, T; Sánchez-Patán, F; van de Wiele, T, 2013
)
0.39
" In this study, we compared the bioavailability of EGCG and O-methyl EGCGs in rats, and clarified the pharmacokinetics of O-methyl EGCGs."( Comparison of (-)-epigallocatechin-3-O-gallate (EGCG) and O-methyl EGCG bioavailability in rats.
Ichiyanagi, T; Ito, R; Ito, T; Maruki-Uchida, H; Oritani, Y; Setoguchi, Y, 2013
)
0.39
" However, black tea is commonly consumed with additives that could otherwise affect the bioavailability of the active tea molecules."( The fortification of tea with sweeteners and milk and its effect on in vitro antioxidant potential of tea product and glutathione levels in an animal model.
Khalid, R; Korir, MW; Ngure, RM; Wachira, FN; Wanyoko, JK, 2014
)
0.4
" Treatment of mice with EGCG in combination with tolcapone increased the bioavailability of EGCG and decreased the methylation of plasma norepinephrine: no apparent liver or behavioral toxicity was observed."( Synergistic inhibition of lung cancer cell lines by (-)-epigallocatechin-3-gallate in combination with clinically used nitrocatechol inhibitors of catechol-O-methyltransferase.
Forester, SC; Lambert, JD, 2014
)
0.4
"Recent research on the bioavailability of flavan-3-ols after ingestion of green tea by humans is reviewed."( Human studies on the absorption, distribution, metabolism, and excretion of tea polyphenols.
Clifford, MN; Crozier, A; van der Hooft, JJ, 2013
)
0.39
" Dried AM alone, and with trehalose or raffinose showed greater factor retention efficiencies and bioavailability compared to cryopreserved AM and demonstrated a more sustained biochemical factor time release in vitro."( Augmented dried versus cryopreserved amniotic membrane as an ocular surface dressing.
Allen, CL; Branch, MJ; Clare, G; Dadhwal, M; Dua, HS; Hopkinson, A; McIntosh, OD; Stewart, EA, 2013
)
0.39
" Epigallocatechin gallate-casein complexes were able to decrease the proliferation of HT-29 cancer cells, demonstrating that bioavailability may not be reduced by the nanoencapsulation."( Antiproliferative activity of tea catechins associated with casein micelles, using HT29 colon cancer cells.
Corredig, M; Haratifar, S; Meckling, KA, 2014
)
0.4
" However, the generally low solubility, stability, bioavailability and target specificity, together with the side effects seen when used at high levels, have limited their application."( Application of nanotechnology in improving bioavailability and bioactivity of diet-derived phytochemicals.
Moustaid-Moussa, N; Nie, S; Su, R; Sun, M; Wang, S; Wu, D; Zhang, J, 2014
)
0.4
"Nanoparticles have the potential to increase bioavailability of nutraceutical compounds such as (-)-epigallocatechin gallate (EGCG)."( Fabrication of self-assembled (-)-epigallocatechin gallate (EGCG) ovalbumin-dextran conjugate nanoparticles and their transport across monolayers of human intestinal epithelial Caco-2 cells.
Gu, L; Li, Z, 2014
)
0.4
" Our results suggest that polyphenolic compounds might be potential structural bases and source to find and project nature-based, safe, orally bioavailable direct thrombin inhibitors."( Thrombin inhibitory activity of some polyphenolic compounds.
Bijak, M; Krotkiewski, H; Nowak, P; Pawlaczyk, I; Ponczek, M; Saluk, J; Wachowicz, B; Ziewiecki, R, 2014
)
0.4
"The consumption of cacao-derived products, particularly in the form of dark chocolate is known to provide beneficial cardiovascular effects in normal individuals and in those with vascular dysfunction (reduced nitric oxide [NO] bioavailability and/or synthesis)."( Cell membrane mediated (-)-epicatechin effects on upstream endothelial cell signaling: evidence for a surface receptor.
Ceballos, G; Moreno-Ulloa, A; Ramirez-Sanchez, I; Romero-Perez, D; Villarreal, F, 2014
)
0.4
" Bioavailability measurements in plasma indicated that the attenuation of allergy symptoms could be due to the higher concentrations of bioavailable epicatechin metabolites."( Identification of epicatechin as one of the key bioactive constituents of polyphenol-enriched extracts that demonstrate an anti-allergic effect in a murine model of food allergy.
Actis-Goretta, L; Demont, A; Holvoet, S; Lepage, M; Lévêques, A; Mercenier, A; Nutten, S; Singh, A, 2014
)
0.4
" Their efficacy has been tested in tumor xenografted mice and considerable experimental findings have stimulated researchers to further improve the bioavailability of these nutraceuticals."( Targeting cancer with nano-bullets: curcumin, EGCG, resveratrol and quercetin on flying carpets.
Aras, A; Farooqi, AA; Hechenleitner, AA; Khokhar, AR; Pineda, EA; Qureshi, MZ; Silva, MF; Sobczak-Kupiec, A, 2014
)
0.4
" Furthermore, EGCG treatment was also effective in vivo, demonstrating oral bioavailability and reduced parasitic loads without altering serological toxicity markers."( The effect of (-)-epigallocatechin 3-O--gallate in vitro and in vivo in Leishmania braziliensis: involvement of reactive oxygen species as a mechanism of action.
Almeida-Amaral, EE; Canto-Cavalheiro, MM; Gervazoni, L; Inacio, JD, 2014
)
0.4
" Supernatant of activated platelets from PAD patients induced an increase of sCAMs release and a decrease of p-eNOS and nitric oxide (NO) bioavailability compared to unstimulated HUVEC."( Epicatechin and catechin modulate endothelial activation induced by platelets of patients with peripheral artery disease.
Bartimoccia, S; Biondi-Zoccai, G; Bucci, T; Carnevale, R; Chimenti, I; De Falco, E; Frati, G; Loffredo, L; Nocella, C; Peruzzi, M; Pignatelli, P; Violi, F, 2014
)
0.4
"5% of native polyphenols, suggesting potential bioavailability of significant amounts of antioxidants through the oral mucosal epithelium that might be gastric sensitive and/or poorly absorbed in the intestine."( Simulated gastrointestinal digestion, intestinal permeation and plasma protein interaction of white, green, and black tea polyphenols.
Campiglia, P; Giannetti, D; Novellino, E; Tenore, GC, 2015
)
0.42
" We believe that our work can provide useful information for better understanding the intercurrent relationships between cathechins bioavailability and their elicited biological effects."( Evaluation of non-covalent interactions between serum albumin and green tea catechins by affinity capillary electrophoresis.
Carru, C; Cossu, A; Giordo, R; Pintus, G; Pisanu, E; Posadino, AM; Scanu, B; Sotgia, S; Zinellu, A, 2014
)
0.4
"The encapsulation of epigallocatechin gallate (EGCG) in lipid nanoparticles (LNs) could be a suitable approach to avoid drug oxidation and epimerization, which are common processes that lead to low bioavailability of the drug limiting its therapeutic efficacy."( Physicochemical characterization of epigallocatechin gallate lipid nanoparticles (EGCG-LNs) for ocular instillation.
Andreani, T; Egea, MA; Fangueiro, JF; Fernandes, L; Garcia, ML; Silva, AM; Souto, EB, 2014
)
0.4
" Ingesting (-)-epicatechin with specific polyphenols could be a strategy to increase the bioavailability of (-)-epicatechin and to modulate its metabolic profile."( Modulation of (-)-epicatechin metabolism by coadministration with other polyphenols in Caco-2 cell model.
Actis-Goretta, L; Bertschy, E; Lévèques, A; Li, H; Patin, A; Sanchez-Bridge, B, 2015
)
0.42
"Interactions between polyphenols and macromolecules may impact polyphenol stability and bioavailability from foods."( Thermal degradation of green tea flavan-3-ols and formation of hetero- and homocatechin dimers in model dairy beverages.
Ferruzzi, MG; Manganais, C; Song, BJ, 2015
)
0.42
" We examined the effect of pretreatment with dietary EGCG on the hepatotoxicity and bioavailability of acute oral bolus dosing with EGCG in CF-1 mice."( Dietary pretreatment with green tea polyphenol, (-)-epigallocatechin-3-gallate reduces the bioavailability and hepatotoxicity of subsequent oral bolus doses of (-)-epigallocatechin-3-gallate.
Forester, SC; James, KD; Lambert, JD, 2015
)
0.42
" However, the chemical modification of anthocyanins and procyanidins (water soluble pigments) to more lipophilic compounds has the advantage of increased bioavailability in biological matrices, and to potentiate their application in food matrices and cosmetic products."( Synthesis, characterisation and antioxidant features of procyanidin B4 and malvidin-3-glucoside stearic acid derivatives.
Araújo, P; Cruz, L; de Freitas, V; Fernandes, VC; Mateus, N, 2015
)
0.42
" Epigallocatechin gallate (EGCG) is often described as the most potently chemopreventive green tea catechin; however, the low bioavailability of EGCG is a limiting factor for its biological effect."( Chemopreventive potential of the tannase-mediated biotransformation of green tea.
Camara, LE; Ferreira, LR; Gambero, A; Macedo, GA; Macedo, JA; Ribeiro, ML; Santos, JC, 2012
)
0.38
"Poor absorption and bioavailability of procyanidins from the upper gastrointestinal tract result in the majority of the dose reaching the colon."( Pan-colonic pharmacokinetics of catechins and procyanidins in male Sprague-Dawley rats.
Goodrich, KM; Ickes, AK; Neilson, AP; Smithson, AT, 2015
)
0.42
"Depolymerization of procyanidin polymers into oligomers enhances their bioavailability and bioactivity because oligomers are bioavailable."( Hydrogenolytic depolymerization of procyanidin polymers from hi-tannin sorghum bran.
Gu, L; Li, Z; Qi, Y; Tong, Z; Zeng, J, 2015
)
0.42
" Although their bioavailability is discussed, various studies suggest that EGCG modulates cellular and molecular mechanisms of various symptoms leading to metabolic syndrome."( Epigallocatechin Gallate: A Review of Its Beneficial Properties to Prevent Metabolic Syndrome.
Clere, N; Faure, S; Fillon, L; Legeay, S; Rodier, M, 2015
)
0.42
" The poor bioavailability of EGCG limits HCV antiviral activity in vitro."( Prevention of hepatitis C virus infection using a broad cross-neutralizing monoclonal antibody (AR4A) and epigallocatechin gallate.
Burton, DR; Douglas, D; Egli, A; Forester, S; Houghton, M; Humar, A; Kneteman, N; Lambert, J; Law, J; Law, M; Lund, G; O'Shea, D; Tyrrell, DL, 2016
)
0.43
" As a result of this, a significant decrease in the intestinal uptake and peroral bioavailability of the P-glycoprotein substrates (verapamil and atorvastatin) was observed along with the progression of diabetes as compared to normal animals."( Increased intestinal P-glycoprotein expression and activity with progression of diabetes and its modulation by epigallocatechin-3-gallate: Evidence from pharmacokinetic studies.
Agarwal, M; Dash, RP; Ellendula, B; Nivsarkar, M, 2015
)
0.42
"The stability and bioavailability of catechins, a kind of tea polyphenols with health benefit, could be improved by complexing with cyclodextrins."( Improved stability of (+)-catechin and (-)-epicatechin by complexing with hydroxypropyl-β-cyclodextrin: Effect of pH, temperature and configuration.
Han, J; Liu, M; Niu, M; Sun, D; Wang, B; Wang, C; Wang, Z; Xie, J; Zheng, Y, 2016
)
0.43
" This interaction may modulate their bioavailability and effectiveness."( N- and S-homocysteinylation reduce the binding of human serum albumin to catechins.
Arru, D; Carru, C; Cossu, A; Giordo, R; Mangoni, AA; Pintus, G; Posadino, AM; Scanu, B; Sotgia, S; Zinellu, A, 2017
)
0.46
" This study suggests that GTCs, formulated with vitamin C and xylitol followed by γ-CD encapsulation or HPMCP enteric coating, provide combinational effect to increase bioavailability of GTCs."( Combinational enhancing effects of formulation and encapsulation on digestive stability and intestinal transport of green tea catechins.
Chung, JH; Ko, S; Shim, SM; Son, YR, 2016
)
0.43
" Among many reasons, inefficient systemic delivery and bioavailability of promising chemopreventive agents are considered to significantly contribute to such a disconnection."( Impact of nanotechnology on the delivery of natural products for cancer prevention and therapy.
Sanna, V; Siddiqui, IA, 2016
)
0.43
" We developed a prodrug of EGCG (Pro-EGCG or 1) which shows increased stability, bioavailability and biological activity in vivo as compared to EGCG."( Biological and Mechanistic Characterization of Novel Prodrugs of Green Tea Polyphenol Epigallocatechin Gallate Analogs in Human Leiomyoma Cell Lines.
Ahmed, RS; Chan, TH; Dou, QP; El-Banna, HA; El-Ghoneimy, AA; Farshi, P; Foldes, R; Liu, G; Renzetti, A; Saed, G; Soave, C; Yang, H, 2016
)
0.43
"Concurrent oral administration of (+)-catechin and puerarin significantly increased the absolute oral bioavailability of puerarin, but decreasing that of (+)-catechin."( Absorptive interactions of concurrent oral administration of (+)-catechin and puerarin in rats and the underlying mechanisms.
Fu, Y; Gong, T; Lin, Q; Su, HF; Sun, X; Wang, XY; Zhang, ZR, 2016
)
0.43
"Polyphenols are partial metabolized to methylated conjugations in vivo, and then could modify bioavailability and bioactivity related to the uptake of parent compounds."( Preparation of Methylated Products of A-type Procyanidin Trimers in Cinnamon Bark and Their Protective Effects on Pancreatic β-Cell.
Chen, K; Chen, L; Jia, Q; Li, Y; Wang, H; Wang, T; Yuan, P, 2016
)
0.43
" The bioavailability of peanut proteins was analyzed using a Caco-2 epithelial cell model."( Peanut protein structure, polyphenol content and immune response to peanut proteins in vivo are modulated by laccase.
Bohn, T; Buchert, J; Cirkovic Velickovic, T; Krstic, M; Mihajlovic, L; Nordlund, E; Radosavljevic, J; Smit, J, 2016
)
0.43
"The present study was aimed to develop a catechin (CA) loaded nanoemulsion based nano-gel for the protection of skin against ultraviolet radiation (UV) induced photo-damage and to ensure its enhanced skin permeability as well as bioavailability through transdermal route."( Enhancement of photoprotection potential of catechin loaded nanoemulsion gel against UVA induced oxidative stress.
Al-Dhabi, NA; Bahadur, S; Duraipandiyan, V; Harwansh, RK; Kar, A; Mukherjee, PK, 2016
)
0.43
" However, limitations in terms of stability and bioavailability have hampered its application in clinical settings."( Epigallocatechin Gallate Nanodelivery Systems for Cancer Therapy.
Granja, A; Pinheiro, M; Reis, S, 2016
)
0.43
" However, the use of EGCG in modern therapeutics is limited due to its poor bioavailability and limited stability at physiological pH."( Encapsulation of biophenolic phytochemical EGCG within lipid nanoparticles enhances its stability and cytotoxicity against cancer.
Bhargava, S; Gudem, S; Kulhari, H; Pooja, D; Radhakrishnan, R; Shukla, R; Sistla, R, 2016
)
0.43
" Their bioavailability in BM as a result of dietary ingestion was confirmed in a preliminary experiment with a single dose of dark chocolate."( Dietary Epicatechin Is Available to Breastfed Infants through Human Breast Milk in the Form of Host and Microbial Metabolites.
Andres-Lacueva, C; Brandi, P; Campoy, C; Khymenets, O; Rabassa, M; Rivero-Urgell, M; Rodríguez-Palmero, M; Santos-Buelga, C; Tulipani, S; Urpi-Sarda, M, 2016
)
0.43
"The instability and low bioavailability of polyphenols limit their applications in food industries."( Epigallocatechin Gallate (EGCG) Decorating Soybean Seed Ferritin as a Rutin Nanocarrier with Prolonged Release Property in the Gastrointestinal Tract.
Blanchard, C; Li, Q; Strappe, P; Sun, G; Yang, R; Zhang, M; Zhou, Z, 2016
)
0.43
"Despite differences in epicatechin dose, improvements in vascular function after pure epicatechin and chocolate were similar and the bioavailability did not differ, suggesting a role for epicatechin."( Does epicatechin contribute to the acute vascular function effects of dark chocolate? A randomized, crossover study.
Dower, JI; Geleijnse, JM; Hollman, PC; Kromhout, D; Kroon, PA; Mensink, M; Philo, M, 2016
)
0.43
"Under the current scenario, the role of EGCG as a therapeutic agent is being utilised and new approaches are being formulated to overcome the problem of stability and bioavailability of EGCG."( Therapeutic effects of EGCG: a patent review.
Agrawal, R; Chakrawarti, L; Dang, S; Gabrani, R; Gupta, S, 2016
)
0.43
" The major problem that limits the clinical application of this polyphenol is its low bioavailability and stability."( Potent effects of peracetylated (-)-epigallocatechin-3-gallate against hydrogen peroxide-induced damage in human epidermal melanocytes via attenuation of oxidative stress and apoptosis.
Fu, L; Jin, R; Liu, D; Ning, W; Wang, S; Xu, A, 2016
)
0.43
" However, the bioavailability of a substance is a prerequisite for any post absorptive effect in vivo."( Systemic Absorption of Catechins after Intraruminal or Intraduodenal Application of a Green Tea Extract in Cows.
Beyer, B; Blank, R; Gohlke, A; Metges, CC; Wein, S; Wolffram, S, 2016
)
0.43
"Postprandial hyperglycemia (PPH) increases cardiovascular disease risk regardless of glucose intolerance by transiently impairing vascular endothelial function (VEF) by limiting nitric oxide bioavailability in an oxidative stress-dependent manner."( A green tea-containing starch confection increases plasma catechins without protecting against postprandial impairments in vascular function in normoglycemic adults.
Ahn-Jarvis, J; Bruno, RS; Chitchumroonchokchai, C; Mah, E; McDonald, JD; Reverri, EJ; Sapper, TN; Vodovotz, Y, 2016
)
0.43
" The bioavailability and bioactivity was evaluated following gavage with HT/PCy in rabbits."( Olive and grape seed extract prevents post-traumatic osteoarthritis damages and exhibits in vitro anti IL-1β activities before and after oral consumption.
Abadie, J; Beck, L; Gauthier, O; Guicheux, J; Hivernaud, V; Houard, X; Krisa, S; Lesoeur, J; Masson, M; Merceron, C; Mével, E; Nourissat, G; Richard, T; Urban, N; Vinatier, C; Wittrant, Y, 2016
)
0.43
" Owing to a difference in the affinity of T3 and Toc for the α-tocopherol transfer protein, the bioavailability of orally ingested T3 is lower than that of Toc."( Synergistic Anticancer Effect of Tocotrienol Combined with Chemotherapeutic Agents or Dietary Components: A Review.
Eitsuka, T; Miyazawa, T; Nakagawa, K; Nishida, H; Tatewaki, N, 2016
)
0.43
" Overall, our study presents a novel tool for simultaneous detection and quantitation of both catechins and theaflavins in a single detection platform that could potentially enable precise elucidation of their relative bioavailability and bioefficacy as well as true health beneficiary potential in vivo."( Simultaneous Determination of Black Tea-Derived Catechins and Theaflavins in Tissues of Tea Consuming Animals Using Ultra-Performance Liquid-Chromatography Tandem Mass Spectrometry.
G, TK; Ganguly, S; Mantha, S; Panda, K, 2016
)
0.43
" The bioavailability and metabolism of green tea and its protective effects against environmental insults induced by pesticides, smoke, mycotoxins, PCBs, and arsenic are reviewed in this paper."( Therapeutic properties of green tea against environmental insults.
Chen, L; Cromie, MM; Gao, W; Lu, C; Mo, H; Shen, CL; Wang, JS; Wang, S; Zhao, L, 2017
)
0.46
" The inconsistency between the biological activity of EGCG in cell cultures and in vivo can be attributed to its low stability, which not only decreases its bioavailability but also leads to the formation of degradation products and prooxidant molecules with possible side-effects."( Stability of (-)-epigallocatechin gallate and its activity in liquid formulations and delivery systems.
Ferguson, SJ; Krupkova, O; Wuertz-Kozak, K, 2016
)
0.43
"The relatively low oral bioavailability of flavan-3-ols from acute doses is commonly highlighted as a limitation when considering the biological significance of these compounds."( Differentiated Caco-2 cell monolayers exhibit adaptation in the transport and metabolism of flavan-3-ols with chronic exposure to both isolated flavan-3-ols and enriched extracts.
Chegeni, M; Ferruzzi, MG; Redan, BW, 2017
)
0.46
" This review, starting from the structure, source, bioavailability and pharmacokinetics of relevant polyphenols, highlights recent studies on the effect and potential molecular mechanism(s) of action of the phenolic compounds epigallocatechin-3-gallate, resveratrol and hydroxytyrosol in restoring mitochondrial energy deficit and in reversing phenotypical alteration in DS."( Plant polyphenols as natural drugs for the management of Down syndrome and related disorders.
Braidy, N; Caccamese, S; Daglia, M; Nabavi, SM; Vacca, RA; Valenti, D, 2016
)
0.43
" Thus, we can infer that niosomal encapsulation might be a promising approach to improve the oral bioavailability of EGCG in the body."( Niosomes Consisting of Tween-60 and Cholesterol Improve the Chemical Stability and Antioxidant Activity of (-)-Epigallocatechin Gallate under Intestinal Tract Conditions.
Chen, L; Liang, R; Williams, PA; Yokoyama, W; Zhong, F, 2016
)
0.43
" However, the success of EGCG in preclinical studies is difficult to translate into clinical trials due to issues of low solubility, bioavailability and an uncertain therapeutic window."( Cancer therapeutics with epigallocatechin-3-gallate encapsulated in biopolymeric nanoparticles.
Begun, J; De, R; Popat, A; Tyagi, N, 2017
)
0.46
"plantarum; (ii) to develop and evaluate a microstructured synbox (microencapsulating both probiotic and EGCG together) in rat model of alcohol liver disease (ALD); and, (iii) to confirm whether the combination can address issues of EGCG bioavailability and probiotic survivability in adverse gut conditions."( Better Management of Alcohol Liver Disease Using a 'Microstructured Synbox' System Comprising L. plantarum and EGCG.
Arora, S; Chopra, K; Kaur, IP; Kaur, UJ; Rishi, P, 2017
)
0.46
"Green tea extract was encapsulated into liposomes to enhance bioavailability and stability of catechins by protecting their functional properties simultaneously."( Formation and Characterization of Green Tea Extract Loaded Liposomes.
Dag, D; Oztop, MH, 2017
)
0.46
" The obtained data supported our hypothesis of target-specific enhanced bioavailability and limited unwanted toxicity, thus leading to a significant potential for probable clinical outcome."( Targeted nanoparticles encapsulating (-)-epigallocatechin-3-gallate for prostate cancer prevention and therapy.
Adhami, VM; Chamcheu, JC; Jashari, R; Mukhtar, H; Rady, I; Sanna, V; Sechi, M; Siddiqui, IA; Singh, CK, 2017
)
0.46
"The bioavailability of A-type procyanidins in vivo has been rarely investigated; as such, this study discusses the effect of A-type linkage and degree of polymerization on the metabolism of procyanidins extracted from litchi pericarp (LPOPC)."( Effect of the A-Type Linkage on the Pharmacokinetics and Intestinal Metabolism of Litchi Pericarp Oligomeric Procyanidins.
He, J; Hu, Z; Lamikanra, O; Li, S; Liu, G; Liu, Y; Qin, X; Yang, H, 2017
)
0.46
"In this study, we found that PEG may increase bioavailability of catechin."( Therapeutic Efficacy of Nanocomplex of Poly(Ethylene Glycol) and Catechin for Dry Eye Disease in a Mouse Model.
Choi, SY; Kim, CE; Lee, H; Shim, W; Yang, J, 2017
)
0.46
" Different types of formulations have been designed for the improvement of bioavailability of these compounds, nanonization being one of the most notable approaches among them."( Polyphenol nanoformulations for cancer therapy: experimental evidence and clinical perspective.
Abdollahi, M; Bahramsoltani, R; Davatgaran-Taghipour, Y; Farzaei, MH; Karimi-Soureh, Z; Masoomzadeh, S; Rahimi, R, 2017
)
0.46
" Clinical application of CT is highly restricted because of its low bioavailability and ineffectiveness in in vivo conditions."( Catechin-loaded Eudragit microparticles for the management of diabetes: formulation, characterization and in vivo evaluation of antidiabetic efficacy.
Dwibedy, PS; Meena, KP; Vijayakumar, MR, 2017
)
0.46
"The effect of diabetes on the pharmacokinetics, bioavailability and brain distribution of grape polyphenols and select metabolites was studied in the Zucker diabetic fatty (ZDF) rat model."( Influence of diabetes on plasma pharmacokinetics and brain bioavailability of grape polyphenols and their phase II metabolites in the Zucker diabetic fatty rat.
Chen, TY; Cooper, B; Ferruzzi, MG; Ho, L; Janle, EM; Pasinetti, GM; Simon, JE; Talcott, ST; Todd, G; Wang, J; Wu, QL, 2017
)
0.46
"Diabetes may alter the overall bioavailability of some polyphenols in plasma and brain in part due to higher urinary clearance."( Influence of diabetes on plasma pharmacokinetics and brain bioavailability of grape polyphenols and their phase II metabolites in the Zucker diabetic fatty rat.
Chen, TY; Cooper, B; Ferruzzi, MG; Ho, L; Janle, EM; Pasinetti, GM; Simon, JE; Talcott, ST; Todd, G; Wang, J; Wu, QL, 2017
)
0.46
" For these encouraging results, this catechin is currently used in clinical trials for treatment of various type of cancer and other diseases, although its poor bioavailability and poor stability represent severe limitations."( An overview of pre-clinical studies on the effects of (-)-epigallocatechin-3-gallate, a catechin found in green tea, in treatment of pancreatic cancer
Bimonte, S; Caliendo, D; Cascella, M; Cuomo, A; Izzo, F; Leongito, M; Palaia, R, 2017
)
0.46
"Litchi pericarp procyanidins (LPP) are dietary supplements with high antioxidant activity, but poor oral bioavailability and efficacy."( Direct and indirect measurements of enhanced phenolic bioavailability from litchi pericarp procyanidins by Lactobacillus casei-01.
Barba, FJ; Li, S; Li, X; Lorenzo, JM; Montesano, D; Shpigelman, A, 2017
)
0.46
" In this work, EGCG-loaded nanostructured lipid carriers (NLC) functionalized with folic acid were optimized through a Box-Behnken design intended to provide an enhanced oral absorption and increased bioavailability of EGCG."( Folate-targeted nanostructured lipid carriers for enhanced oral delivery of epigallocatechin-3-gallate.
Chaves, LL; Granja, A; Neves, AR; Nunes, C; Pinheiro, M; Reis, S; Vieira, AC, 2017
)
0.46
"We investigated whether antioxidants may enhance bioavailability of lipids and carbohydrates and therefore increase the risk of obesity development."( Food Stabilizing Antioxidants Increase Nutrient Bioavailability in the in Vitro Model.
Antończyk, A; Grabacka, M; Mika, M; Wikiera, A,
)
0.13
"01% butylated hydroxytoluene [BHT], α-tocopherol, and green tea catechins) of a diet containing butter and wheat bread affects bioavailability of fats and carbohydrates."( Food Stabilizing Antioxidants Increase Nutrient Bioavailability in the in Vitro Model.
Antończyk, A; Grabacka, M; Mika, M; Wikiera, A,
)
0.13
"In the case of the antioxidant-supplemented diets, we observed increased bioavailability of glucose, cholesterol, and lipids, as well as elevated secretion of the main chylomicron protein apoB-48 to the basal compartment."( Food Stabilizing Antioxidants Increase Nutrient Bioavailability in the in Vitro Model.
Antończyk, A; Grabacka, M; Mika, M; Wikiera, A,
)
0.13
"Addition of antioxidants (in particular BHT) to the diet increases bioavailability of lipids and carbohydrates, which consequently may increase the risk of obesity development."( Food Stabilizing Antioxidants Increase Nutrient Bioavailability in the in Vitro Model.
Antończyk, A; Grabacka, M; Mika, M; Wikiera, A,
)
0.13
" The human gastrointestinal digestion tract is the first place where the food grade macromolecule nanoparticles exert their effects on improving the bioavailability of diet polyphenols, via enhancing their solubility, preventing their degradation in the intestinal environment, elevating the permeation in small intestine, and even increasing their contents in the bloodstream."( Food macromolecule based nanodelivery systems for enhancing the bioavailability of polyphenols.
Hu, B; Liu, X; Zeng, X; Zhang, C, 2017
)
0.46
"The production of nitric oxide (NO) by nitric oxide synthases (NOS) depends on the bioavailability of L-arginine as NOS competes with arginase for this common substrate."( The cardioprotective effects of (-)-Epicatechin are mediated through arginase activity inhibition in a murine model of ischemia/reperfusion.
Ceballos, G; Meaney, E; Moreno-Ulloa, A; Najera, N; Ortiz, A; Ortiz-Flores, M; Ortiz-Vilchis, P; Pacheco, M; Ramirez-Sanchez, I; Rubio-Gayosso, I; Vega, L; Villarreal, F, 2018
)
0.48
" Nano- and micro-particle systems have been used to stabilise catechins when exposed to adverse environments and to improve their bioavailability after ingestion."( Nano- and micro-particles for delivery of catechins: Physical and biological performance.
Augustin, MA; Ye, JH, 2019
)
0.51
" The present work intends to bring molecular and thermodynamic insights on the ability of green tea epigalhocatechin-3-gallate (EGCG) to interact and modulate the bioavailability of a major CD immunodominant peptide (32-mer)."( Molecular insights on the interaction and preventive potential of epigallocatechin-3-gallate in Celiac Disease.
Brás, NF; Dias, R; Fernandes, I; Freitas, V; Mateus, N; Pérez-Gregorio, M, 2018
)
0.48
" However, its instability and poor bioavailability have largely limited its efficacy and application."( Food-grade Encapsulation Systems for (-)-Epigallocatechin Gallate.
Cai, ZY; Li, QS; Li, XM; Liang, YR; Lu, JL; Ma, SC; Shi, M; Shi, YL; Yang, R; Ye, JH; Zheng, XQ, 2018
)
0.48
" This study will facilitate the application of ferritin-chitosan materials for fabricating the core-shell platform for encapsulation and bioavailability enhancement of bioactive molecules."( Chitosan binding onto the epigallocatechin-loaded ferritin nanocage enhances its transport across Caco-2 cells.
Blanchard, C; Tian, J; Wang, D; Yang, R; Zhou, Z, 2018
)
0.48
" The intestinal in situ single perfusion technique and HPLC analysis were applied to investigate the absorption rate of selected materials by examining time-dependent changes in the serum levels of catechin and dl-α-tocopherol."( Absorption kinetics of vitamin E nanoemulsion and green tea microstructures by intestinal in situ single perfusion technique in rats.
Imm, JY; Kim, YJ; Koo, YE; Lee, HS; Park, Y; Saratale, GD; Saratale, RG, 2018
)
0.48
" The use of Pro- epigallocatechin gallate (Pro-EGCG) as a prodrug appears to offer improved in vitro stability as well as better in vivo bioavailability and efficacies in a number of animal studies, suggesting its potential as a therapeutic agent for further study and development."( Perspectives on the recent developments with green tea polyphenols in drug discovery.
Chan, TH; Chen, Y; Dou, QP; Fardous, R; Lewandowski, A; Li, D; Li, F; Liu, J; Qiao, X; Wang, Y, 2018
)
0.48
"Inhibiting component of therapy with (-)-epigallocatechin-3-gallate (EGCG) is low bioavailability of fresh tea polyphenols that outcome from insecurity under stomach related circumstances, insufficient transcellular transport."( Target challenging-cancer drug delivery to gastric cancer tissues with a fucose graft epigallocatechin-3-gallate-gold particles nanocomposite approach.
Feng, A; He, Y; Li, X; Yuan, X; Zheng, W; Zhou, G, 2018
)
0.48
"Numerous clinical and bioavailability studies addressed epigallocatechin gallate (EGCG) beneficial effects; however, our previous work revealed EGCG-induced nephrotoxicity in the presence of diabetes."( Paradoxical cardiotoxicity of intraperitoneally-injected epigallocatechin gallate preparation in diabetic mice.
Abdallah, DM; Ahmed, LA; El-Sayeh, BM; Rasheed, NOA, 2018
)
0.48
" However, its therapeutic potential is limited in-vivo due to its poor bioavailability and stability."( Inhibition of Al(III)-Induced A
Khan, ZA; Mandal, AKA; Singh, NA, 2018
)
0.48
"The glycosylation of plant polyphenols may modulate their solubility and bioavailability and protect these molecules from oxygen, light degradation, and during gastrointestinal transit."( Efficient α-Glucosylation of Epigallocatechin Gallate Catalyzed by Cyclodextrin Glucanotransferase from Thermoanaerobacter Species.
Ballesteros, AO; Gonzalez-Alfonso, JL; Jimenez-Barbero, J; Leemans, L; Plou, FJ; Poveda, A, 2018
)
0.48
" (+)-catechin and (-)-epicatechin, undergo extensive microbial metabolism in the gut, forming metabolites that can be highly bioavailable and bioactive."( Targeted analysis of microbial-generated phenolic acid metabolites derived from grape flavanols by gas chromatography-triple quadrupole mass spectrometry.
Carry, E; Faith, J; Ho, L; Mogno, I; Pasinetti, GM; Patel, H; Simon, JE; Villani, T; Wu, Q; Zhao, D, 2018
)
0.48
" However, bioavailability issues have restricted the development of EGCG for the treatment of psoriasis."( Chitosan-based nanoformulated (-)-epigallocatechin-3-gallate (EGCG) modulates human keratinocyte-induced responses and alleviates imiquimod-induced murine psoriasiform dermatitis.
Adame, S; Adhami, VM; Babatunde, AS; Bharali, DJ; Chamcheu, JC; Esnault, S; Longley, BJ; Massey, RJ; Mousa, SA; Mukhtar, H; Siddiqui, IA; Wood, GS, 2018
)
0.48
"Daily consumption of an investigational product (trade name "Cerbella TM") consisting of an emulsified liquid combination of standardized fish oil, panax ginseng extract, and green tea catechins in a flavored base of lecithin phospholipids optimized to maximize bioavailability of the active ingredients."( A Combination of Essential Fatty Acids, Panax Ginseng Extract, and Green Tea Catechins Modifies Brain fMRI Signals in Healthy Older Adults.
Carmichael, OT; Gold, BT; Kay, DG; Keller, JN; McLellan, A; Pillai, S; Shankapal, P, 2018
)
0.48
" Low bioavailability of tea catechins was an important factor leading to these inconsistencies."( Bioavailability of Tea Catechins and Its Improvement.
Cai, ZY; Li, XM; Liang, JP; Liang, YR; Lu, JL; Shi, M; Shi, YL; Wang, KR; Xiang, LP; Yang, R; Ye, JH; Zheng, XQ, 2018
)
0.48
"The purpose of the study is to develop the nanoformulation of Epigallocatechin gallate (EGCG) in order to improve its bioavailability and penetration into the brain."( A New Therapeutic Approach for Brain Delivery of Epigallocatechin Gallate: Development and Characterization Studies.
Aggarwal, R; Chakrabarti, A; Kaur, H; Kumar, B; Medhi, B; Modi, M; Radotra, BD; Sinha, VR, 2019
)
0.51
" In this work, we intended the increase the bioavailability of CT by preparing catechin-phospholipid complex (CT-PH) and evaluate the protective effect of CT-PH complex against cadmium caused liver injuries in rats."( Development of catechin-phospholipid complex to enhance the bioavailability and modulatory potential against cadmium-induced oxidative stress in rats liver.
Athmouni, K; Ayadi, H; El Feki, A; Mkadmini Hammi, K, 2020
)
0.56
" Many flavonoids have poor bioavailability and thus low circulating concentrations."( Common gut microbial metabolites of dietary flavonoids exert potent protective activities in β-cells and skeletal muscle cells.
Allen, ME; Bitner, BF; Brown, DA; Fausnacht, DW; Herring, JA; Hulver, MW; Johnson, DK; Kener, KB; McMillan, RP; Neilson, AP; Ray, JD; Tellez Freitas, CM; Tessem, JS; Thomson, AH; Tueller, JA; Weber, KS, 2018
)
0.48
" The results suggest that coconsumption GTE or EnzGTE with GTE-derived flavonols could improve the bioavailability of epicatechins."( Impact of Bioconversion of Gallated Catechins and Flavonol Glycosides on Bioaccessibility and Intestinal Cellular Uptake of Catechins.
Balusamy, SR; Choi, EH; Kim, DO; Rha, CS; Shim, SM, 2019
)
0.51
" Despite its great curative potential, the poor bioavailability of EGCG restricts its clinical applcation."( Nanochemoprevention with therapeutic benefits: An updated review focused on epigallocatechin gallate delivery.
Cheng, LZ; Corke, H; Fang, YP; Gan, RY; Ge, YY; Wang, M; Wei, XL; Yang, QQ; Zhang, D, 2020
)
0.56
" However, their bioavailability and absorption in the gastrointestinal tract remain uncertain."( Transport of Flavanolic Monomers and Procyanidin Dimer A2 across Human Adenocarcinoma Stomach Cells (MKN-28).
He, J; Huang, Y; Li, J; Li, S; Sun, Y; Zhu, Z, 2019
)
0.51
" However, its molecular structure is susceptible to modifications due to cellular enzymes affecting its stability, bioavailability and hence, overall efficiency."( Bombesin conjugated solid lipid nanoparticles for improved delivery of epigallocatechin gallate for breast cancer treatment.
Bhargava, S; Gudem, S; Kulhari, H; Pooja, D; Radhakrishnan, R; Ramakrishna, S; Ravuri, HG, 2019
)
0.51
" Pharmacokinetic studies revealed the significant potential of chitosomes to enhance catechin bioavailability (AUC, Cmax) and sustain its effect (Tmax)."( Improved oral bioavailability of the anticancer drug catechin using chitosomes: Design, in-vitro appraisal and in-vivo studies.
Abdallah, OY; Elnaggar, YSR; Ezzat, HM, 2019
)
0.51
" Therefore, an attempt was made to enhance permeability and bioavailability of EGCG using curcumin to treat hyperlipidemia."( Curcumin as a permeability enhancer enhanced the antihyperlipidemic activity of dietary green tea extract.
Dalal, PS; Joshi, SR; Pandit, AP; Patole, VC, 2019
)
0.51
" However, its pharmaceutical activity is limited due to low bioavailability and chemical instability."( Pharmacokinetic, toxicokinetic, and bioavailability studies of epigallocatechin-3-gallate loaded solid lipid nanoparticle in rat model.
Mandal, AKA; Ramesh, N, 2019
)
0.51
" (-)-epigallocatechin-3-gallate (EGCG) is a promising nutraceutical in this regard; however, it suffers chemical instability and low bioavailability resulting in inefficient delivery."( Colloidal (-)-epigallocatechin-3-gallate vesicular systems for prevention and treatment of skin cancer: A comprehensive experimental study with preclinical investigation.
El-Kayal, M; Elkheshen, S; Mortada, N; Nasr, M, 2019
)
0.51
"The low solubility, instability, and low bioavailability of food bioactive compounds such as polyphenols and flavonoids, restrict their applications in the fields of food science and nutrition."( Fabrication, structure, and function evaluation of the ferritin based nano-carrier for food bioactive compounds.
Blanchard, C; Liu, J; Liu, Y; Meng, D; Yang, R; Zhang, Y; Zhou, Z, 2019
)
0.51
" Numerous nanoformulations, including solid lipid nanoparticles, polymeric nanoparticles, micelles, and liposomes, have been formulated to enhance the bioavailability and stability, as well as the therapeutic efficacy of polyphenols."( Pharmaceutical Topical Delivery of Poorly Soluble Polyphenols: Potential Role in Prevention and Treatment of Melanoma.
Ashby, CR; Chauhan, H; Heenatigala Palliyage, G; Singh, S; Tiwari, AK, 2019
)
0.51
"Many studies have shown that epigallocatechin gallate (EGCg) contribute to the health benefits of green tea, although its bioavailability is usually low."( Identification of the Catechin Uptake Transporter Responsible for Intestinal Absorption of Epigallocatechin Gallate in Mice.
Ishii, S; Kirino, A; Kitazawa, H; Mori, T; Nakamura, S; Osaki, N; Shimotoyodome, A; Tamai, I, 2019
)
0.51
" WGA-EF-NP exhibited superior anti-tumor activity and pro-apoptotic efficacy compared to the drugs and nanoparticles without WGA decoration owing to better bioavailability and longer circulation time in vivo."( Enhanced anti-colon cancer efficacy of 5-fluorouracil by epigallocatechin-3- gallate co-loaded in wheat germ agglutinin-conjugated nanoparticles.
Chen, J; Chen, Z; Di, L; Hu, L; Huang, J; Li, J; Qiao, H; Wang, H; Wang, R; Yang, M, 2019
)
0.51
" There has been a continually increasing interest to formulate nanoformulations of phytochemicals by using various nanocarriers, such as liposomes, micelles, nanoemulsions, and nanoparticles, to improve their bioavailability and target specificity, thereby maximizing the therapeutic potential."( Phytochemicals based chemopreventive and chemotherapeutic strategies and modern technologies to overcome limitations for better clinical applications.
Ansari, MI; Arora, D; Sharma, PK; Singh, VK, 2019
)
0.51
" But translation of in vitro anti-ACR activity into in vivo is mainly mediated by bioavailability and biotransformation of individual polyphenols."( Translating In Vitro Acrolein-Trapping Capacities of Tea Polyphenol and Soy Genistein to In Vivo Situation is Mediated by the Bioavailability and Biotransformation of Individual Polyphenols.
Huang, Q; Lv, L; Sang, S; Zhu, Y, 2020
)
0.56
" The bioavailability and biotransformation of individual polyphenols, and especially the gut microbiome, contribute to in vivo anti-ACR ability of dietary polyphenols."( Translating In Vitro Acrolein-Trapping Capacities of Tea Polyphenol and Soy Genistein to In Vivo Situation is Mediated by the Bioavailability and Biotransformation of Individual Polyphenols.
Huang, Q; Lv, L; Sang, S; Zhu, Y, 2020
)
0.56
" Nonetheless, their low bioavailability forecasts controversy about mechanisms on their in vivo scavenging activity against reactive oxygen species (ROS)."( Antioxidant effect of phenolic compounds (PC) at different concentrations in IEC-6 cells: A spectroscopic analysis.
Alvarez-Parrilla, E; Barraza-Garza, G; Castillo-Michel, H; Cotte, M; de la Rosa, LA; Martinez-Martinez, A; Pérez-León, JA, 2020
)
0.56
" In addition, l-NAME treatment induced modifications in kidney NO bioavailability determinants: increased expression of NOX subunits (p47phox, gp91phox, NOXO1, and NOX4) and lowered NOS activity."( (-)-Epicatechin administration protects kidneys against modifications induced by short-term l-NAME treatment in rats.
Fraga, CG; Galleano, M; Prince, PD, 2020
)
0.56
" However, the bioavailability of catechin in human blood plasma is very low."( Colonic Bacteria-Transformed Catechin Metabolite Response to Cytokine Production by Human Peripheral Blood Mononuclear Cells.
Adisa, AR; Alshatwi, AA; Athinarayanan, J; Krishnamoorthy, R; Pandurangan, SB; Periasamy, VS, 2019
)
0.51
" However, the bioavailability of tea phytochemicals is relatively low."( Health Functions and Related Molecular Mechanisms of Tea Components: An Update Review.
Atanasov, AG; Corke, H; Feng, YB; Gan, RY; Li, HB; Li, S; Liu, Q; Meng, X; Tang, GY; Wei, XL; Zhao, CN, 2019
)
0.51
" EGCG enhances the bioavailability of normal NO by reducing levels of the endogenous NO inhibitor asymmetric dimethylarginine."( Protective Effect of Epigallocatechin Gallate on Endothelial Disorders in Atherosclerosis.
Yamagata, K, 2020
)
0.56
"Studying bioavailability of polyphenols is essential to understand the health effects of these compounds."( Experimental confounding factors affecting stability, transport and metabolism of flavanols and hydroxycinnamic acids in Caco-2 cells.
Bravo-Clemente, L; Gómez-Juaristi, M; Goya, L; Mateos, R; Sarria, B, 2020
)
0.56
" These molecules have poor bioavailability that may remain as the limiting factor in their clinical effects."( Natural polyphenols in preclinical models of epilepsy.
Dhir, A, 2020
)
0.56
" Moreover, the reduction in nadolol bioavailability could persist for at least 1 hour after drinking a cup of GT."( Effects of single green tea ingestion on pharmacokinetics of nadolol in healthy volunteers.
Abe, O; Fromm, MF; Misaka, S; Miura, I; Ogata, H; Ono, T; Ono, Y; Shikama, Y; Shimomura, K; Yabe, H, 2020
)
0.56
" A prodrug of EGCG (pro-EGCG) enhances the bioavailability of EGCG."( A prodrug of epigallocatechin-3-gallate alleviates high glucose-induced pro-angiogenic factor production by inhibiting the ROS/TXNIP/NLRP3 inflammasome axis in retinal Müller cells.
Du, J; Guo, Y; Liu, X; Qin, X; Song, E; Sun, X; Tu, Y; Wang, L; Wang, Y; Xu, X; Zhu, M, 2020
)
0.56
"Neat epigallocatechin gallate (EGCG) has low bioavailability and tuna oil (TO) is prone to oxidation."( Broccoli byproducts for protection and co-delivery of EGCG and tuna oil.
Augustin, MA; Sanguansri, L; Shi, M; Ye, JH; Ying, DY, 2020
)
0.56
" A major challenge with EGCG is its low bioavailability which is being targeted for improvement by encapsulating EGCG in nano-sized vehicles for further delivery."( Molecular mechanisms of action of epigallocatechin gallate in cancer: Recent trends and advancement.
Aggarwal, D; Aggarwal, V; Barwal, TS; Bishayee, A; Jain, A; Kaur, G; Pandey, A; Ritzer, EE; Sak, K; Srivastava, S; Tania, M; Tuli, HS; Varol, M, 2022
)
0.72
" Catechins are poorly absorbed by intestinal barriers."( Catechins as Model Bioactive Compounds for Biomedical Applications.
Castellano, LRC; da Silva, MV; de A Rêgo, RI; de Araújo, HWC; de L Nascimento, TR; do C Neto, JR; Dos Santos, AN; Fonseca, MG; Gondim, BLC; Machado, JR; Velo, MMAC, 2020
)
0.56
" Despite pharmacotherapy strategies, the current topical administration of eye drops remains a great challenge owing to their low bioavailability and short residence time."( Long-acting mucoadhesive thermogels for improving topical treatments of dry eye disease.
Lai, JY; Luo, LJ; Nguyen, DD, 2020
)
0.56
"Currently, the clinical benefits of tea polyphenols have contributed to the development of efficient systemic delivery systems with adequate bioavailability and stability."( Enhanced Chemotherapeutic Efficacy of PLGA-Encapsulated Epigallocatechin Gallate (EGCG) Against Human Lung Cancer.
Chen, W; Chen, X; Lu, Y; Tu, G; Wu, L; Zhang, L; Zheng, D, 2020
)
0.56
" Several studies have shown the ability to overcome poor bioavailability through nanotechnology-based strategies such as encapsulation, liposome, micelles, nanoparticles and various other formulation."( Potential Therapeutic Targets of Epigallocatechin Gallate (EGCG), the Most Abundant Catechin in Green Tea, and Its Role in the Therapy of Various Types of Cancer.
Alhumaydhi, FA; Almatroodi, SA; Almatroudi, A; Alsahli, MA; Khan, AA; Rahmani, AH, 2020
)
0.56
"This study was designed to check whether complexation of royal jelly (RJ) proteins with green tea extract enriched with EGCG, would enhance the bioavailability on C2BBe1 cells."( Improved bioavailability of EGCG after complexation with royal jelly protein.
Chiu, HF; Han, YC; Ho, YT; Venkatakrishnan, K; Wang, CK, 2020
)
0.56
" Besides, the safety, blood-brain barrier (BBB) penetration and bioavailability issues in conducting clinical trials were also discussed."( The pharmacological activity of epigallocatechin-3-gallate (EGCG) on Alzheimer's disease animal model: A systematic review.
Chen, JY; Lu, JH; OuYang, D; Zhang, S; Zhu, Q, 2020
)
0.56
" However, its poor bioavailability and requirement of a high dosage to manifest activity have restricted its clinical application."( Therapeutic potential of a novel prodrug of green tea extract in induction of apoptosis via ERK/JNK and Akt signaling pathway in human endometrial cancer.
Chan, TH; Kwong, J; Lau, TS; Leung, KT; Man, GCW; Ng, TB; Song, Y; Wang, CC; Wang, H; Wang, J; Wong, JH; Zhao, Y, 2020
)
0.56
"Food-grade proniosomes are a good vehicle for fortification of milk and yogurt without noticeable adverse changes in their organoleptic and physicochemical properties, thus increasing the potential for bioavailability of catechins in the gastrointestinal tract."( Formulation and characterization of catechin-loaded proniosomes for food fortification.
Laxmana Naik, N; Magdaline Eljeeva Emerald, F; Pushpadass, HA; Shruthi, PA; Surendra Nath, B, 2021
)
0.62
" These results suggest that the extent of intestinal absorption of lisinopril was significantly impaired in the presence of GTE, whereas it had no major effect on the absorption rate and renal excretion of lisinopril."( Impact of Green Tea Catechin Ingestion on the Pharmacokinetics of Lisinopril in Healthy Volunteers.
Abe, O; Misaka, S; Ogata, H; Ono, T; Ono, Y; Onoue, S; Sato, H; Shikama, Y; Shimomura, K; Suzuki, M; Uchida, A, 2021
)
0.62
" However, poor stability, low bioavailability and antitumor efficacy limit the application of EGCG."( Codelivery of epigallocatechin-3-gallate and diallyl trisulfide by near-infrared light-responsive mesoporous polydopamine nanoparticles for enhanced antitumor efficacy.
Gu, H; Huang, D; Liang, J; Liu, Q; Xu, J; Xue, W; Zhou, X, 2021
)
0.62
" However, its bioavailability is poor due to the low absorption and P-gp efflux."( Natural P-gp inhibitor EGCG improves the acteoside absorption in Caco-2 cell monolayers and increases the oral bioavailability of acteoside in rats.
Chen, Q; Huang, W; Liu, X; Lu, B; Peng, J; Wu, L; Xu, T; Zhou, F, 2020
)
0.56
"Theaflavin-3,3'-digallate (TFDG), a bioactive black tea phenolic, is poorly absorbed in the small intestine, and it has been suggested that gut microbiota metabolism plays a crucial role in its bioactivities."( Microbial Metabolism of Theaflavin-3,3'-digallate and Its Gut Microbiota Composition Modulatory Effects.
Bruins, ME; de Bruijn, WJC; Liu, Z; Vincken, JP, 2021
)
0.62
" PPs have structural diversity which impacts their bioavailability as they accumulate in the large intestine and are extensively metabolized through gut microbiota (GM)."( Curcumin, Quercetin, Catechins and Metabolic Diseases: The Role of Gut Microbiota.
Chelliah, R; Daliri, EB; Javed, A; Oh, DH; Rubab, M; Shabbir, U, 2021
)
0.62
" Therefore, in this paper, EGCG-loaded chitosan nanoparticles (ECN) were fabricated and entrapped into chitosan/alginate (CS/Alg) scaffolds to form CS/Alg-ECN scaffolds for improving the bioavailability of EGCG."( Sustained release of epigallocatechin-3-gallate from chitosan-based scaffolds to promote osteogenesis of mesenchymal stem cell.
Cai, H; Hao, M; Sun, Q; Tan, WS; Wang, J; Wei, Y, 2021
)
0.62
" However, the poor stability and low bioavailability of EGCG limit its potential application."( Fabrication of oral nanovesicle in-situ gel based on Epigallocatechin gallate phospholipid complex: Application in dental anti-caries.
Dai, Z; Guo, H; Kou, X; Liu, M; Sun, H; Xu, X; You, X; Zhang, Z; Zhu, H, 2021
)
0.62
"Due to low bioavailability of dietary phenolic compounds in small intestine, their metabolism by gut microbiota is gaining increasing attention."( Insights in the Recalcitrance of Theasinensin A to Human Gut Microbial Degradation.
Bruins, ME; de Bruijn, WJC; Liu, Z; Sanders, MG; Vincken, JP; Wang, S, 2021
)
0.62
"Epigallocatechin-3-gallate (EGCG) has been considered an anticancer agent despite conflicting and discrepant bioavailability views."( CCN5 activation by free or encapsulated EGCG is required to render triple-negative breast cancer cell viability and tumor progression.
Banerjee, S; Banerjee, SK; Chatterjee, I; Das, A; De, A; Dutta, D; Ghosh, A; Gunewardena, S; Haque, I; Quadir, M; Ray, P; Weir, S, 2021
)
0.62
" However, green tea catechins (GTCs) are very labile under both environmental and gastrointestinal conditions; their chemical stability and bioavailability primarily depend on the processing and formulation conditions."( Opportunities and challenges for the nanodelivery of green tea catechins in functional foods.
Akbari-Alavijeh, S; Babazadeh, A; Boostani, S; Jafari, SM; Rashidinejad, A; Rehman, A; Rezaei, A; Shaddel, R, 2021
)
0.62
" The results from the study suggest that formulating green tea extracts rich in catechins with second components obtained from green tea processing could enhance the bioavailability of epicatechins."( Profiling of In Vitro Bioaccessibility and Intestinal Uptake of Flavonoids after Consumption of Commonly Available Green Tea Types.
Chung, JO; Hong, YD; Lee, CY; Lee, YE; Oh, JH; Park, MY; Rha, CS; Shim, SM; Yoo, SH, 2021
)
0.62
" Future studies will assess the potential for nanocarriers to increase the oral bioavailability of EGCG."( Epigallocatechin-3-Gallate Protects Pro-Acinar Epithelia Against Salivary Gland Radiation Injury.
Brimson, JM; Chaisuparat, R; Chansaenroj, A; Ferreira, JN; Oonsiri, S; Sariya, L; Sulistiyani, E; Tencomnao, T; Urkasemsin, G; Vacharaksa, A, 2021
)
0.62
" We developed an EGCG liposomal formulation to improve its bioavailability and evaluated the neuroprotective activity in in vitro and in vivo neuroinflammation models."( Epigallocatechin-3-Gallate-Loaded Liposomes Favor Anti-Inflammation of Microglia Cells and Promote Neuroprotection.
Barro, L; Chao, CW; Cheng, CY; Chin, TY; Feng, TW; Hsieh, MF; Tsai, ST; Wu, XY; Yu, RS, 2021
)
0.62
" Unexpected interactions may lead to changes in bioaccessibility, bioactivity, and bioavailability of phytochemicals."( Identify the interactions between phytochemicals and proteins in the complicated food matrix.
Liu, PF; Mengesha, NM; Tsai, YH, 2021
)
0.62
"Despite widespread interest in chemoprevention and therapy due to the high margin of safety of dietary natural compounds, clinical intervention with single agents has failed to yield the expected outcomes, mostly due to poor bioavailability and low potency."( Combination of resveratrol and green tea epigallocatechin gallate induces synergistic apoptosis and inhibits tumor growth
Amin, ARMR; Chen, ZG; Lamichhane, R; Nannapaneni, S; Shin, DM; Wang, D, 2021
)
0.62
" Nanodelivery emerges as a promising way to improve the oral bioavailability and anticancer activity of catechins."( Advances in Nanodelivery of Green Tea Catechins to Enhance the Anticancer Activity.
Huang, Q; Jiang, Y; Jiang, Z; Ma, L, 2021
)
0.62
" However, inherent instability of EGCG greatly limits its bioavailability and clinical efficacy."( Epigallocatechin gallate/L-ascorbic acid-loaded poly-γ-glutamate microneedles with antioxidant, anti-inflammatory, and immunomodulatory effects for the treatment of atopic dermatitis.
Chen, MC; Chiu, YH; Hung, JI; Wu, YW, 2021
)
0.62
"Improving the stability and bioavailability of catechins is of great importance."( Weak Binding of Epigallocatechin to α-Lactalbumin Greatly Improves Its Stability and Uptake by Caco-2 Cells.
Chen, X; Lv, C; Ma, J; Yao, Q; Zang, J; Zhao, G, 2021
)
0.62
" It has been reported that EGCG reduces plasma nadolol bioavailability in normotensive models."( Oral epigallocatechin gallate reduces intestinal nadolol absorption via modulation of Oatp1a5 and Oct1 transcriptional levels in spontaneously hypertensive rats.
Chua, AL; Lee, SK; Ling, WC; Tan, HJ, 2021
)
0.62
"These data concluded that exposure to EGCG could lead to reduced nadolol bioavailability and therefore, uncontrolled raised blood pressure and higher risks of cardiovascular events."( Oral epigallocatechin gallate reduces intestinal nadolol absorption via modulation of Oatp1a5 and Oct1 transcriptional levels in spontaneously hypertensive rats.
Chua, AL; Lee, SK; Ling, WC; Tan, HJ, 2021
)
0.62
" Moreover, the study concluded that stability, bioavailability and bioactivity of EGCG was improved by nanoencapsulation of GTC, thereby rendering it a potent nanoceutical for clinical implications."( Development of nano-encapsulated green tea catechins: Studies on optimization, characterization, release dynamics, and in-vitro toxicity.
Garlapati, PK; Kandangath Raghavan, A; Mallya, A; Naika, M; Tyagi, T; Yadav, P, 2021
)
0.62
"The absorption, metabolism, nutrikinetic profile, and bioavailability of coffee phenolics were established for different patterns of coffee consumption under real-life conditions."( Effect of different patterns of consumption of coffee and a cocoa-based product containing coffee on the nutrikinetics and urinary excretion of phenolic compounds.
Antonini, M; Bonadonna, R; Bresciani, L; Brighenti, F; Cas, AD; Del Rio, D; Martini, D; Mena, P; Rosi, A; Tassotti, M, 2021
)
0.62
" The bioavailability of EGCG was higher in the hydrogel beads than those in the double emulsions, while the quercetin bioavailability was not significantly different expect for the ratio of 3:7."( Co-encapsulation of (-)-epigallocatechin-3-gallate and quercetin in double emulsion hydrogel beads: Microstructures, functional properties, and digestion behaviors.
Du, X; Hu, M; Li, Y; Liu, G; Qi, B; Zhang, W, 2022
)
0.72
"The use of glyceryl monooleate (GMO)-based nanoparticles has not yet been explored in overcoming the low bioavailability of Epigallocatechin-3-gallate (EGCG), a green tea polyphenol with a known anticancer activity."( Tuning curvature and phase behavior of monoolein bilayers by epigallocatechin-3-gallate: Structural insight and cytotoxicity.
Armeni, T; Galeazzi, R; Gerelli, Y; Laudadio, E; Mariani, P; Minnelli, C; Mobbili, G; Moretti, P; Pigozzo, A, 2022
)
0.72
"While the bioavailability of cocoa polyphenols, particularly of the monomer (-)-epicatechin, has been investigated after a single-dose intake, the effect of sustained cocoa consumption on the metabolic profile of the structurally related (-)-epicatechin metabolites (SREMs) has not been investigated."( Circulating Structurally Related (-)-Epicatechin Metabolite Species and Levels after Sustained Intake of a Cocoa Powder High in Polyphenols Are Comparable to Those Achieved after a Single Dose.
Barrera-Reyes, PK; Cortés-Fernández de Lara, J; Kussmann, M; Poquet, L; Redeuil, K; Silva-Zolezzi, I; Tejero, EM, 2021
)
0.62
" Pharmacokinetic study showed that the oral bioavailability presented nearly 12-fold increment."( Study on the stability and oral bioavailability of curcumin loaded (-)-epigallocatechin-3-gallate/poly(N-vinylpyrrolidone) nanoparticles based on hydrogen bonding-driven self-assembly.
Chen, Y; Hu, J; Lei, X; Ming, J; Rao, Z; Sun, Y; Wang, J; Wang, Q; Xu, Z; Zeng, K; Zhao, J, 2022
)
0.72
"Low intestinal permeability is an unfavorable feature that limits the bioavailability of many hydrophilic polyphenols."( Enhancing Intestinal Permeability of Theaflavin-3,3'-digallate by Chitosan-Caseinophosphopeptides Nanocomplexes.
Huang, Q; Jiang, Y; Jin, W; Shi, Y; Zheng, T, 2022
)
0.72
"The bioavailability of catechin highly relies on gut microbiota which may determine its metabolic profile, resulting in different health outcomes."(
De Mey, M; Li, Q; Onyango, SO; Van de Wiele, T; Van Herreweghen, F, 2022
)
0.72
" It is susceptible to lower stability, lesser bioavailability, and lower absorption rate due to various environmental, processing, formulations, and gastrointestinal conditions of the human body."( Epigallocatechin gallate: Phytochemistry, bioavailability, utilization challenges, and strategies.
Gul, S; Khan, MI; Mahtab, N; Maqsood, M; Mehmood, S; Sahar, A; Zaib, S, 2022
)
0.72
" Moreover, encapsulation by CD-MOFs improved storage stability and bioavailability of CA."( Encapsulation of catechin into nano-cyclodextrin-metal-organic frameworks: Preparation, characterization, and evaluation of storage stability and bioavailability.
Deng, T; Du, M; Jiang, L; Li, A; Meng, X; Wang, F; Xie, C; Xie, X; Zhang, H, 2022
)
0.72
" In addition, the bioavailability of catechins and peracetylated-catechins, free radical scavenging activity, mitochondrial activation ability of the high-molecular-weight polyphenol, and the mitochondrial activation factor were also discussed."( A Comprehensive Review on Beneficial Effects of Catechins on Secondary Mitochondrial Diseases.
Chen, B; Lin, C; Zhang, L; Zhang, W, 2022
)
0.72
" These findings contribute to improving the bioavailability of EGCG and help mine highly active metabolites, which can be used as raw materials for the development of pharmaceutical intermediates or functional foods."( The interplays between epigallocatechin-3-gallate (EGCG) and Aspergillus niger RAF106 based on metabolism.
Du, MR; Fang, X; Liu, T; Peng, H; Shi, QS; Wang, J; Wang, YS; Xie, XB; Zhou, G,
)
0.13
" The nanoscale vehicle may improve the EGCG solubility and bioavailability while overcoming constraints and cellular barriers."( The applications of epigallocatechin gallate (EGCG)-nanogold conjugate in cancer therapy.
Alalikhan, A; Hashemian, P; Hashemzadeh, A; Javid, H; Karimi-Shahri, M, 2023
)
0.91
" Recent studies showed that flavan-3-ols could interact with methylxanthines, evidenced by an increase in flavan-3-ol bioavailability with a concomitant increase in flavan-3-ol intake-mediated vascular effects."( Flavan-3-ol-methylxanthine interactions: Modulation of flavan-3-ol bioavailability in volunteers with a functional colon and an ileostomy.
Borges, G; Crozier, A; Dobani, S; Durkan, R; Ensunsa, JL; Fong, RY; Gill, CIR; Kane, E; Kimball, J; Lawther, R; Medici, V; O'Connor, G; Ottaviani, JI; Pourshahidi, LK; Schroeter, H; Ward, K, 2023
)
0.91
"The application of Epigallocatechin-3-gallate (EGCG) in food industry was limited by its low stability in aqueous solutions and poor bioavailability in vivo."( Stability of glycosylated complexes loaded with Epigallocatechin 3-gallate (EGCG).
Cui, H; Qiu, J; Wang, X; Xiong, C; Yao, C; Yao, L; Zhang, J; Zheng, Q; Zhong, Y, 2023
)
0.91
"Methylation is a common structural modification of catechins in tea, which can improve the bioavailability of catechins."( Novel methylated flavoalkaloids from Echa 1 green tea inhibit fat accumulation and enhance stress resistance in Caenorhabditis elegans.
Bao, GH; Chen, CH; Gao, B; Ke, JP; Qi, Y; Yang, Y; Yang, Z; Yao, G; Yu, JY, 2023
)
0.91
" However, the low bioavailability and off-target effects of EGCG and its reactivity with some chemotherapeutic agents limit its clinical application."( EGCG adjuvant chemotherapy: Current status and future perspectives.
Feng, K; Li, P; Wang, L, 2023
)
0.91
" However, the limited bioavailability restricts their application."( Co-assembled nanocomplexes comprising epigallocatechin gallate and berberine for enhanced antibacterial activity against multidrug resistant Staphylococcus aureus.
Chen, H; Chen, R; Cui, M; Dong, Z; Feng, Y; Li, Y; Liu, W; Sun, S; Wang, J; Ye, H; Zhang, Q; Zhang, Y; Zheng, T, 2023
)
0.91
"This study aimed to improve the thermodynamic performance of nanoliposomes (NLs) using fucoidan (F) as the second-layer coating biopolymer along with chitosan (CS), to control the delivery and bioavailability of catechin (C) and juglone (J)."( Synthesis and characterization of fucoidan/chitosan-coated nanoliposomes for enhanced stability and oral bioavailability of hydrophilic catechin and hydrophobic juglone.
Ettoumi, FE; Huang, H; Li, L; Luo, Z; Xu, Y; Zhang, R, 2023
)
0.91
" This biotransformation process involves a cascade of exclusive gut microbial enzymes which chemically modify the GT polyphenols influencing both their bioactivity and bioavailability in host."( Bidirectional Interactions between Green Tea (GT) Polyphenols and Human Gut Bacteria.
Cho, D; Choi, SR; Chung, JO; Kim, WG; Lee, CH; Lee, H; Roh, JH; Singh, D, 2023
)
0.91
" This review focuses on the effects of EGCG on the functional capabilities acquired by breast tumor cells during its multistep development, the molecular and signal pathways involved, the synergistic effects in combination with current drugs, and how nanomaterials can improve its bioavailability on breast cancer treatment."( The Potential Role of Epigallocatechin-3-Gallate (EGCG) in Breast Cancer Treatment.
Burgos, V; Maria, DA; Marín, V; Pardi, P; Paz, C; Pérez, R, 2023
)
0.91
" Unfortunately, EGCG presents disappointing bioavailability after oral administration, primarily due to its chemical instability and poor absorption."( Tea-break with epigallocatechin gallate derivatives - Powerful polyphenols of great potential for medicine.
Bakun, P; Cerbin-Koczorowska, M; Goslinski, T; Jelińska, A; Koczorowski, T; Kolasiński, E; Kuźmińska, J; Mlynarczyk, DT; Piwowarczyk, L; Stawny, M, 2023
)
0.91
"Acetylation could improve the bioavailability of (-)-Epigallocatechin-3-Gallate (EGCG), but the relationship of substitution degree and antioxidant capacity of acetylated EGCG was unclear."( Separation and antioxidant activities of new acetylated EGCG compounds.
Cui, H; Engelhardt, UH; Wang, Y; Yin, J; Yu, J; Zhang, J; Zhao, Y, 2023
)
0.91

Dosage Studied

The administration of (+)-Cyanidanol-3 [+)-catechin to the rat using a subchronic dosing regime based on that currently used in the therapy of acute viral hepatitis in man, largely prevented the changes in the disposition of a single dose of [14C]imipramine hydrochloride.

ExcerptRelevanceReference
" The implementation of this assay to the screening of a highly diverse academic chemical library of 14,300 molecules yielded, after secondary assays and generation of dose-response curves, the identification of two natural product inhibitors, cyanidin and delphinidin."( Identification by high-throughput screening of inhibitors of Schistosoma mansoni NAD(+) catabolizing enzyme.
Haiech, J; Hibert, M; Kellenberger, E; Kuhn, I; Lobstein, A; Muller-Steffner, H; Rognan, D; Said-Hassane, F; Schuber, F; Villa, P, 2010
)
0.36
" A statistically significant fall of the transaminases SGOT, SGPT and gamma--GT however occurs only at a dosage of 6 tablets per day (3000 mg per day) of (+)-Cyanidanol-3, which cannot be demonstrated at a dose level of 3 X 1 tablet per day."( [A contribution as to the effect of (+)-Cyanidanol-3 in chronic liver disease (author's transl)].
Leube, G; Sondern, W, 1978
)
0.26
" one hour before ethanol), caused increases of up to 23-fold in the hepatic acetaldehyde level, without influencing the cytosolic NAD+:NADH ratio in ethanol dosed rats, while significantly reducing the ethanol elimination rate by up to 44%, compared with controls."( The roles of the hepatocellular redox state and the hepatic acetaldehyde concentration in determining the ethanol elimination rate in fasted rats.
Chakraborty, J; Ryle, PR; Thomson, AD, 1985
)
0.27
" In vitro incubation with the drugs in a concentration corresponding to the usual therapeutic dosage markedly increased (i) the SOD expression of lymphocytes as measured by flow-cytofluorimetry following staining with monoclonal anti-Cu, Zn-SOD-antibody and FITC-conjugated anti-mouse Ig, as well as (ii) erythrocyte and lymphocyte SOD activities."( Effect of free radical scavengers on superoxide dismutase (SOD) enzyme in patients with alcoholic cirrhosis.
Deák, G; Fehér, J; Láng, I; Müzes, G; Nékám, K, 1988
)
0.27
" Apart from clinical evidence of a higher rate of alcohol consumption by patients receiving the active drug during the trial, no adverse side-effects were identified and for this reason, it is suggested that a further trial should be considered with the daily dosage so far used in man (20 mg/kg) increased toward that (100 mg/kg) employed with benefit in animal experiments."( Palmitoyl-catechin for alcoholic liver disease: results of a three-month clinical trial.
Aps, EJ; Ryle, PR; Shaw, GK; Thomson, AD; World, MJ, 1987
)
0.27
" In order to reproduce the beneficial effects of the drug observed in the rat, it is suggested that further trials be conducted with the dosage so far used in man (ca."( (+)-Cyanidanol-3 for alcoholic liver disease: results of a six-month clinical trial.
Aps, EJ; Shaw, GK; Thomson, AD; World, MJ, 1984
)
0.27
"The administration of (+)-Cyanidanol-3 [+)-catechin) to the rat using a subchronic dosing regime based on that currently used in the therapy of acute viral hepatitis in man, largely prevented the changes in the disposition of a single dose of [14C]imipramine hydrochloride induced by the hepatotoxin, D-(+)-galactosamine hydrochloride in rats."( The prevention by (+)-Cyanidanol-3 of hepatitis-induced changes in the disposition of imipramine in the rat.
Griffiths, LA; Hackett, AM; Shaw, IC, 1984
)
0.27
" A trend to a dose-response relation was observed with the antigen PPD."( Influence of (+)-cyanidanol-3 on the leukocyte migration inhibition test carried out in the presence of purified protein derivative and hepatitis B surface antigen.
Frei, PC; Vallotton, JJ, 1981
)
0.26
" The high dosage was lethally toxic in this experiment."( Influenza virus-inhibitory effects of intraperitoneally and aerosol-administered SP-303, a plant flavonoid.
Huffman, JH; Moscon, BJ; Sidwell, RW; Warren, RP,
)
0.13
" Rats that were not dosed with NMBA had no tumors."( Effects of theaflavins on N-nitrosomethylbenzylamine-induced esophageal tumorigenesis.
Balentine, DA; Boone, CW; Harbowy, ME; Kelloff, GJ; Kresty, LA; Morse, MA; Steele, VE; Stoner, GD, 1997
)
0.3
" After determining the maximally tolerated dosage of the tea products, their effect in a colon cancer model was investigated."( Effect of tea extracts, polyphenols, and epigallocatechin gallate on azoxymethane-induced colon cancer.
Aliaga, C; Balentine, DA; Boone, CW; Kelloff, GJ; Pittman, B; Reinhardt, J; Rivenson, A; Steele, VE; Weisburger, JH; Zang, E, 1998
)
0.3
" In this study, it appeared clearly that active principle dosage form is as important as the biological effect of the agent."( [The effect of the formulation of a skin cream with a procyanidin polymer base and its effect on skin lesions caused by herpesviruses].
Amouroux, P; Jean, D; Lamaison, JL,
)
0.13
" Results and chromatographic profiles for 14 commercial products in solid dosage form indicate that a number of these products may not contain authentic guaraná as an active ingredient or contain less than the declared quantity of guaraná."( Liquid chromatographic determination of methylxanthines and catechins in herbal preparations containing guaraná.
Carlson, M; Thompson, RD,
)
0.13
" Human subjects were UVB irradiated on sun-protected skin to four times their minimal erythema dosage (MED) and skin biopsies or keratomes were obtained either 24 h or 48 h later."( Polyphenolic antioxidant (-)-epigallocatechin-3-gallate from green tea reduces UVB-induced inflammatory responses and infiltration of leukocytes in human skin.
Elmets, CA; Katiyar, SK; Matsui, MS; Mukhtar, H, 1999
)
0.3
" Dose-response curves for 1-NP and B[a]P were obtained; the number of net revertants/plate at the peak mutagenic dosage were 880 for 1-NP and 490 for B[a]P."( Antimutagenic effects of natural phenolic compounds in beans.
Castaño-Tostado, E; de Mejía, EG; Loarca-Piña, G, 1999
)
0.3
" Results indicated that maximum plasma concentrations for the catechins (15-112 micrograms/ml) were achieved at 2 h post-oral dosing and the apparent volume of distribution (Vd/F) ranged from 30 to 63 l/kg."( Oral absorption and bioavailability of tea catechins.
Chen, Y; Li, RC; Zhu, M, 2000
)
0.31
" That the rise in plasma epicatechin levels was functionally significant is suggested by observations of trends for dose-response increases in the plasma antioxidant capacity and decreases in plasma lipid oxidation products."( A dose-response effect from chocolate consumption on plasma epicatechin and oxidative damage.
Ensunsa, JL; Fraga, CG; Holt, RR; Keen, CL; Schmitz, HH; Schramm, DD; Wang, JF, 2000
)
0.31
" However, dosing the GSNO-treated cells with 9, 14, or 18 microg/ml of EGCG resulted in only 74 +/- 8%, 66 +/- 1%, and 43 +/- 3% of the cells, respectively, in the G(1)-phase."( Epigallocatechin gallate protects U937 cells against nitric oxide-induced cell cycle arrest and apoptosis.
Geigerman, CM; Kelly, MR; Loo, G, 2001
)
0.31
"The observed p53 concentration changes upon stimulation by polyphenols are relatively small, do not follow a uniform pattern in the four cell lines tested, and do not exhibit a dose-response effect."( Do wine polyphenols modulate p53 gene expression in human cancer cell lines?
Diamandis, EP; Goldberg, DM; Grass, L; Levesque, M; Soleas, GJ, 2001
)
0.31
" The antioxidant capacity of Gala apples and seven phenolic standards, determined by both ABTS(*)(-) and DPPH(*) scavenging assays, showed a dose-response of the first-order."( Vitamin C equivalent antioxidant capacity (VCEAC) of phenolic phytochemicals.
Kim, DO; Lee, CY; Lee, HJ; Lee, KW, 2002
)
0.31
" Green tea catechin mixture was dosed to rats by intravenous or intraportal infusion."( Contribution of presystemic hepatic extraction to the low oral bioavailability of green tea catechins in rats.
Anavy, ND; Cai, Y; Chow, HH, 2002
)
0.31
" In each dosage group, the kinetic profile revealed rapid absorption with a one-peak plasma concentration versus time course, followed by a multiphasic decrease consisting of a distribution phase and an elimination phase."( A single ascending dose study of epigallocatechin gallate in healthy volunteers.
Decourt, JP; Girault, J; Girault, N; Haller, J; Pineau, B; Richard-Caudron, AS; Ullmann, U; Weber, P,
)
0.13
" Urine samples were collected twice daily (0-8 and 8-24 h) from male Sprague-Dawley rats (n = 10) prior to dosing and for 2 days after dosing."( NMR-based metabonomic studies on the biochemical effects of epicatechin in the rat.
Bailey, NJ; Davis, AL; Holmes, E; Lindon, JC; Mulder, TP; Nicholson, JK; Solanky, KS; Van Duynhoven, JP, 2003
)
0.32
" The knowledge gained at the cellular and molecular levels, and biological activities of PSMs including tannin-polyphenols, saponins, mimosine, flavonoids, terpenoids, and phytates, would be useful in planning for future epidemiological studies and human cancer prevention trials, especially when a large pure dosage is not the option to deliver the active compounds to many tissues."( Potential therapeutic applications of some antinutritional plant secondary metabolites.
Bhat, TK; Singh, B, 2003
)
0.32
" There was a >60% increase in the area under the plasma EGCG concentration-time curve after 4 weeks of green tea polyphenol treatment at a dosing schedule of 800 mg once daily."( Pharmacokinetics and safety of green tea polyphenols after multiple-dose administration of epigallocatechin gallate and polyphenon E in healthy individuals.
Alberts, DS; Brooks, CA; Cai, Y; Chow, HH; Crowell, JA; Dorr, RT; Hakim, IA; Hara, Y; Shahi, F, 2003
)
0.32
"We investigated the effect of different doses of L-EGCG on GMCs proliferation at 24 h, 48 h and 72 h respectively, and screened the best dosage and time point."( [Effect of L-EGCG on lipopolysaccharide-induced glomerular mesangial cell proliferation in rats].
He, XJ; Lu, XY; Yi, ZW, 2003
)
0.32
" The relatively high degree of fit using the Higuchi equation implies that the kinetic process is involved in the release of drug from the dosage form."( Release kinetics of catechins from chewing gum.
Wang, G; Yang, X; Zhang, X, 2004
)
0.32
" The distribution and elimination half-lives were 6 and 72 min respectively, after the dosage of 30 mg/kg."( Determination of (-)-epigallocatechin gallate in rat blood by microdialysis coupled with liquid chromatography.
Hung, LC; Lin, LC; Tsai, TH, 2004
)
0.32
" Oral and intravenous dosing of GTE-epimer mixture led to increase in total plasma antioxidant capacity in rats."( Comparison of antioxidant activity and bioavailability of tea epicatechins with their epimers.
Chang, Q; Chen, ZY; Huang, Y; Xu, JZ; Yeung, SY, 2004
)
0.32
"This randomized, double-blind, placebo-controlled study assessed the safety, tolerability, and plasma-kinetic behavior of 94% pure crystalline epigallocatechin gallate (EGCG) after ten days' repeated dosing in 36 healthy male volunteers."( Plasma-kinetic characteristics of purified and isolated green tea catechin epigallocatechin gallate (EGCG) after 10 days repeated dosing in healthy volunteers.
Decourt, JD; Girault, J; Haller, J; Spitzer, V; Ullmann, U; Weber, P, 2004
)
0.32
" Tea catechin concentrations in plasma and urine samples collected after dosing were determined by high-pressure liquid chromatography analysis."( Effects of dosing condition on the oral bioavailability of green tea catechins after single-dose administration of Polyphenon E in healthy individuals.
Alberts, DS; Celaya, CA; Chew, WM; Chow, HH; Crowell, JA; Hakim, IA; Hara, Y; Ranger-Moore, J; Rodney, SR; Vining, DR, 2005
)
0.33
" The dosing condition led to a similar change in plasma-free epigallocatechin and epicatechin gallate levels."( Effects of dosing condition on the oral bioavailability of green tea catechins after single-dose administration of Polyphenon E in healthy individuals.
Alberts, DS; Celaya, CA; Chew, WM; Chow, HH; Crowell, JA; Hakim, IA; Hara, Y; Ranger-Moore, J; Rodney, SR; Vining, DR, 2005
)
0.33
" This dosing condition is also expected to optimize the biological effects of tea catechins."( Effects of dosing condition on the oral bioavailability of green tea catechins after single-dose administration of Polyphenon E in healthy individuals.
Alberts, DS; Celaya, CA; Chew, WM; Chow, HH; Crowell, JA; Hakim, IA; Hara, Y; Ranger-Moore, J; Rodney, SR; Vining, DR, 2005
)
0.33
" Tremendous variability in cocoa processing, flavonoid content, measurement and dosing threatens the field."( Flavanols for cardiovascular health: the science behind the sweetness.
Fisher, ND; Hollenberg, NK, 2005
)
0.33
" Consequently, the picture is becoming ever more complicated, not least because results often appear to be cell-type specific, dose-response relationships are critical, and any one agent appears to have multiple mechanisms of action."( Inhibition of survival signalling by dietary polyphenols and indole-3-carbinol.
Manson, MM, 2005
)
0.33
" Furthermore, EGCG is the most potent inducer of HO-1 expression of the different green tea constituents that we analyzed, but had no detectable cytotoxic effects over the 25-100 microM dosage range."( Upregulation of heme oxygenase-1 by Epigallocatechin-3-gallate via the phosphatidylinositol 3-kinase/Akt and ERK pathways.
Hsieh, CW; Hsu, MC; Lai, PH; Lin, JB; Wu, CC; Wung, BS, 2006
)
0.33
" The apparent permeability coefficients (P(app)) of each compound, as well as the metabolites (mainly sulfation and methylation conjugates) generated, were compared for the different dosing formulations utilized."( Effect of the co-occurring components from green tea on the intestinal absorption and disposition of green tea polyphenols in Caco-2 monolayer model.
Chow, MS; Zhang, L; Zuo, Z, 2006
)
0.33
" To determine if oral administration of green tea would prevent development of diabetes, young Zucker diabetic rats were dosed with green tea extract containing 50-125 mg/kg of Epigallocatechin gallate (EGCG) starting at 7 weeks of age, before the appearance of excessive weight gain and glucose elevation."( Effect of long-term oral administration of green tea extract on weight gain and glucose tolerance in Zucker diabetic (ZDF) rats.
Janle, EM; Portocarrero, C; Zhou, Q; Zhu, Y, 2005
)
0.33
" These data indicate that transdermal EGCG is useful for delivering prolonged levels of EGCG to plasma and tissues, and may provide an alternative to tea consumption as a dosage form of EGCG."( Transdermal delivery of (-)-epigallocatechin-3-gallate, a green tea polyphenol, in mice.
Kim, DH; Lambert, JD; Yang, CS; Zheng, R, 2006
)
0.33
" The concentrations required to result in a 50% reduction in cell death (EC(50) value) were calculated from their dose-response curves."( Free radical scavenging and cytoprotective activities of phenolic antioxidants.
Adaim, A; Melton, LD; Skinner, MA; Stanley, RA; Zhang, J, 2006
)
0.33
" The results demonstrated that the extract at dosage of 40-225 mg/100 g significantly increased the activity of SOD (superoxide dismutase) and reduced the lipid peroxidation in both blood and liver of rat."( In vitro and vivo antioxidant activities of daylily flowers and the involvement of phenolic compounds.
Mao, L; Que, F; Zheng, X, 2007
)
0.34
" To distinguish between blocking and suppressing effects, and thus provide mechanistic insights into prevention during the initiation versus post-initiation phases of carcinogenesis, white tea, and green tea were administered at 2% (w/v) as the sole source of drinking fluid either 2 wk before and 2 wk during PhIP dosing (100 mg/kg, every other day by oral gavage), or starting 1 wk after the carcinogen and continued until the study was terminated at 16 wk."( Comparison of white tea, green tea, epigallocatechin-3-gallate, and caffeine as inhibitors of PhIP-induced colonic aberrant crypts.
Bailey, GS; Carter, O; Dashwood, RH; Dashwood, WM; Fischer, KA; Löhr, CV; Orner, GA; Pereira, CB; Wang, R; Williams, DE, 2007
)
0.34
" We found that catechin dose-dependently relaxes both spontaneous and high K(+) (80 mM)-induced contraction in rabbit jejunum, showing specificity for the latter by causing a right-ward shift in the Ca(2+) dose-response curve."( Antispasmodic, bronchodilator and vasodilator activities of (+)-catechin, a naturally occurring flavonoid.
Ghayur, MN; Gilani, AH; Khan, H, 2007
)
0.34
" Dose-response relationships observed in several epidemiological studies have indicated that pronounced cardiovascular and metabolic health benefits can be obtained by regular consumption of 5-6 or more cups of green tea per day."( Effects of green tea and EGCG on cardiovascular and metabolic health.
Wolfram, S, 2007
)
0.34
" GTC-HDC or GTC-UH dosing had no effects on body weights or microscopic findings, whereas lower body weights and food consumption were observed in the 1000 and 2000 mg/kg/day GTC-H group males."( 28-Day oral (gavage) toxicity studies of green tea catechins prepared for beverages in rats.
Beck, MJ; Chengelis, CP; Kirkpatrick, JB; Morita, O; Radovsky, AE; Regan, KS; Suzuki, H; Tamaki, Y, 2008
)
0.35
"01, respectively) in mice belonging to all EGCG dosing groups."( Protective effects of epigallocatechin gallate on colon preneoplastic lesions induced by 2-amino-3-methylimidazo[4,5-f ] quinoline in mice.
Li, YQ; Yang, XY; Yuan, JH,
)
0.13
" Gene dosage correction induces a rescue of the brain volume alterations."( Green tea polyphenols rescue of brain defects induced by overexpression of DYRK1A.
Arbones, M; Bizot, JC; Delabar, JM; Gillet, B; Guedj, F; Ledru, A; Paly, E; Rivals, I; Rubin, E; Sébrié, C; Smith, D, 2009
)
0.35
" In the high-dose male GTC-H group, a lower total motor activity count for the 60-min session was noted prior to dosing at the study week 25 evaluations compared to the control group."( Safety assessment of heat-sterilized green tea catechin preparation: a 6-month repeat-dose study in rats.
Beck, MJ; Bruner, RH; Chengelis, CP; Kirkpatrick, JB; Morita, O; Tamaki, Y, 2009
)
0.35
" Lipid peroxidation and reactive oxygen species formation were measured in Amyloid-beta- and Amyloid-beta-Epicatechin-treated groups at 2 h and 24 h after dosing and formation of the lesion."( Antioxidant effects of epicatechin on the hippocampal toxicity caused by amyloid-beta 25-35 in rats.
Cuevas, E; Díaz, A; Guevara, J; Limón, D; Ortega, L; Pérez-Severiano, F; Zenteno, E, 2009
)
0.35
" This study suggests that brain deposition of GA, C, and EC is affected by repeated dosing of GSPE."( Bioavailability of gallic acid and catechins from grape seed polyphenol extract is improved by repeated dosing in rats: implications for treatment in Alzheimer's disease.
Cooper, B; Ferruzzi, MG; Ho, L; Janle, EM; Lobo, JK; Pasinetti, GM; Simon, JE; Weaver, C; Welch, C; Wu, QL, 2009
)
0.35
" In contrast, we did not find any dose-response relationship between urinary polyphenols and breast cancer risk."( Urinary polyphenols and breast cancer risk: results from the Shanghai Women's Health Study.
Cai, H; Cai, Q; Chow, WH; Dai, Q; Franke, AA; Gao, YT; Li, H; Luo, J; Rothman, N; Shrubsole, MJ; Shu, XO; Yang, G; Zheng, W, 2010
)
0.36
"The bioavailability values observed are in agreement with previous reports, although the dosage of polyphenols ingested in this study is remarkably lower."( Bioavailability of catechins from ready-to-drink tea.
Brighenti, F; Calani, L; Cordero, C; Del Rio, D; Jechiu, L; Scazzina, F, 2010
)
0.36
" Once-daily dosing with EGCG increased hepatotoxic response."( Hepatotoxicity of high oral dose (-)-epigallocatechin-3-gallate in mice.
Ju, J; Kennett, MJ; Lambert, JD; Reuhl, KR; Sang, S; Yang, CS, 2010
)
0.36
" Sustained-release formulations are usually developed in the pharmaceutical industry to slowly deliver the compound over a period of time and increase the dosing interval."( Pharmacokinetics of green tea catechins in extract and sustained-release preparations.
Janle, EM; Morré, DJ; Morré, DM; Zhou, Q; Zhu, Y, 2008
)
0.35
" After intravenous or oral administration the terminal half-lives were similar, whereas 8-fold larger values were obtained after oral dosing for total clearance and the apparent volumes of distribution."( In vivo bioavailability, absorption, excretion, and pharmacokinetics of [14C]procyanidin B2 in male rats.
Barron, D; Brown, JE; Clifford, MN; King, LJ; Stoupi, S; Viton, F; Williamson, G, 2010
)
0.36
" It is reported that lower than MIC dosage supplementation of (+/-)-catechin could promote growth responses in the model plant Arabidopsis thaliana."( Stimulation or Inhibition: Conflicting evidence for (+/-)-catechin's role as a chemical facilitator and disease protecting agent.
Bais, HP; Biedrzycki, ML; Venkatachalam, L, 2010
)
0.36
" Nevertheless, the dose-response relationship of the inhibitory activity in vivo has not been systematically characterized."( Pro-oxidative activities and dose-response relationship of (-)-epigallocatechin-3-gallate in the inhibition of lung cancer cell growth: a comparative study in vivo and in vitro.
Chen, YK; Guan, F; Hou, Z; Jin, H; Lee, MJ; Li, GX; Liu, B; Lu, G; Xiao, H; Yang, CS; Yang, Z; Yu, A, 2010
)
0.36
"Flavocoxid at a human equivalent dose (HED) of 569 mg (within the standard human dosing range of 500 mg) produced no significant increases in bleeding time in mice."( Flavocoxid, an anti-inflammatory agent of botanical origin, does not affect coagulation or interact with anticoagulation therapies.
Burnett, BP; Jia, Q; Levy, RM; Pillai, L; Yimam, M; Zhao, Y, 2010
)
0.36
" The tea and extract groups had similar dosing of epiogallocatechin-3-gallate (EGCG), the active compound in green tea."( Green tea supplementation affects body weight, lipids, and lipid peroxidation in obese subjects with metabolic syndrome.
Aston, CE; Basu, A; Betts, NM; Leyva, MJ; Lyons, TJ; Sanchez, K; Wu, M, 2010
)
0.36
" Both the beverage and extract groups had similar dosing of epigallocatechin-3-gallate, the active green tea polyphenol."( Green tea minimally affects biomarkers of inflammation in obese subjects with metabolic syndrome.
Aston, CE; Basu, A; Betts, NM; Blevins, S; Du, M; Leyva, MJ; Lyons, TJ; Sanchez, K; Wu, M, 2011
)
0.37
" sinesis Extract and SRM 3256 Green Tea-containing Oral Dosage Form) are characterized for the content of caffeine and a series of catechin species (gallic acid, catechin, epicatechin, epigallocatechin, epicatechin gallate and epigallocatechin gallate (EGCG))."( Determination of catechins and caffeine in proposed green tea standard reference materials by liquid chromatography-particle beam/electron ionization mass spectrometry (LC-PB/EIMS).
Castro, J; Chumanov, K; Marcus, RK; Pregibon, T, 2010
)
0.36
" Although there is a considerable amount of data available, questions remain in terms of the primary mechanism(s) of action, the dose-response relationships involved, and the best way to translate the results to human intervention studies."( Weight control and prevention of metabolic syndrome by green tea.
Grove, KA; Lambert, JD; Sae-tan, S, 2011
)
0.37
" Finally, the influence of moderators such as BMI and dosage on the results was examined as well."( The effects of catechin rich teas and caffeine on energy expenditure and fat oxidation: a meta-analysis.
Dulloo, AG; Hursel, R; Rumpler, W; Tappy, L; Tremblay, A; Viechtbauer, W; Westerterp-Plantenga, MS, 2011
)
0.37
" Antitumor activity of bortezomib in combination with EGCG or ascorbic acid was determined using several dosing regimens to evaluate different target plasma concentrations of EGCG and ascorbic acid."( Preclinical evaluation of the antitumor activity of bortezomib in combination with vitamin C or with epigallocatechin gallate, a component of green tea.
Bannerman, B; Berger, A; Bolen, J; Claiborne, C; Dick, L; Fleming, P; Hales, P; Jones, M; Kupperman, E; Manfredi, M; Monbaliu, J; Tsu, C; Xu, L; Yu, J, 2011
)
0.37
"Responses were evaluated from dose-response curves of the metabolites and metabolic inhibitors in which growth of HeLa cells, apoptosis based on DAPI fluorescence and cytosolic NADH levels were correlated with sphingomyelinase and spingosine kinase activities and levels of ceramide and sphingosine1-phosphate."( Metabolite modulation of HeLa cell response to ENOX2 inhibitors EGCG and phenoxodiol.
De Luca, T; Morré, DJ; Morré, DM; Watanabe, T; Wu, LY, 2011
)
0.37
" Dose-response curves obtained for each compound by applying the neutral red uptake (NRU) assay to MMe cells growing in vitro, allowed to obtain IC50 values for each compound used singularly."( In vitro screening of synergistic ascorbate-drug combinations for the treatment of malignant mesothelioma.
Burlando, B; Martinotti, S; Ranzato, E, 2011
)
0.37
" Catechin (50 mg/Kg) was co-supplemented after 4 weeks of alcohol treatment till the end of the dosing period."( Catechin suppresses an array of signalling molecules and modulates alcohol-induced endotoxin mediated liver injury in a rat model.
Bharrhan, S; Chopra, K; Koul, A; Rishi, P, 2011
)
0.37
" Sigmoidal dose-response curves were plotted and IC(50) values were estimated."( In vitro and in situ evaluation of herb-drug interactions during intestinal metabolism and absorption of baicalein.
Fong, YK; Li, CR; Lin, G; Wang, S; Wo, SK; Zhang, L; Zhou, L; Zuo, Z, 2012
)
0.38
" B2G2 was partially absorbed intact in mice after oral dosing and did not undergo significant metabolism."( Glucuronidation and methylation of procyanidin dimers b2 and 3,3″-di-o-galloyl-b2 and corresponding monomers epicatechin and 3-o-galloyl-epicatechin in mouse liver.
Agarwal, C; Agarwal, R; Gu, M; Shrestha, SP; Thompson, JA; Wempe, MF, 2012
)
0.38
" The total phenolic content and antioxidant activity were measured in wines spiked to different extract concentrations, namely, control and 50, 100, 200, 400, and 800 mg/L, to confirm the dose-response curves in both white and red wines."( Total phenolic content, antioxidant activity, and cross-cultural consumer rejection threshold in white and red wines functionally enhanced with catechin-rich extracts.
Prenzler, PD; Ryan, D; Saliba, AJ; Yoo, YJ, 2012
)
0.38
" Rats that were dosed with EGCG (60 mg/kg, intraperitoneal) over a 7 day time course stabilized HIF-1α protein in kidney tissues."( Inactivation of prolyl hydroxylase domain (PHD) protein by epigallocatechin (EGCG) stabilizes hypoxia-inducible factor (HIF-1α) and induces hepcidin (Hamp) in rat kidney.
Abraham, B; Alayash, AI; Baek, JH; Buehler, PW; Manalo, DJ; Struble, E, 2011
)
0.37
" Doses were taken twice daily for 3 1/2 days followed by FMD and a 4-day washout before proceeding to the next dosing period."( Effect of hawthorn standardized extract on flow mediated dilation in prehypertensive and mildly hypertensive adults: a randomized, controlled cross-over trial.
Asher, GN; Caughey, M; Dominik, R; Hinderliter, AL; Viera, AJ; Weaver, MA, 2012
)
0.38
" There was no evidence of a dose-response effect for our main outcome (FMD percent) or any of our secondary outcomes (absolute change in brachial artery diameter and blood pressure)."( Effect of hawthorn standardized extract on flow mediated dilation in prehypertensive and mildly hypertensive adults: a randomized, controlled cross-over trial.
Asher, GN; Caughey, M; Dominik, R; Hinderliter, AL; Viera, AJ; Weaver, MA, 2012
)
0.38
"We found no evidence of a dose-response effect of hawthorn extract on FMD."( Effect of hawthorn standardized extract on flow mediated dilation in prehypertensive and mildly hypertensive adults: a randomized, controlled cross-over trial.
Asher, GN; Caughey, M; Dominik, R; Hinderliter, AL; Viera, AJ; Weaver, MA, 2012
)
0.38
" Pretreatment of carrageenan-induced hyperalgesic animals with UP446 at 150 mg/kg oral dosage reduced the hypersensitivity of pain by 39."( Analgesic effects of a standardized bioflavonoid composition from Scutellaria baicalensis and Acacia catechu.
Brownell, L; Hodges, M; Jia, Q; Yimam, M, 2012
)
0.38
"The present analysis suggests that flavonoid bioactivity does not follow a classical linear dose-response association and this may have important biological implications."( Relative impact of flavonoid composition, dose and structure on vascular function: a systematic review of randomised controlled trials of flavonoid-rich food products.
Cassidy, A; Hooper, L; Kay, CD; Kroon, PA; Rimm, EB, 2012
)
0.38
" An open-loop 3-zone SMB approach was used, a gradient of solvent strength in zones I and II was formed by different methanol dosage in purge and desorbent solutions and pre-equilibration was reached by the elution at the end of zone III."( Separation of epigallocatechin gallate from tea polyphenol by simulated moving bed chromatography.
Liang, Y; Wang, S; Zheng, S, 2012
)
0.38
"Green tea (Camellia sinensis) catechin profiles in plasma and urine following single dosing and regular ingestion of green tea are not clear."( Comparison of catechin profiles in human plasma and urine after single dosing and regular intake of green tea (Camellia sinensis).
Benzie, IF; Choi, SW; Chung, WY; Fung, ST; Ho, CK, 2013
)
0.39
" EGCG prevented DON-induced cytotoxicity to HT-29 cells in a dose-response manner."( Cytoprotective effect of epigallocatechin-3-gallate against deoxynivalenol-induced toxicity through anti-oxidative and anti-inflammatory mechanisms in HT-29 cells.
Bharathi Priya, L; Kalaiselvi, P; Padma, VV; Rajashree, K, 2013
)
0.39
" We compared the bioavailability and dose-response of epicatechin from whole apple and an epicatechin-rich extract, and the effects on plasma and urinary nitric oxide (NO) metabolites."( Bioavailability of epicatechin and effects on nitric oxide metabolites of an apple flavanol-rich extract supplemented beverage compared to a whole apple puree: a randomized, placebo-controlled, crossover trial.
Dainty, JR; Hart, DJ; Hasselwander, O; Hollands, WJ; Kroon, PA; Tiihonen, K; Wood, R, 2013
)
0.39
" Adenomyosis was induced in 28 female ICR mice neonatally dosed with tamoxifen, while another 12 (group C) were dosed with solvent only, which served as a blank control."( Epigallocatechin-3-gallate reduces myometrial infiltration, uterine hyperactivity, and stress levels and alleviates generalized hyperalgesia in mice induced with adenomyosis.
Chen, Y; Guo, SW; Liu, X; Zhang, H; Zhu, B, 2013
)
0.39
" These cocrystals were subsequently dosed at 100 mg EGCg per kg body weight in rats, and the plasma levels were monitored over the course of eight hours following the single oral dose."( Crystal engineering of green tea epigallocatechin-3-gallate (EGCg) cocrystals and pharmacokinetic modulation in rats.
Arora, KK; Kavuru, P; Kesani, S; Shytle, RD; Smith, AJ; Tan, J; Zaworotko, MJ, 2013
)
0.39
" Both pro-oxidant and antioxidant properties are expected to contribute to modulation of oxidative stress response under ideal optimal dosage regimens."( Targeting oxidative stress response by green tea polyphenols: clinical implications.
Yiannakopoulou, ECh, 2013
)
0.39
" The effect of green tea catechins on breast cell carcinogenesis has been investigated in different experimental models and under different experimental conditions, that is, carcinogen investigated, green tea catechin dosage regimen, treatment with green tea extract versus pure synthetic EGCG, and time point of treatment with green tea catechins in relation to the exposure to the carcinogen."( Effect of green tea catechins on breast carcinogenesis: a systematic review of in-vitro and in-vivo experimental studies.
Yiannakopoulou, ECh, 2014
)
0.4
"75% is a new agent with fewer side effects and perhaps a better dosing schedule than imquimod 5%, but is not more effective."( Update on the treatment of genital warts.
Scheinfeld, N, 2013
)
0.39
" Although available data are promising, many questions remain with regard to the dose-response relations of tea constituents in various models, the primary mechanisms of action, and the potential for combination chemoprevention strategies that involve tea as well as other dietary or pharmaceutical agents."( Does tea prevent cancer? Evidence from laboratory and human intervention studies.
Lambert, JD, 2013
)
0.39
" PMA-treated RD cells showed dose-response inhibition of MMP-9 by doxycycline and epigallocatechin gallate and both MMPs by NM."( In vitro modulation of MMP-2 and MMP-9 in pediatric human sarcoma cell lines by cytokines, inducers and inhibitors.
Kalinovsky, T; Niedzwiecki, A; Rath, M; Roomi, MW, 2014
)
0.4
" There were no dose-limiting toxicities reported in all EGCG dosing tiers."( A phase I study of concurrent chemotherapy and thoracic radiotherapy with oral epigallocatechin-3-gallate protection in patients with locally advanced stage III non-small-cell lung cancer.
Li, H; Sun, X; Xie, P; Xing, L; Yu, J; Zhang, X; Zhao, H; Zhu, W, 2014
)
0.4
" Dose-response curves of ECG at various concentrations of the full antagonist 4'-fluoro-6-methoxyflavanone and wash-out experiments indicated reversible insurmountable antagonism."( 6-methoxyflavanones as bitter taste receptor blockers for hTAS2R39.
Driesse, M; Gouka, RJ; Gruppen, H; Roland, WS; Smit, G; van Buren, L; Vincken, JP, 2014
)
0.4
" Double dosing evidenced a synergistic, 82% reduction at 3 weeks."( Co-administration of the flavanol (-)-epicatechin with doxycycline synergistically reduces infarct size in a model of ischemia reperfusion injury by inhibition of mitochondrial swelling.
Calzada, C; Ceballos, G; Meaney, E; Ortiz, A; Ortiz-Vilchis, P; Ramirez-Sanchez, I; Romero-Perez, D; Rubio-Gayosso, I; Taub, P; Villarreal, F; Yamazaki, KG, 2014
)
0.4
" Studies have demonstrated the hepatotoxicity of high-dose oral bolus dosing with the tea polyphenol (-)-epigallocatechin-3-gallate (EGCG) in mice and dogs."( Dietary pretreatment with green tea polyphenol, (-)-epigallocatechin-3-gallate reduces the bioavailability and hepatotoxicity of subsequent oral bolus doses of (-)-epigallocatechin-3-gallate.
Forester, SC; James, KD; Lambert, JD, 2015
)
0.42
" First, we performed a dose-response study to evaluate nociceptive sensation after administration of EGCG and its derivatives 23 and 30, using the Hargreaves test at 7 and 21 days after injury (dpi)."( Novel epigallocatechin-3-gallate (EGCG) derivative as a new therapeutic strategy for reducing neuropathic pain after chronic constriction nerve injury in mice.
Alberch, J; Boadas-Vaello, P; Puig, T; Turrado, C; Verdú, E; Vidal-Sancho, L; Xifró, X, 2015
)
0.42
"To examine the effect and safety of high-dose green tea extract (Epigallocatechin gallate, EGCG) at a daily dosage of 856."( Therapeutic effect of high-dose green tea extract on weight reduction: A randomized, double-blind, placebo-controlled clinical trial.
Chen, IJ; Chiu, JP; Hsu, CH; Liu, CY, 2016
)
0.43
" Using the live fiber model system, we also determine the dose-response curve for both IGF-1 and insulin on Foxo1 nucleo-cytoplasmic distribution."( Green tea component EGCG, insulin and IGF-1 promote nuclear efflux of atrophy-associated transcription factor Foxo1 in skeletal muscle fibers.
Russell, SJ; Schneider, MF; Wimmer, RJ, 2015
)
0.42
" Conversely, the MG132 dose-response curve was unaffected by co-administration of EGCG."( EGCG antagonizes Bortezomib cytotoxicity in prostate cancer cells by an autophagic mechanism.
Bettuzzi, S; Bonacini, M; Giovanna Troglio, M; Modernelli, A; Naponelli, V; Ramazzina, I; Rizzi, F, 2015
)
0.42
" Standardization of Vivabon syrup dosage form using HPLC/DAD has been developed for quantitative estimation of Catechin as a chemical marker."( Quantitative Determination of Catechin as Chemical Marker in Pediatric Polyherbal Syrup by HPLC/DAD.
Naveed, S; Sheikh, ZA; Siddiqui, ZA; Usmanghani, K, 2016
)
0.43
" This study aims to determine the dose-response association of green tea intake with PCa risk and the preventive effect of green tea catechins on PCa risk."( Green tea and the risk of prostate cancer: A systematic review and meta-analysis.
Chen, P; Guo, Y; Mao, Q; Wang, X; Xiang, H; Zhang, X; Zhao, K; Zhi, F, 2017
)
0.46
"Transdermal administration of drugs represents an excellent alternative to conventional pharmaceutical dosage forms."( A Novel Chemical Enhancer Approach for Transdermal Drug Delivery with C
Hijikuro, I; Kadhum, WR; Sekiguchi, S; Sugibayashi, K; Todo, H, 2017
)
0.46
" The current study investigated if an EGCG dosage similar to that study would yield similar improvements in either cognitive or skeletal deficits."( Epigallocatechin-3-gallate (EGCG) consumption in the Ts65Dn model of Down syndrome fails to improve behavioral deficits and is detrimental to skeletal phenotypes.
Abeysekera, I; Dria, KJ; Goodlett, CR; LaCombe, J; Roper, RJ; Stancombe, K; Stewart, RJ; Stringer, M; Thomas, J; Wallace, JM, 2017
)
0.46
"(ZDF) rats and their lean controls (LN) were dosed with a Standardized Grape Polyphenol (SGP) Mixture consisting of grape seed extract, Concord grape juice and resveratrol (RES) by oral gavage for 10 days."( Influence of diabetes on plasma pharmacokinetics and brain bioavailability of grape polyphenols and their phase II metabolites in the Zucker diabetic fatty rat.
Chen, TY; Cooper, B; Ferruzzi, MG; Ho, L; Janle, EM; Pasinetti, GM; Simon, JE; Talcott, ST; Todd, G; Wang, J; Wu, QL, 2017
)
0.46
" Our findings suggest that GN carrier is responsible for enhanced pharmacological efficacy of topically instilled EGCG, thereby demonstrating the benefits of using biodegradable in situ gelling delivery system to overcome the drawbacks of limited dry eye relief associated with eye drop dosage form."( Epigallocatechin Gallate-Loaded Gelatin-g-Poly(N-Isopropylacrylamide) as a New Ophthalmic Pharmaceutical Formulation for Topical Use in the Treatment of Dry Eye Syndrome.
Lai, JY; Luo, LJ, 2017
)
0.46
" This novel hypothesis is important to human health, and the dose-response relationship of this synergistic toxicity needs to be further characterized."( Synergistic toxicity of epigallocatechin-3-gallate and diethyldithiocarbamate, a lethal encounter involving redox-active copper.
Dong, R; Sun, K; Wang, J; Wang, X; Yang, CS; Zhang, J; Zhang, K, 2017
)
0.46
" Specifically, EGCG extended lifespan in an inverted U-shaped dose-response manner."( Epigallocatechin-3-gallate promotes healthy lifespan through mitohormesis during early-to-mid adulthood in Caenorhabditis elegans.
Chen, YJ; Gong, YS; Huang, JA; Liu, ZH; Tong, JW; Xiong, LG, 2018
)
0.48
" Seven day dosing of pre-diabetic subjects led to tendencies for reductions in circulating levels of tumor necrosis factor-α and monocyte chemoattractant protein-1, which returned to baseline by 7 days after treatment."( A pilot study on clinical pharmacokinetics and preclinical pharmacodynamics of (+)-epicatechin on cardiometabolic endpoints.
Beltrán-Partida, E; Best, BM; Ceballos, G; Ciaraldi, TP; Dugar, S; Henry, RR; Hernández, M; Moreno-Ulloa, A; Nájera-García, N; Ramírez-Sánchez, I; Schreiner, G; Su, Y; Taub, PR; Villarreal, F, 2018
)
0.48
" Intragastric dosing with EGCG (500 - 750 mg/kg) once daily for 3 d caused hepatic inflammation, necrosis, and hemorrhage."( Potential role of the mitochondria as a target for the hepatotoxic effects of (-)-epigallocatechin-3-gallate in mice.
James, KD; Kennett, MJ; Lambert, JD, 2018
)
0.48
" This study investigated the effect of 28 days of low epicatechin dosing (1 mg/kg/day) on the cardiovascular function of deoxycorticosterone acetate (DOCA)-salt hypertensive rats."( (-)-Epicatechin Reduces Blood Pressure and Improves Left Ventricular Function and Compliance in Deoxycorticosterone Acetate-Salt Hypertensive Rats.
Batacan, R; Connolly, K; Fenning, A; Jackson, D; Ryan, K; Vella, R, 2018
)
0.48
" The effects of doses and dosage forms on catechin toxicity, the mechanisms involved, and factors that may affect toxicity are discussed."( Studies on the Prevention of Cancer and Cardiometabolic Diseases by Tea: Issues on Mechanisms, Effective Doses, and Toxicities.
Yang, CS; Zhang, J, 2019
)
0.51
"The aim of this study was to evaluate potential pharmacokinetic, tissue distribution and excretion interactions between ACW and SBG, and to provide useful information for the development of suitable dosage forms and clinical applications."( Simultaneous determinations of four major bioactive components in Acacia catechu (L.f.) Willd and Scutellaria baicalensis Georgi extracts by LC-MS/MS: Application to its herb-herb interactions based on pharmacokinetic, tissue distribution and excretion st
Gai, S; Jing, J; Liu, X; Mi, L; Shen, X; Wang, L; Wang, Q; Zhang, S, 2019
)
0.51
" Furthermore, the effect of oral single dosage of EGC-M5 on glucose tolerance test with ICR mice was examined and significant suppression of hyperglycemia was observed."( Effects of Microbial Metabolites of (-)-Epigallocatechin Gallate on Glucose Uptake in L6 Skeletal Muscle Cell and Glucose Tolerance in ICR Mice.
Ashida, H; Hara-Terawaki, A; Ikeda, M; Nagano, T; Seto, R; Takagaki, A; Yamashita, Y; Yoshioka, Y, 2019
)
0.51
" Overall, we propose that dosage imbalance of the Hsa21 gene DYRK1A affects downstream Wnt target genes."( Downregulated Wnt/β-catenin signalling in the Down syndrome hippocampus.
Almudimeegh, S; Berwick, DC; Cleverley, K; Fisher, EMC; Granno, S; Harvey, K; Heaton, G; Nagda, Z; Nixon-Abell, J; Plagnol, V; Rain, JC; Tosh, J; Tybulewicz, VLJ; Wiseman, FK; Zanda, M, 2019
)
0.51
" In general, 3 months of LP, reaching the highest dose per study protocol was well tolerated and no dosing adjustment was necessary."( A Pilot Study of a Grape Seed Procyanidin Extract for Lung Cancer Chemoprevention.
Lu, QY; Lundmark, L; Mao, JT; Massie, L; Neis, P; Qualls, C; Xue, B; Zamora, FD, 2019
)
0.51
" Additionally, the thermal dosage in the treatment of cancer cells could also probably harm the healthy cells."( Thermal cycling-hyperthermia in combination with polyphenols, epigallocatechin gallate and chlorogenic acid, exerts synergistic anticancer effect against human pancreatic cancer PANC-1 cells.
Chao, CY; Chen, WT; Hsieh, CH; Kuo, YY; Lu, CH, 2019
)
0.51
" Further study is needed to determine whether higher dosage of EGCG might aggravate cerebral IRI post-CA/CPR."( Cerebral protection of epigallocatechin gallate (EGCG) via preservation of mitochondrial function and ERK inhibition in a rat resuscitation model.
Chen, MH; Fang, W; Li, N; Qin, S; Qin, T; Tan, XF; Xie, L; Yang, YG, 2019
)
0.51
" EGCG mouthwash was administered at the assigned dosage level (starting at 440 μmol/L, three times a day) in a standard 3 + 3 dose escalation design."( Epigallocatechin-3-gallate mouthwash protects mucosa from radiation-induced mucositis in head and neck cancer patients: a prospective, non-randomised, phase 1 trial.
Jia, L; Li, X; Mei, H; Meng, X; Xing, L; Yu, J; Zhao, H; Zhao, X; Zhu, W, 2020
)
0.56
" 90% lethality of IJs at concentrations higher than 1200 ppm and the remaining live IJs did not develop further, and they also totally inhibited strongyle L3 exsheathment in a dose-response fashion."( Can an entomopathogenic nematode serve, as proxy for strongyles, in assessing the anthelmintic effects of phenolic compounds?
Awwad, S; Azaizeh, H; Glazer, I; Haj-Zaroubi, M; Landau, SY; Markovics, A; Muklada, H; Salame, L; Santhi, VS, 2020
)
0.56
" Clinically achievable dosing of EGCG was well-tolerated in diethylnitrosamine-injured rats and was associated with improved serum liver markers including alanine transaminase, aspartate transaminase, and total bilirubin, and reduced HCC tumor formation."( Epigallocatechin Gallate Induces Hepatic Stellate Cell Senescence and Attenuates Development of Hepatocellular Carcinoma.
Erstad, DJ; Fuchs, BC; Fujii, T; Hirschfield, H; Hoshida, Y; Kim, RS; Lanuti, M; Lauwers, GY; Sojoodi, M; Tanabe, KK; Wei, L; Yamada, S, 2020
)
0.56
" Considering dosage is a crucial factor in the prooxidant effects of EGCG; further studies are required to find the appropriate dose at which EGCG could bring more health benefits with lower toxicity."( Prooxidant Effects of Epigallocatechin-3-Gallate in Health Benefits and Potential Adverse Effect.
Huang, J; Liu, Z; Ouyang, J; Zhu, K, 2020
)
0.56
" However, its poor bioavailability and requirement of a high dosage to manifest activity have restricted its clinical application."( Therapeutic potential of a novel prodrug of green tea extract in induction of apoptosis via ERK/JNK and Akt signaling pathway in human endometrial cancer.
Chan, TH; Kwong, J; Lau, TS; Leung, KT; Man, GCW; Ng, TB; Song, Y; Wang, CC; Wang, H; Wang, J; Wong, JH; Zhao, Y, 2020
)
0.56
" Longer term and especially dose-response studies on mildly insulin resistant participants are required to establish the extent to which (poly)phenols and (poly)phenol-rich foods may improve insulin resistance in compromised groups."( Effects of Polyphenols on Insulin Resistance.
Sheedy, K; Williamson, G, 2020
)
0.56
" This may be related to factors such as the population and the dosage and time of taking natural products involved in different studies."( Natural products: The role and mechanism in low-density lipoprotein oxidation and atherosclerosis.
Chen, W; Feng, X; Li, L; Xu, S; Zhang, L; Zhang, S, 2021
)
0.62
" However, higher GTE-EGCG dosing disrupted normal development and increased facial dysmorphology in both trisomic and euploid mice."( Green tea extracts containing epigallocatechin-3-gallate modulate facial development in Down syndrome.
Albaigès, J; De La Torre, R; Dierssen, M; González, A; Gonzàlez, R; Llambrich, S; Martínez-Abadías, N; Sarlé, A; Sevillano, X; Sharpe, J; Starbuck, JM; Vande Velde, G; Wouters, J, 2021
)
0.62
" The treatment was safe at a daily dosage up to 800 mg EGCG."( Epigallocatechin Gallate in Relapsing-Remitting Multiple Sclerosis: A Randomized, Placebo-Controlled Trial.
Aktas, O; Bellmann-Strobl, J; Brandt, A; Dörr, J; Faiss, J; Groppa, S; Heesen, C; Heidrich, E; Hoffmann, F; Infante-Duarte, C; Körtgen, B; Lorenz, M; Paul, F; Pfüller, C; Radbruch, H; Rust, R; Siffrin, V; Wernecke, KD; Wuerfel, J; Zimmermann, B; Zipp, F, 2021
)
0.62
" actinomycetemcomitans-mediated cytotoxicity, but a multiple dosing strategy had improved effects."( Epigallocatechin gallate alters leukotoxin secretion and Aggregatibacter actinomycetemcomitans virulence.
Brown, AC; Chang, EH, 2021
)
0.62
"Together, these results demonstrate that EGCg has important, but complicated, effects on toxin secretion and activity; new dosing strategies and comprehensive model systems may be required to properly develop these anti-virulence activities."( Epigallocatechin gallate alters leukotoxin secretion and Aggregatibacter actinomycetemcomitans virulence.
Brown, AC; Chang, EH, 2021
)
0.62
" Once-weekly MN dosing regimen may provide patients with a more convenient, therapeutically equivalent option to daily topical dosing, and may increase compliance and long-term persistence with AD therapy."( Epigallocatechin gallate/L-ascorbic acid-loaded poly-γ-glutamate microneedles with antioxidant, anti-inflammatory, and immunomodulatory effects for the treatment of atopic dermatitis.
Chen, MC; Chiu, YH; Hung, JI; Wu, YW, 2021
)
0.62
" Because EGCG treatment improved mostly trabecular skeletal deficits, we hypothesized that increasing EGCG treatment dosage and length of administration would positively affect both trabecular and cortical bone in Ts65Dn mice."( Increased dosage and treatment time of Epigallocatechin-3-gallate (EGCG) negatively affects skeletal parameters in normal mice and Down syndrome mouse models.
Blackwell, M; Jamal, R; LaCombe, J; Patel, R; Roper, RJ; Sloan, K; Thomas, JR; Wallace, JM, 2022
)
0.72
" HFD-associated increase in anxiety-related behavior was mitigated by EC in a dose-response manner and was accompanied by increased hippocampal brain-derived neurotrophic factor (BDNF), as well as partial or full restoration of glucocorticoid receptor, mineralocorticoid receptor and 11β-hydroxysteroid dehydrogenase type 1 (11β-HSD1) expression."( (-)-Epicatechin mitigates anxiety-related behavior in a mouse model of high fat diet-induced obesity.
Cremonini, E; Kang, J; Le Gall, G; Muller, M; Oteiza, PI; Pontifex, MG; Vauzour, D; Wang, Z, 2022
)
0.72
" Here, we show nanostructured EGCG/ascorbic acid nanoparticles (EGCG/AA NPs) dose-dependently reduced METH self-administration (SA) under fixed-ratio 1 (FR1) and progressive ratio (PR) reinforcement schedules in mice and shifted METH dose-response curves downward."( EGCG attenuates METH self-administration and reinstatement of METH seeking in mice.
Gong, X; Huang, J; Li, L; Lin, S; Liu, Y; Qian, L; Ruan, Y; Si, Z; Wang, X; Yu, Z, 2023
)
0.91
" Conduction of clinical and pre-clinical trials, also drug dosage optimization may provide with insights on the use of epicatechin in SO."( Insight on sarcopenic obesity and epicatechin as a promising treatment option.
Dhanasekaran, D; Ganamurali, N; Sabarathinam, S, 2023
)
0.91
[information is derived through text-mining from research data collected from National Library of Medicine (NLM), extracted Dec-2023]

Occurs in Manufacturing (7 Product(s))

Product Categories

Product CategoryProducts
Beauty & Personal Care7

Products

ProductBrandCategoryCompounds Matched from IngredientsDate Retrieved
Auromere Ayurvedic Herbal Toothpaste Cinnamon -- 3.57 ozAuromereBeauty & Personal Careanethol, catechu, glycerin, menthol, p thymol2024-11-29 10:47:42
Auromere Ayurvedic Herbal Toothpaste Classic -- 4.16 ozAuromereBeauty & Personal Careanethol, catechu, glycerin, menthol, pthymol, thymol2024-11-29 10:47:42
Auromere Ayurvedic Herbal Toothpaste Fresh Mint -- 4 ozAuromereBeauty & Personal Careanethol, catechu, glycerine, menthol, p Thymol, thymol2024-11-29 10:47:42
Auromere Ayurvedic Herbal Toothpaste in a Jar Fresh Mint -- 4.16 ozAuromereBeauty & Personal Careanethol, catechu, cellulose, glycerine, menthol, p thymol, thymol2024-11-29 10:47:42
Auromere Ayurvedic Herbal Toothpaste Mint Free Unflavored -- 4 ozAuromereBeauty & Personal Careanethol, catechu, cellulose, glycerine, p thymol, sodium lauryl sulfate2024-11-29 10:47:42
Auromere Ayurvedic Herbal Toothpaste Non Foaming Cardamom-Fennel -- 4.16 ozAuromereBeauty & Personal Carecatechu, glycerin, p thymol2024-11-29 10:47:42
Auromere Ayurvedic Mouthwash with Neem & Peelu -- 16 fl ozAuromereBeauty & Personal Caregeranium, catechu, glycerine, menthol, xylitol2024-11-29 10:47:42

Roles (3)

RoleDescription
geroprotectorAny compound that supports healthy aging, slows the biological aging process, or extends lifespan.
antioxidantA substance that opposes oxidation or inhibits reactions brought about by dioxygen or peroxides.
plant metaboliteAny eukaryotic metabolite produced during a metabolic reaction in plants, the kingdom that include flowering plants, conifers and other gymnosperms.
[role information is derived from Chemical Entities of Biological Interest (ChEBI), Hastings J, Owen G, Dekker A, Ennis M, Kale N, Muthukrishnan V, Turner S, Swainston N, Mendes P, Steinbeck C. (2016). ChEBI in 2016: Improved services and an expanding collection of metabolites. Nucleic Acids Res]

Drug Classes (3)

ClassDescription
hydroxyflavanA member of the class of flavans in which one or more ring hydrogens are replaced by hydroxy groups.
hydrateAn addition compound that contains water in weak chemical combination with another compound.
catechinMembers of the class of hydroxyflavan that have a flavan-3-ol skeleton and its substituted derivatives.
[compound class information is derived from Chemical Entities of Biological Interest (ChEBI), Hastings J, Owen G, Dekker A, Ennis M, Kale N, Muthukrishnan V, Turner S, Swainston N, Mendes P, Steinbeck C. (2016). ChEBI in 2016: Improved services and an expanding collection of metabolites. Nucleic Acids Res]

Pathways (3)

PathwayProteinsCompounds
Flavan-3-ol metabolic pathway070
2,3-trans-flavanols biosynthesis010
2,3-trans-flavanols biosynthesis110
Proanthocyanidin biosynthesis from flavanols07

Protein Targets (89)

Potency Measurements

ProteinTaxonomyMeasurementAverage (µ)Min (ref.)Avg (ref.)Max (ref.)Bioassay(s)
Chain A, MAJOR APURINIC/APYRIMIDINIC ENDONUCLEASEHomo sapiens (human)Potency2.83710.003245.467312,589.2998AID2517; AID2572
Chain A, TYROSYL-DNA PHOSPHODIESTERASEHomo sapiens (human)Potency3.16230.004023.8416100.0000AID485290
Chain A, Putative fructose-1,6-bisphosphate aldolaseGiardia intestinalisPotency9.97630.140911.194039.8107AID2451
Chain A, 2-oxoglutarate OxygenaseHomo sapiens (human)Potency11.22020.177814.390939.8107AID2147
Chain A, ATP-DEPENDENT DNA HELICASE Q1Homo sapiens (human)Potency77.68970.125919.1169125.8920AID2549; AID2708
endonuclease IVEscherichia coliPotency10.00000.707912.432431.6228AID2565
15-lipoxygenase, partialHomo sapiens (human)Potency12.58930.012610.691788.5700AID887
phosphopantetheinyl transferaseBacillus subtilisPotency44.66840.141337.9142100.0000AID1490
USP1 protein, partialHomo sapiens (human)Potency50.11870.031637.5844354.8130AID504865
Microtubule-associated protein tauHomo sapiens (human)Potency14.12540.180013.557439.8107AID1460; AID1468
aldehyde dehydrogenase 1 family, member A1Homo sapiens (human)Potency10.00000.011212.4002100.0000AID1030
15-hydroxyprostaglandin dehydrogenase [NAD(+)] isoform 1Homo sapiens (human)Potency19.95260.001815.663839.8107AID894
vitamin D3 receptor isoform VDRAHomo sapiens (human)Potency35.48130.354828.065989.1251AID504847
potassium voltage-gated channel subfamily H member 2 isoform dHomo sapiens (human)Potency35.48130.01789.637444.6684AID588834
mitogen-activated protein kinase 1Homo sapiens (human)Potency15.84890.039816.784239.8107AID1454
DNA polymerase kappa isoform 1Homo sapiens (human)Potency3.16230.031622.3146100.0000AID588579
Glutamate receptor 1Rattus norvegicus (Norway rat)Potency2.51190.01418.602439.8107AID2572
Glutamate receptor 2Rattus norvegicus (Norway rat)Potency2.51190.001551.739315,848.9004AID2572
Glutamate receptor 3Rattus norvegicus (Norway rat)Potency2.51190.01418.602439.8107AID2572
Glutamate receptor 4Rattus norvegicus (Norway rat)Potency2.51190.01418.602439.8107AID2572
Chain A, MAJOR APURINIC/APYRIMIDINIC ENDONUCLEASEHomo sapiens (human)Potency22.38720.003245.467312,589.2998AID2517
Chain A, 2-oxoglutarate OxygenaseHomo sapiens (human)Potency19.95260.177814.390939.8107AID2147
GLS proteinHomo sapiens (human)Potency10.00000.35487.935539.8107AID624170
lysosomal alpha-glucosidase preproproteinHomo sapiens (human)Potency22.38720.036619.637650.1187AID2100
importin subunit beta-1 isoform 1Homo sapiens (human)Potency23.10935.804836.130665.1308AID540253
DNA polymerase betaHomo sapiens (human)Potency28.18380.022421.010289.1251AID485314
snurportin-1Homo sapiens (human)Potency23.10935.804836.130665.1308AID540253
GTP-binding nuclear protein Ran isoform 1Homo sapiens (human)Potency23.10935.804816.996225.9290AID540253
DNA polymerase iota isoform a (long)Homo sapiens (human)Potency56.23410.050127.073689.1251AID588590
DNA polymerase kappa isoform 1Homo sapiens (human)Potency89.12510.031622.3146100.0000AID588579
ATAD5 protein, partialHomo sapiens (human)Potency2.90810.004110.890331.5287AID504466
GLS proteinHomo sapiens (human)Potency2.81840.35487.935539.8107AID624170
euchromatic histone-lysine N-methyltransferase 2Homo sapiens (human)Potency2.51190.035520.977089.1251AID504332
importin subunit beta-1 isoform 1Homo sapiens (human)Potency39.72795.804836.130665.1308AID540253; AID540263
snurportin-1Homo sapiens (human)Potency39.72795.804836.130665.1308AID540253; AID540263
GTP-binding nuclear protein Ran isoform 1Homo sapiens (human)Potency16.36015.804816.996225.9290AID540253
DNA polymerase iota isoform a (long)Homo sapiens (human)Potency79.43280.050127.073689.1251AID588590
DNA polymerase kappa isoform 1Homo sapiens (human)Potency50.11870.031622.3146100.0000AID588579
ATP-dependent phosphofructokinaseTrypanosoma brucei brucei TREU927Potency21.33130.060110.745337.9330AID485367
Chain A, MAJOR APURINIC/APYRIMIDINIC ENDONUCLEASEHomo sapiens (human)Potency22.29330.003245.467312,589.2998AID1705; AID2517
Chain A, HADH2 proteinHomo sapiens (human)Potency39.81070.025120.237639.8107AID886
Chain B, HADH2 proteinHomo sapiens (human)Potency39.81070.025120.237639.8107AID886
Chain A, 2-oxoglutarate OxygenaseHomo sapiens (human)Potency19.62210.177814.390939.8107AID2147
Chain A, ATP-DEPENDENT DNA HELICASE Q1Homo sapiens (human)Potency28.18380.125919.1169125.8920AID2549
thioredoxin reductaseRattus norvegicus (Norway rat)Potency40.07040.100020.879379.4328AID588453
GLS proteinHomo sapiens (human)Potency1.58490.35487.935539.8107AID624146
Microtubule-associated protein tauHomo sapiens (human)Potency17.90080.180013.557439.8107AID1460; AID1468
aldehyde dehydrogenase 1 family, member A1Homo sapiens (human)Potency28.18380.011212.4002100.0000AID1030
arylsulfatase AHomo sapiens (human)Potency23.93411.069113.955137.9330AID720538
euchromatic histone-lysine N-methyltransferase 2Homo sapiens (human)Potency32.93480.035520.977089.1251AID504332
Bloom syndrome protein isoform 1Homo sapiens (human)Potency28.18380.540617.639296.1227AID2364; AID2528
peripheral myelin protein 22 isoform 1Homo sapiens (human)Potency84.921423.934123.934123.9341AID1967
DNA polymerase betaHomo sapiens (human)Potency12.58930.022421.010289.1251AID485314
flap endonuclease 1Homo sapiens (human)Potency4.74440.133725.412989.1251AID488816; AID588795
DNA polymerase eta isoform 1Homo sapiens (human)Potency28.18380.100028.9256213.3130AID588591
DNA polymerase iota isoform a (long)Homo sapiens (human)Potency14.12540.050127.073689.1251AID588590
DNA polymerase kappa isoform 1Homo sapiens (human)Potency37.68580.031622.3146100.0000AID588579
survival motor neuron protein isoform dHomo sapiens (human)Potency35.48130.125912.234435.4813AID1458
neuropeptide S receptor isoform AHomo sapiens (human)Potency31.62280.015812.3113615.5000AID1461
ATP-dependent phosphofructokinaseTrypanosoma brucei brucei TREU927Potency7.56860.060110.745337.9330AID485368
[prepared from compound, protein, and bioassay information from National Library of Medicine (NLM), extracted Dec-2023]

Inhibition Measurements

ProteinTaxonomyMeasurementAverageMin (ref.)Avg (ref.)Max (ref.)Bioassay(s)
Neuraminidase Influenza A virus (A/Wilson-Smith/1933(H1N1))IC50 (µMol)100.00000.00000.503510.0000AID366284; AID366285; AID366286
Carbonic anhydrase 12Homo sapiens (human)Ki4.72000.00021.10439.9000AID501912
Carbonic anhydrase 1Homo sapiens (human)Ki2.42000.00001.372610.0000AID501903
Carbonic anhydrase 2Homo sapiens (human)Ki1.84000.00000.72369.9200AID501904
Carbonic anhydrase 3Homo sapiens (human)Ki3.58000.00022.010210.0000AID501905
Replicase polyprotein 1abSevere acute respiratory syndrome-related coronavirusIC50 (µMol)100.00000.00402.92669.9600AID1805801
Replicase polyprotein 1abSevere acute respiratory syndrome coronavirus 2IC50 (µMol)100.00000.00022.45859.9600AID1805801
Apoptosis regulator Bcl-2Homo sapiens (human)Ki100.00000.00000.19012.9000AID330776
Carbonic anhydrase 4Homo sapiens (human)Ki4.90000.00021.97209.9200AID501906
Carbonic anhydrase 6Homo sapiens (human)Ki4.91000.00011.47109.9200AID501909
ADP-ribosyl cyclase/cyclic ADP-ribose hydrolase 1Homo sapiens (human)IC50 (µMol)100.00006.00006.83338.2000AID603318
Substance-P receptorCavia porcellus (domestic guinea pig)IC50 (µMol)100.00000.00002.751810.0000AID366285
Carbonic anhydrase 5A, mitochondrialHomo sapiens (human)Ki4.21000.00001.27259.9000AID501907
Carbonic anhydrase 7Homo sapiens (human)Ki0.45000.00021.37379.9000AID501910
Carbonic anhydrase 9Homo sapiens (human)Ki5.03000.00010.78749.9000AID502077
Substance-K receptorCavia porcellus (domestic guinea pig)IC50 (µMol)100.00000.01500.01500.0150AID366285
Carbonic anhydrase 13Homo sapiens (human)Ki10.51000.00031.23099.8000AID501913
Carbonic anhydrase 15Mus musculus (house mouse)Ki7.68000.00091.884610.0000AID501915
Carbonic anhydrase 14Homo sapiens (human)Ki11.55000.00021.50999.9000AID501914
Carbonic anhydrase 5B, mitochondrialHomo sapiens (human)Ki4.02000.00001.34129.9700AID501908
alkaline phosphatase, intestinalHomo sapiens (human)IC50 (µMol)100.00000.565012.905066.3000AID488876
alkaline phosphatase, tissue-nonspecific isozyme isoform 1 preproproteinHomo sapiens (human)IC50 (µMol)37.10000.125016.260374.8000AID488906
intestinal alkaline phosphatase precursorMus musculus (house mouse)IC50 (µMol)15.50000.259011.870860.3000AID488785
alkaline phosphatase, germ cell type preproproteinHomo sapiens (human)IC50 (µMol)100.00000.110011.386267.2000AID488879
large T antigenBetapolyomavirus macacaeIC50 (µMol)11.41000.160024.9724100.0000AID1903
alkaline phosphatase, intestinalHomo sapiens (human)IC50 (µMol)100.00000.565012.905066.3000AID488876
alkaline phosphatase, tissue-nonspecific isozyme isoform 1 preproproteinHomo sapiens (human)IC50 (µMol)100.00000.125016.260374.8000AID488906
intestinal alkaline phosphatase precursorMus musculus (house mouse)IC50 (µMol)24.10000.259011.870860.3000AID488785
alkaline phosphatase, germ cell type preproproteinHomo sapiens (human)IC50 (µMol)100.00000.110011.386267.2000AID488879
large T antigenBetapolyomavirus macacaeIC50 (µMol)8.64000.160024.9724100.0000AID1903
Prostaglandin G/H synthase 1 Bos taurus (cattle)IC50 (µMol)2,124.00000.00051.41288.2000AID399401; AID399404; AID399405
Arginase Leishmania amazonensisIC50 (µMol)1.70001.60002.28004.0000AID1066694
Arginase Leishmania amazonensisKi0.60000.20002.12007.9000AID1066693
Pancreatic triacylglycerol lipaseSus scrofa (pig)IC50 (µMol)500.00000.00401.10246.5000AID1591901
ProthrombinHomo sapiens (human)IC50 (µMol)125.00000.00000.710710.0000AID768929
Carbonic anhydrase 1Homo sapiens (human)Ki6.07750.00001.372610.0000AID1803140; AID1803217
Carbonic anhydrase 2Homo sapiens (human)Ki6.07750.00000.72369.9200AID1803140; AID1803217
Aldo-keto reductase family 1 member B1Rattus norvegicus (Norway rat)IC50 (µMol)30.00000.00041.877310.0000AID356411
Carbonic anhydrase 4Homo sapiens (human)Ki6.07750.00021.97209.9200AID1803140; AID1803217
Prostaglandin G/H synthase 1Homo sapiens (human)IC50 (µMol)58.35000.00021.557410.0000AID332217; AID403341
Carbonic anhydrase 6Homo sapiens (human)Ki9.71000.00011.47109.9200AID1803217
Sucrase-isomaltase, intestinalRattus norvegicus (Norway rat)IC50 (µMol)310.00000.04001.848310.0000AID1070016
Adenosine receptor A1Rattus norvegicus (Norway rat)IC50 (µMol)5,910.00000.00020.552110.0000AID399405
Adenosine receptor A2aRattus norvegicus (Norway rat)IC50 (µMol)5,910.00000.00120.48289.0000AID399405
Prostaglandin G/H synthase 2Homo sapiens (human)IC50 (µMol)111.65000.00010.995010.0000AID332218; AID403340
Xanthine dehydrogenase/oxidaseHomo sapiens (human)IC50 (µMol)100.00000.00132.81389.8200AID399340
Death-associated protein kinase 1Homo sapiens (human)IC50 (µMol)300.00000.00052.284510.0000AID1247840
Beta-secretase 1Homo sapiens (human)IC50 (µMol)35.00000.00061.619410.0000AID44249
Prostaglandin G/H synthase 2Ovis aries (sheep)IC50 (µMol)3,228.00000.00101.453910.0000AID399402; AID399405
Carbonic anhydrase 3Bos taurus (cattle)Ki6.07750.11303.88159.7100AID1803140; AID1803217
[prepared from compound, protein, and bioassay information from National Library of Medicine (NLM), extracted Dec-2023]

Activation Measurements

ProteinTaxonomyMeasurementAverageMin (ref.)Avg (ref.)Max (ref.)Bioassay(s)
recombinase AMycobacterium tuberculosis H37RvEC50 (µMol)124.05500.018023.2882287.6000AID434968; AID435010
ProthrombinHomo sapiens (human)Kd49.20000.00000.01010.0387AID768894
Melatonin receptor type 1AHomo sapiens (human)EC50 (µMol)25.80000.00000.01530.2570AID1915607
Melatonin receptor type 1BHomo sapiens (human)EC50 (µMol)47.30000.00010.34027.0000AID1915608
[prepared from compound, protein, and bioassay information from National Library of Medicine (NLM), extracted Dec-2023]

Other Measurements

ProteinTaxonomyMeasurementAverageMin (ref.)Avg (ref.)Max (ref.)Bioassay(s)
replicative DNA helicaseMycobacterium tuberculosis H37RvAC50260.72000.057030.7482325.3000AID449749; AID449750
Mu-type opioid receptorHomo sapiens (human)Ke10.00000.00000.24883.0700AID311281
Delta-type opioid receptorHomo sapiens (human)Ke1.18000.00010.69799.0700AID311282
Kappa-type opioid receptorHomo sapiens (human)Ke0.32000.00000.35405.8100AID311280
[prepared from compound, protein, and bioassay information from National Library of Medicine (NLM), extracted Dec-2023]

Biological Processes (355)

Processvia Protein(s)Taxonomy
estrous cycleCarbonic anhydrase 12Homo sapiens (human)
chloride ion homeostasisCarbonic anhydrase 12Homo sapiens (human)
one-carbon metabolic processCarbonic anhydrase 12Homo sapiens (human)
one-carbon metabolic processCarbonic anhydrase 1Homo sapiens (human)
morphogenesis of an epitheliumCarbonic anhydrase 2Homo sapiens (human)
positive regulation of synaptic transmission, GABAergicCarbonic anhydrase 2Homo sapiens (human)
positive regulation of cellular pH reductionCarbonic anhydrase 2Homo sapiens (human)
angiotensin-activated signaling pathwayCarbonic anhydrase 2Homo sapiens (human)
regulation of monoatomic anion transportCarbonic anhydrase 2Homo sapiens (human)
secretionCarbonic anhydrase 2Homo sapiens (human)
regulation of intracellular pHCarbonic anhydrase 2Homo sapiens (human)
neuron cellular homeostasisCarbonic anhydrase 2Homo sapiens (human)
positive regulation of dipeptide transmembrane transportCarbonic anhydrase 2Homo sapiens (human)
regulation of chloride transportCarbonic anhydrase 2Homo sapiens (human)
carbon dioxide transportCarbonic anhydrase 2Homo sapiens (human)
one-carbon metabolic processCarbonic anhydrase 2Homo sapiens (human)
response to bacteriumCarbonic anhydrase 3Homo sapiens (human)
one-carbon metabolic processCarbonic anhydrase 3Homo sapiens (human)
symbiont-mediated perturbation of host ubiquitin-like protein modificationReplicase polyprotein 1abSevere acute respiratory syndrome-related coronavirus
protein polyubiquitinationApoptosis regulator Bcl-2Homo sapiens (human)
apoptotic processApoptosis regulator Bcl-2Homo sapiens (human)
extrinsic apoptotic signaling pathway via death domain receptorsApoptosis regulator Bcl-2Homo sapiens (human)
response to xenobiotic stimulusApoptosis regulator Bcl-2Homo sapiens (human)
response to toxic substanceApoptosis regulator Bcl-2Homo sapiens (human)
positive regulation of cell growthApoptosis regulator Bcl-2Homo sapiens (human)
response to cytokineApoptosis regulator Bcl-2Homo sapiens (human)
B cell proliferationApoptosis regulator Bcl-2Homo sapiens (human)
negative regulation of apoptotic processApoptosis regulator Bcl-2Homo sapiens (human)
negative regulation of neuron apoptotic processApoptosis regulator Bcl-2Homo sapiens (human)
regulation of calcium ion transportApoptosis regulator Bcl-2Homo sapiens (human)
intrinsic apoptotic signaling pathway in response to endoplasmic reticulum stressApoptosis regulator Bcl-2Homo sapiens (human)
negative regulation of extrinsic apoptotic signaling pathway in absence of ligandApoptosis regulator Bcl-2Homo sapiens (human)
G1/S transition of mitotic cell cycleApoptosis regulator Bcl-2Homo sapiens (human)
ossificationApoptosis regulator Bcl-2Homo sapiens (human)
ovarian follicle developmentApoptosis regulator Bcl-2Homo sapiens (human)
metanephros developmentApoptosis regulator Bcl-2Homo sapiens (human)
branching involved in ureteric bud morphogenesisApoptosis regulator Bcl-2Homo sapiens (human)
behavioral fear responseApoptosis regulator Bcl-2Homo sapiens (human)
B cell homeostasisApoptosis regulator Bcl-2Homo sapiens (human)
B cell apoptotic processApoptosis regulator Bcl-2Homo sapiens (human)
release of cytochrome c from mitochondriaApoptosis regulator Bcl-2Homo sapiens (human)
regulation of cell-matrix adhesionApoptosis regulator Bcl-2Homo sapiens (human)
lymphoid progenitor cell differentiationApoptosis regulator Bcl-2Homo sapiens (human)
B cell lineage commitmentApoptosis regulator Bcl-2Homo sapiens (human)
negative regulation of B cell apoptotic processApoptosis regulator Bcl-2Homo sapiens (human)
response to ischemiaApoptosis regulator Bcl-2Homo sapiens (human)
renal system processApoptosis regulator Bcl-2Homo sapiens (human)
melanin metabolic processApoptosis regulator Bcl-2Homo sapiens (human)
regulation of nitrogen utilizationApoptosis regulator Bcl-2Homo sapiens (human)
autophagyApoptosis regulator Bcl-2Homo sapiens (human)
humoral immune responseApoptosis regulator Bcl-2Homo sapiens (human)
DNA damage responseApoptosis regulator Bcl-2Homo sapiens (human)
actin filament organizationApoptosis regulator Bcl-2Homo sapiens (human)
axonogenesisApoptosis regulator Bcl-2Homo sapiens (human)
female pregnancyApoptosis regulator Bcl-2Homo sapiens (human)
positive regulation of cell population proliferationApoptosis regulator Bcl-2Homo sapiens (human)
male gonad developmentApoptosis regulator Bcl-2Homo sapiens (human)
intrinsic apoptotic signaling pathway in response to oxidative stressApoptosis regulator Bcl-2Homo sapiens (human)
response to radiationApoptosis regulator Bcl-2Homo sapiens (human)
response to xenobiotic stimulusApoptosis regulator Bcl-2Homo sapiens (human)
response to toxic substanceApoptosis regulator Bcl-2Homo sapiens (human)
post-embryonic developmentApoptosis regulator Bcl-2Homo sapiens (human)
response to iron ionApoptosis regulator Bcl-2Homo sapiens (human)
response to UV-BApoptosis regulator Bcl-2Homo sapiens (human)
response to gamma radiationApoptosis regulator Bcl-2Homo sapiens (human)
regulation of gene expressionApoptosis regulator Bcl-2Homo sapiens (human)
negative regulation of autophagyApoptosis regulator Bcl-2Homo sapiens (human)
negative regulation of calcium ion transport into cytosolApoptosis regulator Bcl-2Homo sapiens (human)
regulation of glycoprotein biosynthetic processApoptosis regulator Bcl-2Homo sapiens (human)
mesenchymal cell developmentApoptosis regulator Bcl-2Homo sapiens (human)
positive regulation of neuron maturationApoptosis regulator Bcl-2Homo sapiens (human)
smooth muscle cell migrationApoptosis regulator Bcl-2Homo sapiens (human)
positive regulation of smooth muscle cell migrationApoptosis regulator Bcl-2Homo sapiens (human)
cochlear nucleus developmentApoptosis regulator Bcl-2Homo sapiens (human)
gland morphogenesisApoptosis regulator Bcl-2Homo sapiens (human)
regulation of transmembrane transporter activityApoptosis regulator Bcl-2Homo sapiens (human)
negative regulation of ossificationApoptosis regulator Bcl-2Homo sapiens (human)
negative regulation of cell growthApoptosis regulator Bcl-2Homo sapiens (human)
melanocyte differentiationApoptosis regulator Bcl-2Homo sapiens (human)
negative regulation of cell migrationApoptosis regulator Bcl-2Homo sapiens (human)
positive regulation of B cell proliferationApoptosis regulator Bcl-2Homo sapiens (human)
hair follicle morphogenesisApoptosis regulator Bcl-2Homo sapiens (human)
axon regenerationApoptosis regulator Bcl-2Homo sapiens (human)
regulation of protein stabilityApoptosis regulator Bcl-2Homo sapiens (human)
endoplasmic reticulum calcium ion homeostasisApoptosis regulator Bcl-2Homo sapiens (human)
glomerulus developmentApoptosis regulator Bcl-2Homo sapiens (human)
negative regulation of cellular pH reductionApoptosis regulator Bcl-2Homo sapiens (human)
regulation of protein localizationApoptosis regulator Bcl-2Homo sapiens (human)
myeloid cell apoptotic processApoptosis regulator Bcl-2Homo sapiens (human)
negative regulation of myeloid cell apoptotic processApoptosis regulator Bcl-2Homo sapiens (human)
T cell differentiation in thymusApoptosis regulator Bcl-2Homo sapiens (human)
positive regulation of peptidyl-serine phosphorylationApoptosis regulator Bcl-2Homo sapiens (human)
osteoblast proliferationApoptosis regulator Bcl-2Homo sapiens (human)
negative regulation of osteoblast proliferationApoptosis regulator Bcl-2Homo sapiens (human)
response to nicotineApoptosis regulator Bcl-2Homo sapiens (human)
organ growthApoptosis regulator Bcl-2Homo sapiens (human)
positive regulation of multicellular organism growthApoptosis regulator Bcl-2Homo sapiens (human)
cellular response to glucose starvationApoptosis regulator Bcl-2Homo sapiens (human)
response to hydrogen peroxideApoptosis regulator Bcl-2Homo sapiens (human)
neuron maturationApoptosis regulator Bcl-2Homo sapiens (human)
T cell homeostasisApoptosis regulator Bcl-2Homo sapiens (human)
positive regulation of apoptotic processApoptosis regulator Bcl-2Homo sapiens (human)
negative regulation of apoptotic processApoptosis regulator Bcl-2Homo sapiens (human)
CD8-positive, alpha-beta T cell lineage commitmentApoptosis regulator Bcl-2Homo sapiens (human)
ear developmentApoptosis regulator Bcl-2Homo sapiens (human)
regulation of viral genome replicationApoptosis regulator Bcl-2Homo sapiens (human)
positive regulation of melanocyte differentiationApoptosis regulator Bcl-2Homo sapiens (human)
retinal cell programmed cell deathApoptosis regulator Bcl-2Homo sapiens (human)
negative regulation of retinal cell programmed cell deathApoptosis regulator Bcl-2Homo sapiens (human)
regulation of mitochondrial membrane permeabilityApoptosis regulator Bcl-2Homo sapiens (human)
focal adhesion assemblyApoptosis regulator Bcl-2Homo sapiens (human)
spleen developmentApoptosis regulator Bcl-2Homo sapiens (human)
thymus developmentApoptosis regulator Bcl-2Homo sapiens (human)
digestive tract morphogenesisApoptosis regulator Bcl-2Homo sapiens (human)
oocyte developmentApoptosis regulator Bcl-2Homo sapiens (human)
skeletal muscle fiber developmentApoptosis regulator Bcl-2Homo sapiens (human)
positive regulation of skeletal muscle fiber developmentApoptosis regulator Bcl-2Homo sapiens (human)
pigment granule organizationApoptosis regulator Bcl-2Homo sapiens (human)
stem cell developmentApoptosis regulator Bcl-2Homo sapiens (human)
homeostasis of number of cells within a tissueApoptosis regulator Bcl-2Homo sapiens (human)
B cell receptor signaling pathwayApoptosis regulator Bcl-2Homo sapiens (human)
response to glucocorticoidApoptosis regulator Bcl-2Homo sapiens (human)
neuron apoptotic processApoptosis regulator Bcl-2Homo sapiens (human)
defense response to virusApoptosis regulator Bcl-2Homo sapiens (human)
establishment of localization in cellApoptosis regulator Bcl-2Homo sapiens (human)
regulation of mitochondrial membrane potentialApoptosis regulator Bcl-2Homo sapiens (human)
negative regulation of mitochondrial depolarizationApoptosis regulator Bcl-2Homo sapiens (human)
hematopoietic stem cell differentiationApoptosis regulator Bcl-2Homo sapiens (human)
calcium ion transport into cytosolApoptosis regulator Bcl-2Homo sapiens (human)
T cell apoptotic processApoptosis regulator Bcl-2Homo sapiens (human)
negative regulation of T cell apoptotic processApoptosis regulator Bcl-2Homo sapiens (human)
cellular response to organic substanceApoptosis regulator Bcl-2Homo sapiens (human)
cellular response to hypoxiaApoptosis regulator Bcl-2Homo sapiens (human)
reactive oxygen species metabolic processApoptosis regulator Bcl-2Homo sapiens (human)
dendritic cell apoptotic processApoptosis regulator Bcl-2Homo sapiens (human)
motor neuron apoptotic processApoptosis regulator Bcl-2Homo sapiens (human)
cell-cell adhesionApoptosis regulator Bcl-2Homo sapiens (human)
negative regulation of intrinsic apoptotic signaling pathway in response to DNA damage by p53 class mediatorApoptosis regulator Bcl-2Homo sapiens (human)
epithelial cell apoptotic processApoptosis regulator Bcl-2Homo sapiens (human)
negative regulation of epithelial cell apoptotic processApoptosis regulator Bcl-2Homo sapiens (human)
negative regulation of G1/S transition of mitotic cell cycleApoptosis regulator Bcl-2Homo sapiens (human)
negative regulation of reactive oxygen species metabolic processApoptosis regulator Bcl-2Homo sapiens (human)
negative regulation of dendritic cell apoptotic processApoptosis regulator Bcl-2Homo sapiens (human)
negative regulation of motor neuron apoptotic processApoptosis regulator Bcl-2Homo sapiens (human)
negative regulation of anoikisApoptosis regulator Bcl-2Homo sapiens (human)
negative regulation of apoptotic signaling pathwayApoptosis regulator Bcl-2Homo sapiens (human)
negative regulation of intrinsic apoptotic signaling pathwayApoptosis regulator Bcl-2Homo sapiens (human)
intrinsic apoptotic signaling pathway in response to DNA damageApoptosis regulator Bcl-2Homo sapiens (human)
extrinsic apoptotic signaling pathway in absence of ligandApoptosis regulator Bcl-2Homo sapiens (human)
activation of cysteine-type endopeptidase activity involved in apoptotic processApoptosis regulator Bcl-2Homo sapiens (human)
bicarbonate transportCarbonic anhydrase 4Homo sapiens (human)
one-carbon metabolic processCarbonic anhydrase 4Homo sapiens (human)
detection of chemical stimulus involved in sensory perception of bitter tasteCarbonic anhydrase 6Homo sapiens (human)
one-carbon metabolic processCarbonic anhydrase 6Homo sapiens (human)
response to hypoxiaADP-ribosyl cyclase/cyclic ADP-ribose hydrolase 1Homo sapiens (human)
signal transductionADP-ribosyl cyclase/cyclic ADP-ribose hydrolase 1Homo sapiens (human)
positive regulation of cytosolic calcium ion concentrationADP-ribosyl cyclase/cyclic ADP-ribose hydrolase 1Homo sapiens (human)
female pregnancyADP-ribosyl cyclase/cyclic ADP-ribose hydrolase 1Homo sapiens (human)
response to xenobiotic stimulusADP-ribosyl cyclase/cyclic ADP-ribose hydrolase 1Homo sapiens (human)
negative regulation of neuron projection developmentADP-ribosyl cyclase/cyclic ADP-ribose hydrolase 1Homo sapiens (human)
artery smooth muscle contractionADP-ribosyl cyclase/cyclic ADP-ribose hydrolase 1Homo sapiens (human)
NAD metabolic processADP-ribosyl cyclase/cyclic ADP-ribose hydrolase 1Homo sapiens (human)
positive regulation of cell growthADP-ribosyl cyclase/cyclic ADP-ribose hydrolase 1Homo sapiens (human)
positive regulation of B cell proliferationADP-ribosyl cyclase/cyclic ADP-ribose hydrolase 1Homo sapiens (human)
positive regulation of insulin secretionADP-ribosyl cyclase/cyclic ADP-ribose hydrolase 1Homo sapiens (human)
response to estradiolADP-ribosyl cyclase/cyclic ADP-ribose hydrolase 1Homo sapiens (human)
response to retinoic acidADP-ribosyl cyclase/cyclic ADP-ribose hydrolase 1Homo sapiens (human)
response to progesteroneADP-ribosyl cyclase/cyclic ADP-ribose hydrolase 1Homo sapiens (human)
response to hydroperoxideADP-ribosyl cyclase/cyclic ADP-ribose hydrolase 1Homo sapiens (human)
B cell proliferationADP-ribosyl cyclase/cyclic ADP-ribose hydrolase 1Homo sapiens (human)
negative regulation of apoptotic processADP-ribosyl cyclase/cyclic ADP-ribose hydrolase 1Homo sapiens (human)
negative regulation of bone resorptionADP-ribosyl cyclase/cyclic ADP-ribose hydrolase 1Homo sapiens (human)
negative regulation of DNA-templated transcriptionADP-ribosyl cyclase/cyclic ADP-ribose hydrolase 1Homo sapiens (human)
positive regulation of DNA-templated transcriptionADP-ribosyl cyclase/cyclic ADP-ribose hydrolase 1Homo sapiens (human)
positive regulation of vasoconstrictionADP-ribosyl cyclase/cyclic ADP-ribose hydrolase 1Homo sapiens (human)
B cell receptor signaling pathwayADP-ribosyl cyclase/cyclic ADP-ribose hydrolase 1Homo sapiens (human)
long-term synaptic depressionADP-ribosyl cyclase/cyclic ADP-ribose hydrolase 1Homo sapiens (human)
response to interleukin-1ADP-ribosyl cyclase/cyclic ADP-ribose hydrolase 1Homo sapiens (human)
apoptotic signaling pathwayADP-ribosyl cyclase/cyclic ADP-ribose hydrolase 1Homo sapiens (human)
one-carbon metabolic processCarbonic anhydrase 5A, mitochondrialHomo sapiens (human)
positive regulation of synaptic transmission, GABAergicCarbonic anhydrase 7Homo sapiens (human)
positive regulation of cellular pH reductionCarbonic anhydrase 7Homo sapiens (human)
neuron cellular homeostasisCarbonic anhydrase 7Homo sapiens (human)
regulation of chloride transportCarbonic anhydrase 7Homo sapiens (human)
regulation of intracellular pHCarbonic anhydrase 7Homo sapiens (human)
one-carbon metabolic processCarbonic anhydrase 7Homo sapiens (human)
response to hypoxiaCarbonic anhydrase 9Homo sapiens (human)
morphogenesis of an epitheliumCarbonic anhydrase 9Homo sapiens (human)
response to xenobiotic stimulusCarbonic anhydrase 9Homo sapiens (human)
response to testosteroneCarbonic anhydrase 9Homo sapiens (human)
secretionCarbonic anhydrase 9Homo sapiens (human)
one-carbon metabolic processCarbonic anhydrase 9Homo sapiens (human)
one-carbon metabolic processCarbonic anhydrase 13Homo sapiens (human)
one-carbon metabolic processCarbonic anhydrase 14Homo sapiens (human)
response to bacteriumCarbonic anhydrase 5B, mitochondrialHomo sapiens (human)
one-carbon metabolic processCarbonic anhydrase 5B, mitochondrialHomo sapiens (human)
response to oxidative stressProstaglandin G/H synthase 1 Bos taurus (cattle)
cellular oxidant detoxificationProstaglandin G/H synthase 1 Bos taurus (cattle)
positive regulation of protein phosphorylationProthrombinHomo sapiens (human)
proteolysisProthrombinHomo sapiens (human)
acute-phase responseProthrombinHomo sapiens (human)
cell surface receptor signaling pathwayProthrombinHomo sapiens (human)
G protein-coupled receptor signaling pathwayProthrombinHomo sapiens (human)
blood coagulationProthrombinHomo sapiens (human)
positive regulation of cell population proliferationProthrombinHomo sapiens (human)
regulation of cell shapeProthrombinHomo sapiens (human)
response to woundingProthrombinHomo sapiens (human)
negative regulation of platelet activationProthrombinHomo sapiens (human)
platelet activationProthrombinHomo sapiens (human)
regulation of blood coagulationProthrombinHomo sapiens (human)
positive regulation of blood coagulationProthrombinHomo sapiens (human)
positive regulation of cell growthProthrombinHomo sapiens (human)
positive regulation of insulin secretionProthrombinHomo sapiens (human)
positive regulation of collagen biosynthetic processProthrombinHomo sapiens (human)
fibrinolysisProthrombinHomo sapiens (human)
negative regulation of proteolysisProthrombinHomo sapiens (human)
positive regulation of receptor signaling pathway via JAK-STATProthrombinHomo sapiens (human)
negative regulation of astrocyte differentiationProthrombinHomo sapiens (human)
positive regulation of release of sequestered calcium ion into cytosolProthrombinHomo sapiens (human)
regulation of cytosolic calcium ion concentrationProthrombinHomo sapiens (human)
cytolysis by host of symbiont cellsProthrombinHomo sapiens (human)
positive regulation of phosphatidylinositol 3-kinase/protein kinase B signal transductionProthrombinHomo sapiens (human)
negative regulation of fibrinolysisProthrombinHomo sapiens (human)
antimicrobial humoral immune response mediated by antimicrobial peptideProthrombinHomo sapiens (human)
neutrophil-mediated killing of gram-negative bacteriumProthrombinHomo sapiens (human)
positive regulation of lipid kinase activityProthrombinHomo sapiens (human)
negative regulation of cytokine production involved in inflammatory responseProthrombinHomo sapiens (human)
positive regulation of protein localization to nucleusProthrombinHomo sapiens (human)
positive regulation of phospholipase C-activating G protein-coupled receptor signaling pathwayProthrombinHomo sapiens (human)
ligand-gated ion channel signaling pathwayProthrombinHomo sapiens (human)
positive regulation of reactive oxygen species metabolic processProthrombinHomo sapiens (human)
one-carbon metabolic processCarbonic anhydrase 1Homo sapiens (human)
morphogenesis of an epitheliumCarbonic anhydrase 2Homo sapiens (human)
positive regulation of synaptic transmission, GABAergicCarbonic anhydrase 2Homo sapiens (human)
positive regulation of cellular pH reductionCarbonic anhydrase 2Homo sapiens (human)
angiotensin-activated signaling pathwayCarbonic anhydrase 2Homo sapiens (human)
regulation of monoatomic anion transportCarbonic anhydrase 2Homo sapiens (human)
secretionCarbonic anhydrase 2Homo sapiens (human)
regulation of intracellular pHCarbonic anhydrase 2Homo sapiens (human)
neuron cellular homeostasisCarbonic anhydrase 2Homo sapiens (human)
positive regulation of dipeptide transmembrane transportCarbonic anhydrase 2Homo sapiens (human)
regulation of chloride transportCarbonic anhydrase 2Homo sapiens (human)
carbon dioxide transportCarbonic anhydrase 2Homo sapiens (human)
one-carbon metabolic processCarbonic anhydrase 2Homo sapiens (human)
bicarbonate transportCarbonic anhydrase 4Homo sapiens (human)
one-carbon metabolic processCarbonic anhydrase 4Homo sapiens (human)
prostaglandin biosynthetic processProstaglandin G/H synthase 1Homo sapiens (human)
response to oxidative stressProstaglandin G/H synthase 1Homo sapiens (human)
regulation of blood pressureProstaglandin G/H synthase 1Homo sapiens (human)
cyclooxygenase pathwayProstaglandin G/H synthase 1Homo sapiens (human)
regulation of cell population proliferationProstaglandin G/H synthase 1Homo sapiens (human)
cellular oxidant detoxificationProstaglandin G/H synthase 1Homo sapiens (human)
detection of chemical stimulus involved in sensory perception of bitter tasteCarbonic anhydrase 6Homo sapiens (human)
one-carbon metabolic processCarbonic anhydrase 6Homo sapiens (human)
prostaglandin biosynthetic processProstaglandin G/H synthase 2Homo sapiens (human)
angiogenesisProstaglandin G/H synthase 2Homo sapiens (human)
response to oxidative stressProstaglandin G/H synthase 2Homo sapiens (human)
embryo implantationProstaglandin G/H synthase 2Homo sapiens (human)
learningProstaglandin G/H synthase 2Homo sapiens (human)
memoryProstaglandin G/H synthase 2Homo sapiens (human)
regulation of blood pressureProstaglandin G/H synthase 2Homo sapiens (human)
negative regulation of cell population proliferationProstaglandin G/H synthase 2Homo sapiens (human)
response to xenobiotic stimulusProstaglandin G/H synthase 2Homo sapiens (human)
response to nematodeProstaglandin G/H synthase 2Homo sapiens (human)
response to fructoseProstaglandin G/H synthase 2Homo sapiens (human)
response to manganese ionProstaglandin G/H synthase 2Homo sapiens (human)
positive regulation of vascular endothelial growth factor productionProstaglandin G/H synthase 2Homo sapiens (human)
cyclooxygenase pathwayProstaglandin G/H synthase 2Homo sapiens (human)
bone mineralizationProstaglandin G/H synthase 2Homo sapiens (human)
positive regulation of prostaglandin biosynthetic processProstaglandin G/H synthase 2Homo sapiens (human)
positive regulation of fever generationProstaglandin G/H synthase 2Homo sapiens (human)
positive regulation of synaptic plasticityProstaglandin G/H synthase 2Homo sapiens (human)
negative regulation of synaptic transmission, dopaminergicProstaglandin G/H synthase 2Homo sapiens (human)
prostaglandin secretionProstaglandin G/H synthase 2Homo sapiens (human)
response to estradiolProstaglandin G/H synthase 2Homo sapiens (human)
response to lipopolysaccharideProstaglandin G/H synthase 2Homo sapiens (human)
positive regulation of peptidyl-serine phosphorylationProstaglandin G/H synthase 2Homo sapiens (human)
response to vitamin DProstaglandin G/H synthase 2Homo sapiens (human)
cellular response to heatProstaglandin G/H synthase 2Homo sapiens (human)
response to tumor necrosis factorProstaglandin G/H synthase 2Homo sapiens (human)
maintenance of blood-brain barrierProstaglandin G/H synthase 2Homo sapiens (human)
positive regulation of protein import into nucleusProstaglandin G/H synthase 2Homo sapiens (human)
hair cycleProstaglandin G/H synthase 2Homo sapiens (human)
positive regulation of apoptotic processProstaglandin G/H synthase 2Homo sapiens (human)
positive regulation of nitric oxide biosynthetic processProstaglandin G/H synthase 2Homo sapiens (human)
negative regulation of cell cycleProstaglandin G/H synthase 2Homo sapiens (human)
positive regulation of vasoconstrictionProstaglandin G/H synthase 2Homo sapiens (human)
negative regulation of smooth muscle contractionProstaglandin G/H synthase 2Homo sapiens (human)
positive regulation of smooth muscle contractionProstaglandin G/H synthase 2Homo sapiens (human)
decidualizationProstaglandin G/H synthase 2Homo sapiens (human)
positive regulation of smooth muscle cell proliferationProstaglandin G/H synthase 2Homo sapiens (human)
regulation of inflammatory responseProstaglandin G/H synthase 2Homo sapiens (human)
brown fat cell differentiationProstaglandin G/H synthase 2Homo sapiens (human)
response to glucocorticoidProstaglandin G/H synthase 2Homo sapiens (human)
negative regulation of calcium ion transportProstaglandin G/H synthase 2Homo sapiens (human)
positive regulation of synaptic transmission, glutamatergicProstaglandin G/H synthase 2Homo sapiens (human)
response to fatty acidProstaglandin G/H synthase 2Homo sapiens (human)
cellular response to mechanical stimulusProstaglandin G/H synthase 2Homo sapiens (human)
cellular response to lead ionProstaglandin G/H synthase 2Homo sapiens (human)
cellular response to ATPProstaglandin G/H synthase 2Homo sapiens (human)
cellular response to hypoxiaProstaglandin G/H synthase 2Homo sapiens (human)
cellular response to non-ionic osmotic stressProstaglandin G/H synthase 2Homo sapiens (human)
cellular response to fluid shear stressProstaglandin G/H synthase 2Homo sapiens (human)
positive regulation of transforming growth factor beta productionProstaglandin G/H synthase 2Homo sapiens (human)
positive regulation of cell migration involved in sprouting angiogenesisProstaglandin G/H synthase 2Homo sapiens (human)
positive regulation of fibroblast growth factor productionProstaglandin G/H synthase 2Homo sapiens (human)
positive regulation of brown fat cell differentiationProstaglandin G/H synthase 2Homo sapiens (human)
positive regulation of platelet-derived growth factor productionProstaglandin G/H synthase 2Homo sapiens (human)
cellular oxidant detoxificationProstaglandin G/H synthase 2Homo sapiens (human)
regulation of neuroinflammatory responseProstaglandin G/H synthase 2Homo sapiens (human)
negative regulation of intrinsic apoptotic signaling pathway in response to osmotic stressProstaglandin G/H synthase 2Homo sapiens (human)
cellular response to homocysteineProstaglandin G/H synthase 2Homo sapiens (human)
response to angiotensinProstaglandin G/H synthase 2Homo sapiens (human)
G protein-coupled receptor signaling pathway, coupled to cyclic nucleotide second messengerMu-type opioid receptorHomo sapiens (human)
adenylate cyclase-inhibiting G protein-coupled acetylcholine receptor signaling pathwayMu-type opioid receptorHomo sapiens (human)
phospholipase C-activating G protein-coupled receptor signaling pathwayMu-type opioid receptorHomo sapiens (human)
sensory perceptionMu-type opioid receptorHomo sapiens (human)
negative regulation of cell population proliferationMu-type opioid receptorHomo sapiens (human)
sensory perception of painMu-type opioid receptorHomo sapiens (human)
G protein-coupled opioid receptor signaling pathwayMu-type opioid receptorHomo sapiens (human)
behavioral response to ethanolMu-type opioid receptorHomo sapiens (human)
positive regulation of neurogenesisMu-type opioid receptorHomo sapiens (human)
negative regulation of Wnt protein secretionMu-type opioid receptorHomo sapiens (human)
positive regulation of ERK1 and ERK2 cascadeMu-type opioid receptorHomo sapiens (human)
calcium ion transmembrane transportMu-type opioid receptorHomo sapiens (human)
cellular response to morphineMu-type opioid receptorHomo sapiens (human)
regulation of cellular response to stressMu-type opioid receptorHomo sapiens (human)
regulation of NMDA receptor activityMu-type opioid receptorHomo sapiens (human)
neuropeptide signaling pathwayMu-type opioid receptorHomo sapiens (human)
immune responseDelta-type opioid receptorHomo sapiens (human)
G protein-coupled receptor signaling pathwayDelta-type opioid receptorHomo sapiens (human)
G protein-coupled receptor signaling pathway, coupled to cyclic nucleotide second messengerDelta-type opioid receptorHomo sapiens (human)
adenylate cyclase-inhibiting G protein-coupled receptor signaling pathwayDelta-type opioid receptorHomo sapiens (human)
phospholipase C-activating G protein-coupled receptor signaling pathwayDelta-type opioid receptorHomo sapiens (human)
adult locomotory behaviorDelta-type opioid receptorHomo sapiens (human)
negative regulation of gene expressionDelta-type opioid receptorHomo sapiens (human)
negative regulation of protein-containing complex assemblyDelta-type opioid receptorHomo sapiens (human)
positive regulation of CREB transcription factor activityDelta-type opioid receptorHomo sapiens (human)
positive regulation of peptidyl-serine phosphorylationDelta-type opioid receptorHomo sapiens (human)
response to nicotineDelta-type opioid receptorHomo sapiens (human)
G protein-coupled opioid receptor signaling pathwayDelta-type opioid receptorHomo sapiens (human)
eating behaviorDelta-type opioid receptorHomo sapiens (human)
regulation of mitochondrial membrane potentialDelta-type opioid receptorHomo sapiens (human)
regulation of calcium ion transportDelta-type opioid receptorHomo sapiens (human)
cellular response to growth factor stimulusDelta-type opioid receptorHomo sapiens (human)
cellular response to hypoxiaDelta-type opioid receptorHomo sapiens (human)
cellular response to toxic substanceDelta-type opioid receptorHomo sapiens (human)
neuropeptide signaling pathwayDelta-type opioid receptorHomo sapiens (human)
immune responseKappa-type opioid receptorHomo sapiens (human)
adenylate cyclase-inhibiting G protein-coupled receptor signaling pathwayKappa-type opioid receptorHomo sapiens (human)
phospholipase C-activating G protein-coupled receptor signaling pathwayKappa-type opioid receptorHomo sapiens (human)
chemical synaptic transmissionKappa-type opioid receptorHomo sapiens (human)
sensory perceptionKappa-type opioid receptorHomo sapiens (human)
locomotory behaviorKappa-type opioid receptorHomo sapiens (human)
sensory perception of painKappa-type opioid receptorHomo sapiens (human)
adenylate cyclase-inhibiting opioid receptor signaling pathwayKappa-type opioid receptorHomo sapiens (human)
response to insulinKappa-type opioid receptorHomo sapiens (human)
positive regulation of dopamine secretionKappa-type opioid receptorHomo sapiens (human)
negative regulation of luteinizing hormone secretionKappa-type opioid receptorHomo sapiens (human)
response to nicotineKappa-type opioid receptorHomo sapiens (human)
G protein-coupled opioid receptor signaling pathwayKappa-type opioid receptorHomo sapiens (human)
maternal behaviorKappa-type opioid receptorHomo sapiens (human)
eating behaviorKappa-type opioid receptorHomo sapiens (human)
response to estrogenKappa-type opioid receptorHomo sapiens (human)
estrous cycleKappa-type opioid receptorHomo sapiens (human)
response to ethanolKappa-type opioid receptorHomo sapiens (human)
regulation of saliva secretionKappa-type opioid receptorHomo sapiens (human)
behavioral response to cocaineKappa-type opioid receptorHomo sapiens (human)
sensory perception of temperature stimulusKappa-type opioid receptorHomo sapiens (human)
defense response to virusKappa-type opioid receptorHomo sapiens (human)
cellular response to lipopolysaccharideKappa-type opioid receptorHomo sapiens (human)
cellular response to glucose stimulusKappa-type opioid receptorHomo sapiens (human)
positive regulation of p38MAPK cascadeKappa-type opioid receptorHomo sapiens (human)
positive regulation of potassium ion transmembrane transportKappa-type opioid receptorHomo sapiens (human)
response to acrylamideKappa-type opioid receptorHomo sapiens (human)
positive regulation of eating behaviorKappa-type opioid receptorHomo sapiens (human)
conditioned place preferenceKappa-type opioid receptorHomo sapiens (human)
neuropeptide signaling pathwayKappa-type opioid receptorHomo sapiens (human)
allantoin metabolic processXanthine dehydrogenase/oxidaseHomo sapiens (human)
negative regulation of protein phosphorylationXanthine dehydrogenase/oxidaseHomo sapiens (human)
negative regulation of endothelial cell proliferationXanthine dehydrogenase/oxidaseHomo sapiens (human)
guanine catabolic processXanthine dehydrogenase/oxidaseHomo sapiens (human)
inosine catabolic processXanthine dehydrogenase/oxidaseHomo sapiens (human)
deoxyinosine catabolic processXanthine dehydrogenase/oxidaseHomo sapiens (human)
adenosine catabolic processXanthine dehydrogenase/oxidaseHomo sapiens (human)
deoxyadenosine catabolic processXanthine dehydrogenase/oxidaseHomo sapiens (human)
deoxyguanosine catabolic processXanthine dehydrogenase/oxidaseHomo sapiens (human)
AMP catabolic processXanthine dehydrogenase/oxidaseHomo sapiens (human)
IMP catabolic processXanthine dehydrogenase/oxidaseHomo sapiens (human)
activation of cysteine-type endopeptidase activity involved in apoptotic processXanthine dehydrogenase/oxidaseHomo sapiens (human)
lactationXanthine dehydrogenase/oxidaseHomo sapiens (human)
hypoxanthine catabolic processXanthine dehydrogenase/oxidaseHomo sapiens (human)
xanthine catabolic processXanthine dehydrogenase/oxidaseHomo sapiens (human)
negative regulation of gene expressionXanthine dehydrogenase/oxidaseHomo sapiens (human)
iron-sulfur cluster assemblyXanthine dehydrogenase/oxidaseHomo sapiens (human)
amide catabolic processXanthine dehydrogenase/oxidaseHomo sapiens (human)
negative regulation of endothelial cell differentiationXanthine dehydrogenase/oxidaseHomo sapiens (human)
GMP catabolic processXanthine dehydrogenase/oxidaseHomo sapiens (human)
dGMP catabolic processXanthine dehydrogenase/oxidaseHomo sapiens (human)
dAMP catabolic processXanthine dehydrogenase/oxidaseHomo sapiens (human)
negative regulation of phosphatidylinositol 3-kinase/protein kinase B signal transductionXanthine dehydrogenase/oxidaseHomo sapiens (human)
positive regulation of p38MAPK cascadeXanthine dehydrogenase/oxidaseHomo sapiens (human)
negative regulation of vascular endothelial growth factor signaling pathwayXanthine dehydrogenase/oxidaseHomo sapiens (human)
positive regulation of reactive oxygen species metabolic processXanthine dehydrogenase/oxidaseHomo sapiens (human)
negative regulation of vasculogenesisXanthine dehydrogenase/oxidaseHomo sapiens (human)
G protein-coupled receptor signaling pathway, coupled to cyclic nucleotide second messengerMelatonin receptor type 1AHomo sapiens (human)
adenylate cyclase-inhibiting G protein-coupled receptor signaling pathwayMelatonin receptor type 1AHomo sapiens (human)
mating behaviorMelatonin receptor type 1AHomo sapiens (human)
circadian rhythmMelatonin receptor type 1AHomo sapiens (human)
G protein-coupled receptor signaling pathwayMelatonin receptor type 1AHomo sapiens (human)
G protein-coupled receptor signaling pathway, coupled to cyclic nucleotide second messengerMelatonin receptor type 1BHomo sapiens (human)
chemical synaptic transmissionMelatonin receptor type 1BHomo sapiens (human)
negative regulation of cGMP-mediated signalingMelatonin receptor type 1BHomo sapiens (human)
glucose homeostasisMelatonin receptor type 1BHomo sapiens (human)
camera-type eye developmentMelatonin receptor type 1BHomo sapiens (human)
negative regulation of neuron apoptotic processMelatonin receptor type 1BHomo sapiens (human)
negative regulation of vasoconstrictionMelatonin receptor type 1BHomo sapiens (human)
positive regulation of circadian sleep/wake cycle, non-REM sleepMelatonin receptor type 1BHomo sapiens (human)
negative regulation of insulin secretionMelatonin receptor type 1BHomo sapiens (human)
regulation of insulin secretionMelatonin receptor type 1BHomo sapiens (human)
negative regulation of cytosolic calcium ion concentrationMelatonin receptor type 1BHomo sapiens (human)
negative regulation of transmission of nerve impulseMelatonin receptor type 1BHomo sapiens (human)
positive regulation of transmission of nerve impulseMelatonin receptor type 1BHomo sapiens (human)
regulation of neuronal action potentialMelatonin receptor type 1BHomo sapiens (human)
G protein-coupled receptor signaling pathwayMelatonin receptor type 1BHomo sapiens (human)
apoptotic processDeath-associated protein kinase 1Homo sapiens (human)
defense response to tumor cellDeath-associated protein kinase 1Homo sapiens (human)
regulation of response to tumor cellDeath-associated protein kinase 1Homo sapiens (human)
protein phosphorylationDeath-associated protein kinase 1Homo sapiens (human)
apoptotic processDeath-associated protein kinase 1Homo sapiens (human)
extrinsic apoptotic signaling pathway via death domain receptorsDeath-associated protein kinase 1Homo sapiens (human)
regulation of autophagyDeath-associated protein kinase 1Homo sapiens (human)
positive regulation of autophagyDeath-associated protein kinase 1Homo sapiens (human)
negative regulation of translationDeath-associated protein kinase 1Homo sapiens (human)
intracellular signal transductionDeath-associated protein kinase 1Homo sapiens (human)
regulation of apoptotic processDeath-associated protein kinase 1Homo sapiens (human)
positive regulation of apoptotic processDeath-associated protein kinase 1Homo sapiens (human)
negative regulation of apoptotic processDeath-associated protein kinase 1Homo sapiens (human)
positive regulation of cysteine-type endopeptidase activity involved in apoptotic processDeath-associated protein kinase 1Homo sapiens (human)
protein autophosphorylationDeath-associated protein kinase 1Homo sapiens (human)
cellular response to type II interferonDeath-associated protein kinase 1Homo sapiens (human)
cellular response to hydroperoxideDeath-associated protein kinase 1Homo sapiens (human)
apoptotic signaling pathwayDeath-associated protein kinase 1Homo sapiens (human)
positive regulation of autophagic cell deathDeath-associated protein kinase 1Homo sapiens (human)
regulation of NMDA receptor activityDeath-associated protein kinase 1Homo sapiens (human)
proteolysisBeta-secretase 1Homo sapiens (human)
membrane protein ectodomain proteolysisBeta-secretase 1Homo sapiens (human)
response to lead ionBeta-secretase 1Homo sapiens (human)
protein processingBeta-secretase 1Homo sapiens (human)
amyloid-beta formationBeta-secretase 1Homo sapiens (human)
amyloid precursor protein catabolic processBeta-secretase 1Homo sapiens (human)
positive regulation of neuron apoptotic processBeta-secretase 1Homo sapiens (human)
amyloid-beta metabolic processBeta-secretase 1Homo sapiens (human)
detection of mechanical stimulus involved in sensory perception of painBeta-secretase 1Homo sapiens (human)
prepulse inhibitionBeta-secretase 1Homo sapiens (human)
cellular response to copper ionBeta-secretase 1Homo sapiens (human)
cellular response to manganese ionBeta-secretase 1Homo sapiens (human)
presynaptic modulation of chemical synaptic transmissionBeta-secretase 1Homo sapiens (human)
signaling receptor ligand precursor processingBeta-secretase 1Homo sapiens (human)
cellular response to amyloid-betaBeta-secretase 1Homo sapiens (human)
amyloid fibril formationBeta-secretase 1Homo sapiens (human)
[Information is prepared from geneontology information from the June-17-2024 release]

Molecular Functions (88)

Processvia Protein(s)Taxonomy
zinc ion bindingCarbonic anhydrase 12Homo sapiens (human)
carbonate dehydratase activityCarbonic anhydrase 12Homo sapiens (human)
arylesterase activityCarbonic anhydrase 1Homo sapiens (human)
carbonate dehydratase activityCarbonic anhydrase 1Homo sapiens (human)
protein bindingCarbonic anhydrase 1Homo sapiens (human)
zinc ion bindingCarbonic anhydrase 1Homo sapiens (human)
hydro-lyase activityCarbonic anhydrase 1Homo sapiens (human)
cyanamide hydratase activityCarbonic anhydrase 1Homo sapiens (human)
arylesterase activityCarbonic anhydrase 2Homo sapiens (human)
carbonate dehydratase activityCarbonic anhydrase 2Homo sapiens (human)
protein bindingCarbonic anhydrase 2Homo sapiens (human)
zinc ion bindingCarbonic anhydrase 2Homo sapiens (human)
cyanamide hydratase activityCarbonic anhydrase 2Homo sapiens (human)
carbonate dehydratase activityCarbonic anhydrase 3Homo sapiens (human)
protein bindingCarbonic anhydrase 3Homo sapiens (human)
zinc ion bindingCarbonic anhydrase 3Homo sapiens (human)
nickel cation bindingCarbonic anhydrase 3Homo sapiens (human)
3'-5'-RNA exonuclease activityReplicase polyprotein 1abSevere acute respiratory syndrome-related coronavirus
RNA-dependent RNA polymerase activityReplicase polyprotein 1abSevere acute respiratory syndrome-related coronavirus
cysteine-type endopeptidase activityReplicase polyprotein 1abSevere acute respiratory syndrome-related coronavirus
mRNA 5'-cap (guanine-N7-)-methyltransferase activityReplicase polyprotein 1abSevere acute respiratory syndrome-related coronavirus
mRNA (nucleoside-2'-O-)-methyltransferase activityReplicase polyprotein 1abSevere acute respiratory syndrome-related coronavirus
5'-3' RNA helicase activityReplicase polyprotein 1abSevere acute respiratory syndrome-related coronavirus
K63-linked deubiquitinase activityReplicase polyprotein 1abSevere acute respiratory syndrome-related coronavirus
K48-linked deubiquitinase activityReplicase polyprotein 1abSevere acute respiratory syndrome-related coronavirus
3'-5'-RNA exonuclease activityReplicase polyprotein 1abSevere acute respiratory syndrome coronavirus 2
RNA-dependent RNA polymerase activityReplicase polyprotein 1abSevere acute respiratory syndrome coronavirus 2
cysteine-type endopeptidase activityReplicase polyprotein 1abSevere acute respiratory syndrome coronavirus 2
mRNA 5'-cap (guanine-N7-)-methyltransferase activityReplicase polyprotein 1abSevere acute respiratory syndrome coronavirus 2
mRNA (nucleoside-2'-O-)-methyltransferase activityReplicase polyprotein 1abSevere acute respiratory syndrome coronavirus 2
mRNA guanylyltransferase activityReplicase polyprotein 1abSevere acute respiratory syndrome coronavirus 2
RNA endonuclease activity, producing 3'-phosphomonoestersReplicase polyprotein 1abSevere acute respiratory syndrome coronavirus 2
ISG15-specific peptidase activityReplicase polyprotein 1abSevere acute respiratory syndrome coronavirus 2
5'-3' RNA helicase activityReplicase polyprotein 1abSevere acute respiratory syndrome coronavirus 2
protein guanylyltransferase activityReplicase polyprotein 1abSevere acute respiratory syndrome coronavirus 2
protease bindingApoptosis regulator Bcl-2Homo sapiens (human)
protein bindingApoptosis regulator Bcl-2Homo sapiens (human)
channel activityApoptosis regulator Bcl-2Homo sapiens (human)
channel inhibitor activityApoptosis regulator Bcl-2Homo sapiens (human)
ubiquitin protein ligase bindingApoptosis regulator Bcl-2Homo sapiens (human)
identical protein bindingApoptosis regulator Bcl-2Homo sapiens (human)
sequence-specific DNA bindingApoptosis regulator Bcl-2Homo sapiens (human)
protein heterodimerization activityApoptosis regulator Bcl-2Homo sapiens (human)
BH3 domain bindingApoptosis regulator Bcl-2Homo sapiens (human)
protein phosphatase 2A bindingApoptosis regulator Bcl-2Homo sapiens (human)
molecular adaptor activityApoptosis regulator Bcl-2Homo sapiens (human)
DNA-binding transcription factor bindingApoptosis regulator Bcl-2Homo sapiens (human)
BH domain bindingApoptosis regulator Bcl-2Homo sapiens (human)
protein bindingCarbonic anhydrase 4Homo sapiens (human)
zinc ion bindingCarbonic anhydrase 4Homo sapiens (human)
carbonate dehydratase activityCarbonic anhydrase 4Homo sapiens (human)
zinc ion bindingCarbonic anhydrase 6Homo sapiens (human)
carbonate dehydratase activityCarbonic anhydrase 6Homo sapiens (human)
NAD+ nucleosidase activityADP-ribosyl cyclase/cyclic ADP-ribose hydrolase 1Homo sapiens (human)
transferase activityADP-ribosyl cyclase/cyclic ADP-ribose hydrolase 1Homo sapiens (human)
identical protein bindingADP-ribosyl cyclase/cyclic ADP-ribose hydrolase 1Homo sapiens (human)
NAD+ nucleotidase, cyclic ADP-ribose generatingADP-ribosyl cyclase/cyclic ADP-ribose hydrolase 1Homo sapiens (human)
phosphorus-oxygen lyase activityADP-ribosyl cyclase/cyclic ADP-ribose hydrolase 1Homo sapiens (human)
carbonate dehydratase activityCarbonic anhydrase 5A, mitochondrialHomo sapiens (human)
zinc ion bindingCarbonic anhydrase 5A, mitochondrialHomo sapiens (human)
zinc ion bindingCarbonic anhydrase 7Homo sapiens (human)
carbonate dehydratase activityCarbonic anhydrase 7Homo sapiens (human)
carbonate dehydratase activityCarbonic anhydrase 9Homo sapiens (human)
protein bindingCarbonic anhydrase 9Homo sapiens (human)
zinc ion bindingCarbonic anhydrase 9Homo sapiens (human)
molecular function activator activityCarbonic anhydrase 9Homo sapiens (human)
protein bindingCarbonic anhydrase 13Homo sapiens (human)
zinc ion bindingCarbonic anhydrase 13Homo sapiens (human)
carbonate dehydratase activityCarbonic anhydrase 13Homo sapiens (human)
zinc ion bindingCarbonic anhydrase 14Homo sapiens (human)
carbonate dehydratase activityCarbonic anhydrase 14Homo sapiens (human)
carbonate dehydratase activityCarbonic anhydrase 5B, mitochondrialHomo sapiens (human)
zinc ion bindingCarbonic anhydrase 5B, mitochondrialHomo sapiens (human)
peroxidase activityProstaglandin G/H synthase 1 Bos taurus (cattle)
heme bindingProstaglandin G/H synthase 1 Bos taurus (cattle)
metal ion bindingProstaglandin G/H synthase 1 Bos taurus (cattle)
lipopolysaccharide bindingProthrombinHomo sapiens (human)
serine-type endopeptidase activityProthrombinHomo sapiens (human)
signaling receptor bindingProthrombinHomo sapiens (human)
calcium ion bindingProthrombinHomo sapiens (human)
protein bindingProthrombinHomo sapiens (human)
growth factor activityProthrombinHomo sapiens (human)
heparin bindingProthrombinHomo sapiens (human)
thrombospondin receptor activityProthrombinHomo sapiens (human)
arylesterase activityCarbonic anhydrase 1Homo sapiens (human)
carbonate dehydratase activityCarbonic anhydrase 1Homo sapiens (human)
protein bindingCarbonic anhydrase 1Homo sapiens (human)
zinc ion bindingCarbonic anhydrase 1Homo sapiens (human)
hydro-lyase activityCarbonic anhydrase 1Homo sapiens (human)
cyanamide hydratase activityCarbonic anhydrase 1Homo sapiens (human)
arylesterase activityCarbonic anhydrase 2Homo sapiens (human)
carbonate dehydratase activityCarbonic anhydrase 2Homo sapiens (human)
protein bindingCarbonic anhydrase 2Homo sapiens (human)
zinc ion bindingCarbonic anhydrase 2Homo sapiens (human)
cyanamide hydratase activityCarbonic anhydrase 2Homo sapiens (human)
protein bindingCarbonic anhydrase 4Homo sapiens (human)
zinc ion bindingCarbonic anhydrase 4Homo sapiens (human)
carbonate dehydratase activityCarbonic anhydrase 4Homo sapiens (human)
peroxidase activityProstaglandin G/H synthase 1Homo sapiens (human)
prostaglandin-endoperoxide synthase activityProstaglandin G/H synthase 1Homo sapiens (human)
protein bindingProstaglandin G/H synthase 1Homo sapiens (human)
heme bindingProstaglandin G/H synthase 1Homo sapiens (human)
metal ion bindingProstaglandin G/H synthase 1Homo sapiens (human)
oxidoreductase activity, acting on single donors with incorporation of molecular oxygen, incorporation of two atoms of oxygenProstaglandin G/H synthase 1Homo sapiens (human)
zinc ion bindingCarbonic anhydrase 6Homo sapiens (human)
carbonate dehydratase activityCarbonic anhydrase 6Homo sapiens (human)
G protein-coupled adenosine receptor activityAdenosine receptor A2aRattus norvegicus (Norway rat)
peroxidase activityProstaglandin G/H synthase 2Homo sapiens (human)
prostaglandin-endoperoxide synthase activityProstaglandin G/H synthase 2Homo sapiens (human)
protein bindingProstaglandin G/H synthase 2Homo sapiens (human)
enzyme bindingProstaglandin G/H synthase 2Homo sapiens (human)
heme bindingProstaglandin G/H synthase 2Homo sapiens (human)
protein homodimerization activityProstaglandin G/H synthase 2Homo sapiens (human)
metal ion bindingProstaglandin G/H synthase 2Homo sapiens (human)
oxidoreductase activity, acting on single donors with incorporation of molecular oxygen, incorporation of two atoms of oxygenProstaglandin G/H synthase 2Homo sapiens (human)
G-protein alpha-subunit bindingMu-type opioid receptorHomo sapiens (human)
G protein-coupled receptor activityMu-type opioid receptorHomo sapiens (human)
beta-endorphin receptor activityMu-type opioid receptorHomo sapiens (human)
voltage-gated calcium channel activityMu-type opioid receptorHomo sapiens (human)
protein bindingMu-type opioid receptorHomo sapiens (human)
morphine receptor activityMu-type opioid receptorHomo sapiens (human)
G-protein beta-subunit bindingMu-type opioid receptorHomo sapiens (human)
neuropeptide bindingMu-type opioid receptorHomo sapiens (human)
G protein-coupled opioid receptor activityDelta-type opioid receptorHomo sapiens (human)
protein bindingDelta-type opioid receptorHomo sapiens (human)
receptor serine/threonine kinase bindingDelta-type opioid receptorHomo sapiens (human)
G protein-coupled enkephalin receptor activityDelta-type opioid receptorHomo sapiens (human)
neuropeptide bindingDelta-type opioid receptorHomo sapiens (human)
G protein-coupled opioid receptor activityKappa-type opioid receptorHomo sapiens (human)
protein bindingKappa-type opioid receptorHomo sapiens (human)
receptor serine/threonine kinase bindingKappa-type opioid receptorHomo sapiens (human)
dynorphin receptor activityKappa-type opioid receptorHomo sapiens (human)
neuropeptide bindingKappa-type opioid receptorHomo sapiens (human)
xanthine dehydrogenase activityXanthine dehydrogenase/oxidaseHomo sapiens (human)
xanthine oxidase activityXanthine dehydrogenase/oxidaseHomo sapiens (human)
iron ion bindingXanthine dehydrogenase/oxidaseHomo sapiens (human)
protein bindingXanthine dehydrogenase/oxidaseHomo sapiens (human)
protein homodimerization activityXanthine dehydrogenase/oxidaseHomo sapiens (human)
molybdopterin cofactor bindingXanthine dehydrogenase/oxidaseHomo sapiens (human)
flavin adenine dinucleotide bindingXanthine dehydrogenase/oxidaseHomo sapiens (human)
2 iron, 2 sulfur cluster bindingXanthine dehydrogenase/oxidaseHomo sapiens (human)
hypoxanthine dehydrogenase activityXanthine dehydrogenase/oxidaseHomo sapiens (human)
hypoxanthine oxidase activityXanthine dehydrogenase/oxidaseHomo sapiens (human)
FAD bindingXanthine dehydrogenase/oxidaseHomo sapiens (human)
protein bindingMelatonin receptor type 1AHomo sapiens (human)
melatonin receptor activityMelatonin receptor type 1AHomo sapiens (human)
hormone bindingMelatonin receptor type 1AHomo sapiens (human)
organic cyclic compound bindingMelatonin receptor type 1AHomo sapiens (human)
G protein-coupled receptor activityMelatonin receptor type 1AHomo sapiens (human)
protein bindingMelatonin receptor type 1BHomo sapiens (human)
melatonin receptor activityMelatonin receptor type 1BHomo sapiens (human)
G protein-coupled receptor activityMelatonin receptor type 1BHomo sapiens (human)
protein kinase activityDeath-associated protein kinase 1Homo sapiens (human)
protein serine/threonine kinase activityDeath-associated protein kinase 1Homo sapiens (human)
calmodulin-dependent protein kinase activityDeath-associated protein kinase 1Homo sapiens (human)
protein bindingDeath-associated protein kinase 1Homo sapiens (human)
calmodulin bindingDeath-associated protein kinase 1Homo sapiens (human)
ATP bindingDeath-associated protein kinase 1Homo sapiens (human)
GTP bindingDeath-associated protein kinase 1Homo sapiens (human)
syntaxin-1 bindingDeath-associated protein kinase 1Homo sapiens (human)
identical protein bindingDeath-associated protein kinase 1Homo sapiens (human)
protein serine kinase activityDeath-associated protein kinase 1Homo sapiens (human)
amyloid-beta bindingBeta-secretase 1Homo sapiens (human)
endopeptidase activityBeta-secretase 1Homo sapiens (human)
aspartic-type endopeptidase activityBeta-secretase 1Homo sapiens (human)
protein bindingBeta-secretase 1Homo sapiens (human)
peptidase activityBeta-secretase 1Homo sapiens (human)
beta-aspartyl-peptidase activityBeta-secretase 1Homo sapiens (human)
enzyme bindingBeta-secretase 1Homo sapiens (human)
protein serine/threonine kinase bindingBeta-secretase 1Homo sapiens (human)
zinc ion bindingCarbonic anhydrase 3Bos taurus (cattle)
[Information is prepared from geneontology information from the June-17-2024 release]

Ceullar Components (78)

Processvia Protein(s)Taxonomy
plasma membraneCarbonic anhydrase 12Homo sapiens (human)
membraneCarbonic anhydrase 12Homo sapiens (human)
basolateral plasma membraneCarbonic anhydrase 12Homo sapiens (human)
apical plasma membraneCarbonic anhydrase 12Homo sapiens (human)
plasma membraneCarbonic anhydrase 12Homo sapiens (human)
cytosolCarbonic anhydrase 1Homo sapiens (human)
extracellular exosomeCarbonic anhydrase 1Homo sapiens (human)
cytoplasmCarbonic anhydrase 2Homo sapiens (human)
cytosolCarbonic anhydrase 2Homo sapiens (human)
plasma membraneCarbonic anhydrase 2Homo sapiens (human)
myelin sheathCarbonic anhydrase 2Homo sapiens (human)
apical part of cellCarbonic anhydrase 2Homo sapiens (human)
extracellular exosomeCarbonic anhydrase 2Homo sapiens (human)
cytoplasmCarbonic anhydrase 2Homo sapiens (human)
plasma membraneCarbonic anhydrase 2Homo sapiens (human)
apical part of cellCarbonic anhydrase 2Homo sapiens (human)
cytosolCarbonic anhydrase 3Homo sapiens (human)
cytosolCarbonic anhydrase 3Homo sapiens (human)
cytoplasmCarbonic anhydrase 3Homo sapiens (human)
double membrane vesicle viral factory outer membraneReplicase polyprotein 1abSevere acute respiratory syndrome-related coronavirus
double membrane vesicle viral factory outer membraneReplicase polyprotein 1abSevere acute respiratory syndrome coronavirus 2
mitochondrial outer membraneApoptosis regulator Bcl-2Homo sapiens (human)
endoplasmic reticulum membraneApoptosis regulator Bcl-2Homo sapiens (human)
nucleusApoptosis regulator Bcl-2Homo sapiens (human)
cytoplasmApoptosis regulator Bcl-2Homo sapiens (human)
mitochondrionApoptosis regulator Bcl-2Homo sapiens (human)
mitochondrial outer membraneApoptosis regulator Bcl-2Homo sapiens (human)
endoplasmic reticulumApoptosis regulator Bcl-2Homo sapiens (human)
cytosolApoptosis regulator Bcl-2Homo sapiens (human)
membraneApoptosis regulator Bcl-2Homo sapiens (human)
nuclear membraneApoptosis regulator Bcl-2Homo sapiens (human)
myelin sheathApoptosis regulator Bcl-2Homo sapiens (human)
BAD-BCL-2 complexApoptosis regulator Bcl-2Homo sapiens (human)
protein-containing complexApoptosis regulator Bcl-2Homo sapiens (human)
pore complexApoptosis regulator Bcl-2Homo sapiens (human)
plasma membraneGlutamate receptor 1Rattus norvegicus (Norway rat)
plasma membraneGlutamate receptor 2Rattus norvegicus (Norway rat)
basolateral plasma membraneCarbonic anhydrase 4Homo sapiens (human)
rough endoplasmic reticulumCarbonic anhydrase 4Homo sapiens (human)
endoplasmic reticulum-Golgi intermediate compartmentCarbonic anhydrase 4Homo sapiens (human)
Golgi apparatusCarbonic anhydrase 4Homo sapiens (human)
trans-Golgi networkCarbonic anhydrase 4Homo sapiens (human)
plasma membraneCarbonic anhydrase 4Homo sapiens (human)
external side of plasma membraneCarbonic anhydrase 4Homo sapiens (human)
cell surfaceCarbonic anhydrase 4Homo sapiens (human)
membraneCarbonic anhydrase 4Homo sapiens (human)
apical plasma membraneCarbonic anhydrase 4Homo sapiens (human)
transport vesicle membraneCarbonic anhydrase 4Homo sapiens (human)
secretory granule membraneCarbonic anhydrase 4Homo sapiens (human)
brush border membraneCarbonic anhydrase 4Homo sapiens (human)
perinuclear region of cytoplasmCarbonic anhydrase 4Homo sapiens (human)
extracellular exosomeCarbonic anhydrase 4Homo sapiens (human)
plasma membraneCarbonic anhydrase 4Homo sapiens (human)
extracellular regionCarbonic anhydrase 6Homo sapiens (human)
extracellular spaceCarbonic anhydrase 6Homo sapiens (human)
cytosolCarbonic anhydrase 6Homo sapiens (human)
extracellular exosomeCarbonic anhydrase 6Homo sapiens (human)
extracellular spaceCarbonic anhydrase 6Homo sapiens (human)
plasma membraneADP-ribosyl cyclase/cyclic ADP-ribose hydrolase 1Homo sapiens (human)
cell surfaceADP-ribosyl cyclase/cyclic ADP-ribose hydrolase 1Homo sapiens (human)
membraneADP-ribosyl cyclase/cyclic ADP-ribose hydrolase 1Homo sapiens (human)
basolateral plasma membraneADP-ribosyl cyclase/cyclic ADP-ribose hydrolase 1Homo sapiens (human)
nuclear membraneADP-ribosyl cyclase/cyclic ADP-ribose hydrolase 1Homo sapiens (human)
extracellular exosomeADP-ribosyl cyclase/cyclic ADP-ribose hydrolase 1Homo sapiens (human)
plasma membraneADP-ribosyl cyclase/cyclic ADP-ribose hydrolase 1Homo sapiens (human)
mitochondrial matrixCarbonic anhydrase 5A, mitochondrialHomo sapiens (human)
mitochondrionCarbonic anhydrase 5A, mitochondrialHomo sapiens (human)
cytoplasmCarbonic anhydrase 5A, mitochondrialHomo sapiens (human)
mitochondrionCarbonic anhydrase 5A, mitochondrialHomo sapiens (human)
cytosolCarbonic anhydrase 7Homo sapiens (human)
cytoplasmCarbonic anhydrase 7Homo sapiens (human)
nucleolusCarbonic anhydrase 9Homo sapiens (human)
plasma membraneCarbonic anhydrase 9Homo sapiens (human)
membraneCarbonic anhydrase 9Homo sapiens (human)
basolateral plasma membraneCarbonic anhydrase 9Homo sapiens (human)
microvillus membraneCarbonic anhydrase 9Homo sapiens (human)
plasma membraneCarbonic anhydrase 9Homo sapiens (human)
cytosolCarbonic anhydrase 13Homo sapiens (human)
myelin sheathCarbonic anhydrase 13Homo sapiens (human)
intracellular membrane-bounded organelleCarbonic anhydrase 13Homo sapiens (human)
cytoplasmCarbonic anhydrase 13Homo sapiens (human)
cytosolCarbonic anhydrase 13Homo sapiens (human)
plasma membraneCarbonic anhydrase 14Homo sapiens (human)
membraneCarbonic anhydrase 14Homo sapiens (human)
basolateral plasma membraneCarbonic anhydrase 14Homo sapiens (human)
apical plasma membraneCarbonic anhydrase 14Homo sapiens (human)
plasma membraneCarbonic anhydrase 14Homo sapiens (human)
mitochondrionCarbonic anhydrase 5B, mitochondrialHomo sapiens (human)
mitochondrial matrixCarbonic anhydrase 5B, mitochondrialHomo sapiens (human)
mitochondrionCarbonic anhydrase 5B, mitochondrialHomo sapiens (human)
cytoplasmCarbonic anhydrase 5B, mitochondrialHomo sapiens (human)
endoplasmic reticulum membraneProstaglandin G/H synthase 1 Bos taurus (cattle)
external side of plasma membraneProthrombinHomo sapiens (human)
collagen-containing extracellular matrixProthrombinHomo sapiens (human)
extracellular regionProthrombinHomo sapiens (human)
extracellular spaceProthrombinHomo sapiens (human)
endoplasmic reticulum lumenProthrombinHomo sapiens (human)
Golgi lumenProthrombinHomo sapiens (human)
plasma membraneProthrombinHomo sapiens (human)
extracellular exosomeProthrombinHomo sapiens (human)
blood microparticleProthrombinHomo sapiens (human)
collagen-containing extracellular matrixProthrombinHomo sapiens (human)
extracellular spaceProthrombinHomo sapiens (human)
cytosolCarbonic anhydrase 1Homo sapiens (human)
extracellular exosomeCarbonic anhydrase 1Homo sapiens (human)
cytoplasmCarbonic anhydrase 2Homo sapiens (human)
cytosolCarbonic anhydrase 2Homo sapiens (human)
plasma membraneCarbonic anhydrase 2Homo sapiens (human)
myelin sheathCarbonic anhydrase 2Homo sapiens (human)
apical part of cellCarbonic anhydrase 2Homo sapiens (human)
extracellular exosomeCarbonic anhydrase 2Homo sapiens (human)
cytoplasmCarbonic anhydrase 2Homo sapiens (human)
plasma membraneCarbonic anhydrase 2Homo sapiens (human)
apical part of cellCarbonic anhydrase 2Homo sapiens (human)
basolateral plasma membraneCarbonic anhydrase 4Homo sapiens (human)
rough endoplasmic reticulumCarbonic anhydrase 4Homo sapiens (human)
endoplasmic reticulum-Golgi intermediate compartmentCarbonic anhydrase 4Homo sapiens (human)
Golgi apparatusCarbonic anhydrase 4Homo sapiens (human)
trans-Golgi networkCarbonic anhydrase 4Homo sapiens (human)
plasma membraneCarbonic anhydrase 4Homo sapiens (human)
external side of plasma membraneCarbonic anhydrase 4Homo sapiens (human)
cell surfaceCarbonic anhydrase 4Homo sapiens (human)
membraneCarbonic anhydrase 4Homo sapiens (human)
apical plasma membraneCarbonic anhydrase 4Homo sapiens (human)
transport vesicle membraneCarbonic anhydrase 4Homo sapiens (human)
secretory granule membraneCarbonic anhydrase 4Homo sapiens (human)
brush border membraneCarbonic anhydrase 4Homo sapiens (human)
perinuclear region of cytoplasmCarbonic anhydrase 4Homo sapiens (human)
extracellular exosomeCarbonic anhydrase 4Homo sapiens (human)
plasma membraneCarbonic anhydrase 4Homo sapiens (human)
photoreceptor outer segmentProstaglandin G/H synthase 1Homo sapiens (human)
cytoplasmProstaglandin G/H synthase 1Homo sapiens (human)
endoplasmic reticulum membraneProstaglandin G/H synthase 1Homo sapiens (human)
Golgi apparatusProstaglandin G/H synthase 1Homo sapiens (human)
intracellular membrane-bounded organelleProstaglandin G/H synthase 1Homo sapiens (human)
extracellular exosomeProstaglandin G/H synthase 1Homo sapiens (human)
cytoplasmProstaglandin G/H synthase 1Homo sapiens (human)
neuron projectionProstaglandin G/H synthase 1Homo sapiens (human)
extracellular regionCarbonic anhydrase 6Homo sapiens (human)
extracellular spaceCarbonic anhydrase 6Homo sapiens (human)
cytosolCarbonic anhydrase 6Homo sapiens (human)
extracellular exosomeCarbonic anhydrase 6Homo sapiens (human)
extracellular spaceCarbonic anhydrase 6Homo sapiens (human)
Golgi membraneAdenosine receptor A2aRattus norvegicus (Norway rat)
nuclear inner membraneProstaglandin G/H synthase 2Homo sapiens (human)
nuclear outer membraneProstaglandin G/H synthase 2Homo sapiens (human)
cytoplasmProstaglandin G/H synthase 2Homo sapiens (human)
endoplasmic reticulumProstaglandin G/H synthase 2Homo sapiens (human)
endoplasmic reticulum lumenProstaglandin G/H synthase 2Homo sapiens (human)
endoplasmic reticulum membraneProstaglandin G/H synthase 2Homo sapiens (human)
caveolaProstaglandin G/H synthase 2Homo sapiens (human)
neuron projectionProstaglandin G/H synthase 2Homo sapiens (human)
protein-containing complexProstaglandin G/H synthase 2Homo sapiens (human)
neuron projectionProstaglandin G/H synthase 2Homo sapiens (human)
cytoplasmProstaglandin G/H synthase 2Homo sapiens (human)
endosomeMu-type opioid receptorHomo sapiens (human)
endoplasmic reticulumMu-type opioid receptorHomo sapiens (human)
Golgi apparatusMu-type opioid receptorHomo sapiens (human)
plasma membraneMu-type opioid receptorHomo sapiens (human)
axonMu-type opioid receptorHomo sapiens (human)
dendriteMu-type opioid receptorHomo sapiens (human)
perikaryonMu-type opioid receptorHomo sapiens (human)
synapseMu-type opioid receptorHomo sapiens (human)
plasma membraneMu-type opioid receptorHomo sapiens (human)
neuron projectionMu-type opioid receptorHomo sapiens (human)
plasma membraneDelta-type opioid receptorHomo sapiens (human)
synaptic vesicle membraneDelta-type opioid receptorHomo sapiens (human)
dendrite membraneDelta-type opioid receptorHomo sapiens (human)
presynaptic membraneDelta-type opioid receptorHomo sapiens (human)
axon terminusDelta-type opioid receptorHomo sapiens (human)
spine apparatusDelta-type opioid receptorHomo sapiens (human)
postsynaptic density membraneDelta-type opioid receptorHomo sapiens (human)
neuronal dense core vesicleDelta-type opioid receptorHomo sapiens (human)
plasma membraneDelta-type opioid receptorHomo sapiens (human)
neuron projectionDelta-type opioid receptorHomo sapiens (human)
nucleoplasmKappa-type opioid receptorHomo sapiens (human)
mitochondrionKappa-type opioid receptorHomo sapiens (human)
cytosolKappa-type opioid receptorHomo sapiens (human)
plasma membraneKappa-type opioid receptorHomo sapiens (human)
membraneKappa-type opioid receptorHomo sapiens (human)
sarcoplasmic reticulumKappa-type opioid receptorHomo sapiens (human)
T-tubuleKappa-type opioid receptorHomo sapiens (human)
dendriteKappa-type opioid receptorHomo sapiens (human)
synaptic vesicle membraneKappa-type opioid receptorHomo sapiens (human)
presynaptic membraneKappa-type opioid receptorHomo sapiens (human)
perikaryonKappa-type opioid receptorHomo sapiens (human)
axon terminusKappa-type opioid receptorHomo sapiens (human)
postsynaptic membraneKappa-type opioid receptorHomo sapiens (human)
plasma membraneKappa-type opioid receptorHomo sapiens (human)
neuron projectionKappa-type opioid receptorHomo sapiens (human)
cytosolXanthine dehydrogenase/oxidaseHomo sapiens (human)
extracellular spaceXanthine dehydrogenase/oxidaseHomo sapiens (human)
peroxisomeXanthine dehydrogenase/oxidaseHomo sapiens (human)
cytosolXanthine dehydrogenase/oxidaseHomo sapiens (human)
sarcoplasmic reticulumXanthine dehydrogenase/oxidaseHomo sapiens (human)
extracellular spaceXanthine dehydrogenase/oxidaseHomo sapiens (human)
plasma membraneMelatonin receptor type 1AHomo sapiens (human)
receptor complexMelatonin receptor type 1AHomo sapiens (human)
plasma membraneMelatonin receptor type 1AHomo sapiens (human)
plasma membraneMelatonin receptor type 1BHomo sapiens (human)
synapseMelatonin receptor type 1BHomo sapiens (human)
plasma membraneMelatonin receptor type 1BHomo sapiens (human)
cytoplasmDeath-associated protein kinase 1Homo sapiens (human)
plasma membraneDeath-associated protein kinase 1Homo sapiens (human)
postsynaptic densityDeath-associated protein kinase 1Homo sapiens (human)
actin cytoskeletonDeath-associated protein kinase 1Homo sapiens (human)
glutamatergic synapseDeath-associated protein kinase 1Homo sapiens (human)
DAPK1-calmodulin complexDeath-associated protein kinase 1Homo sapiens (human)
cytoplasmDeath-associated protein kinase 1Homo sapiens (human)
nucleusDeath-associated protein kinase 1Homo sapiens (human)
lysosomeBeta-secretase 1Homo sapiens (human)
endosomeBeta-secretase 1Homo sapiens (human)
early endosomeBeta-secretase 1Homo sapiens (human)
late endosomeBeta-secretase 1Homo sapiens (human)
multivesicular bodyBeta-secretase 1Homo sapiens (human)
endoplasmic reticulum lumenBeta-secretase 1Homo sapiens (human)
Golgi apparatusBeta-secretase 1Homo sapiens (human)
trans-Golgi networkBeta-secretase 1Homo sapiens (human)
plasma membraneBeta-secretase 1Homo sapiens (human)
synaptic vesicleBeta-secretase 1Homo sapiens (human)
cell surfaceBeta-secretase 1Homo sapiens (human)
endosome membraneBeta-secretase 1Homo sapiens (human)
membraneBeta-secretase 1Homo sapiens (human)
axonBeta-secretase 1Homo sapiens (human)
dendriteBeta-secretase 1Homo sapiens (human)
neuronal cell bodyBeta-secretase 1Homo sapiens (human)
membrane raftBeta-secretase 1Homo sapiens (human)
recycling endosomeBeta-secretase 1Homo sapiens (human)
Golgi-associated vesicle lumenBeta-secretase 1Homo sapiens (human)
hippocampal mossy fiber to CA3 synapseBeta-secretase 1Homo sapiens (human)
endosomeBeta-secretase 1Homo sapiens (human)
plasma membraneBeta-secretase 1Homo sapiens (human)
trans-Golgi networkBeta-secretase 1Homo sapiens (human)
[Information is prepared from geneontology information from the June-17-2024 release]

Bioassays (436)

Assay IDTitleYearJournalArticle
AID504749qHTS profiling for inhibitors of Plasmodium falciparum proliferation2011Science (New York, N.Y.), Aug-05, Volume: 333, Issue:6043
Chemical genomic profiling for antimalarial therapies, response signatures, and molecular targets.
AID456318DPPH radical scavenging activity assessed as trolox equivalent antioxidant capacity2010Bioorganic & medicinal chemistry, Jan-01, Volume: 18, Issue:1
Reliability of bond dissociation enthalpy calculated by the PM6 method and experimental TEAC values in antiradical QSAR of flavonoids.
AID366286Inhibition of Influenza A Jiangsu/10/2003 virus neuraminidase activity by MUN-ANA substrate based fluorimetric assay2008Bioorganic & medicinal chemistry, Aug-01, Volume: 16, Issue:15
Structure-activity relationship of flavonoids as influenza virus neuraminidase inhibitors and their in vitro anti-viral activities.
AID397586Effect on human plasma LDL-PLA2 activity by LS-3B fluorescence spectrometry2001Journal of natural products, Apr, Volume: 64, Issue:4
Specific antioxidant activity of caffeoyl derivatives and other natural phenolic compounds: LDL protection against oxidation and decrease in the proinflammatory lysophosphatidylcholine production.
AID263482Effect on glutathione/ferric ion-induced oxidative damage of herring sperm DNA assessed as reduction in 8-OHdG level2006Bioorganic & medicinal chemistry letters, Apr-01, Volume: 16, Issue:7
Polyhydroxylated 4-thiaflavans as multipotent antioxidants: protective effect on oxidative DNA damage in vitro.
AID1070388Neuroprotective activity in mouse HT22 cells assessed as reduction of t-BOOH-induced oxidative stress at 40 uM preincubated for 3 hrs followed by t-BOOH induction measured after 20 hrs by MTT assay2014Journal of natural products, Mar-28, Volume: 77, Issue:3
Flavonoids, flavonoid metabolites, and phenolic acids inhibit oxidative stress in the neuronal cell line HT-22 monitored by ECIS and MTT assay: a comparative study.
AID1066690Antiprotozoal activity against Entamoeba histolytica HM-1:IMSS2014Journal of natural products, Feb-28, Volume: 77, Issue:2
Structure, absolute configuration, and antidiarrheal activity of a thymol derivative from Ageratina cylindrica.
AID501908Inhibition of human carbonic anhydrase 5b after 15 mins by stopped flow CO2 hydration method2010Bioorganic & medicinal chemistry letters, Sep-01, Volume: 20, Issue:17
Carbonic anhydrase inhibitors. Antioxidant polyphenols effectively inhibit mammalian isoforms I-XV.
AID1103071Antifungal activity against Aspergillus niger at 12.5 to 25 ug/ml after 96 hr by spectrophotometry2004Journal of agricultural and food chemistry, Mar-10, Volume: 52, Issue:5
Phytotoxic and antimicrobial activities of catechin derivatives.
AID1090647Antifungal activity against Verticillium dahliae assessed as inhibition of mycelial radial growth measured after 350 hr2007Journal of agricultural and food chemistry, May-02, Volume: 55, Issue:9
Dysfunctionality of the xylem in Olea europaea L. Plants associated with the infection process by Verticillium dahliae Kleb. Role of phenolic compounds in plant defense mechanism.
AID414769Antioxidant activity assessed as DPPH radical scavenging activity after 30 mins by microplate reader assay2009Bioorganic & medicinal chemistry, Apr-01, Volume: 17, Issue:7
Phenolic compounds with radical scavenging and cyclooxygenase-2 (COX-2) inhibitory activities from Dioscorea opposita.
AID1073294Antiinflammatory activity in human THP1 cells assessed as inhibition of LPS-induced TNF-alpha release measured as TNF-alpha level at 15 uM after 4hrs by ELISA relative to control2013Bioorganic & medicinal chemistry, Oct-01, Volume: 21, Issue:19
Synthesis and anti-inflammatory activity of aromatic glucosinolates.
AID404692Inhibition of human salivary alpha-amylase2008Journal of medicinal chemistry, Jun-26, Volume: 51, Issue:12
Flavonoids for controlling starch digestion: structural requirements for inhibiting human alpha-amylase.
AID501914Inhibition of human carbonic anhydrase 14 after 15 mins by stopped flow CO2 hydration method2010Bioorganic & medicinal chemistry letters, Sep-01, Volume: 20, Issue:17
Carbonic anhydrase inhibitors. Antioxidant polyphenols effectively inhibit mammalian isoforms I-XV.
AID501907Inhibition of human carbonic anhydrase 5a after 15 mins by stopped flow CO2 hydration method2010Bioorganic & medicinal chemistry letters, Sep-01, Volume: 20, Issue:17
Carbonic anhydrase inhibitors. Antioxidant polyphenols effectively inhibit mammalian isoforms I-XV.
AID1616107Inhibition of F1F0-ATP synthase in Escherichia coli after 60 mins2019European journal of medicinal chemistry, Nov-15, Volume: 182Recent advancements in mechanistic studies and structure activity relationship of F
AID397153Antioxidant activity against Cu2+-induced lipid peroxidation in human plasma LDL preincubated for 1 hr before Cu2+ challenge2001Journal of natural products, Apr, Volume: 64, Issue:4
Specific antioxidant activity of caffeoyl derivatives and other natural phenolic compounds: LDL protection against oxidation and decrease in the proinflammatory lysophosphatidylcholine production.
AID1063596Antiinflammatory activity in PMA-treated human THP1 cells assessed as inhibition of LPS-induced TNFalpha secretion at 15 uM after 4 hrs by sandwich ELISA relative to control2014Bioorganic & medicinal chemistry, Jan-15, Volume: 22, Issue:2
Synthesis and anti-inflammatory activity of indole glucosinolates.
AID501905Inhibition of human carbonic anhydrase 3 after 15 mins by stopped flow CO2 hydration method2010Bioorganic & medicinal chemistry letters, Sep-01, Volume: 20, Issue:17
Carbonic anhydrase inhibitors. Antioxidant polyphenols effectively inhibit mammalian isoforms I-XV.
AID311906DPPH radical scavenging activity2007Journal of natural products, Dec, Volume: 70, Issue:12
Antioxidant phenylpropanoid-substituted epicatechins from Trichilia catigua.
AID356228Antioxidant activity assessed as DPPH radical scavenging activity2003Journal of natural products, Aug, Volume: 66, Issue:8
Xanthones and benzophenones from the stems of Garcinia multiflora.
AID1103075Bactericidal activity against Pseudomonas fluorescens at 3.1 ug/ml after 24 hr by BacLight bacterial viability fluorescence assay2004Journal of agricultural and food chemistry, Mar-10, Volume: 52, Issue:5
Phytotoxic and antimicrobial activities of catechin derivatives.
AID1063594Antiinflammatory activity in PMA-treated human THP1 cells assessed as LPS-induced TNFalpha secretion at 0.5 uM after 4 hrs by sandwich ELISA relative to control2014Bioorganic & medicinal chemistry, Jan-15, Volume: 22, Issue:2
Synthesis and anti-inflammatory activity of indole glucosinolates.
AID501912Inhibition of human carbonic anhydrase 12 after 15 mins by stopped flow CO2 hydration method2010Bioorganic & medicinal chemistry letters, Sep-01, Volume: 20, Issue:17
Carbonic anhydrase inhibitors. Antioxidant polyphenols effectively inhibit mammalian isoforms I-XV.
AID501903Inhibition of human carbonic anhydrase 1 after 15 mins by stopped flow CO2 hydration method2010Bioorganic & medicinal chemistry letters, Sep-01, Volume: 20, Issue:17
Carbonic anhydrase inhibitors. Antioxidant polyphenols effectively inhibit mammalian isoforms I-XV.
AID755045Antioxidant activity assessed as DPPH radical scavenging activity measured at 10 mins by ESR spectrometric analysis2013Bioorganic & medicinal chemistry, Jul-01, Volume: 21, Issue:13
Remarkable antioxidant properties of a series of hydroxy-3-arylcoumarins.
AID1073291Antiinflammatory activity in human THP1 cells assessed as inhibition of LPS-induced TNF-alpha release measured as TNF-alpha level at 0.5 uM after 4hrs by ELISA relative to control2013Bioorganic & medicinal chemistry, Oct-01, Volume: 21, Issue:19
Synthesis and anti-inflammatory activity of aromatic glucosinolates.
AID397154Antioxidant activity against AAPH-induced lipid peroxidation in human plasma LDL preincubated for 1 hr before AAPH challenge2001Journal of natural products, Apr, Volume: 64, Issue:4
Specific antioxidant activity of caffeoyl derivatives and other natural phenolic compounds: LDL protection against oxidation and decrease in the proinflammatory lysophosphatidylcholine production.
AID501909Inhibition of human carbonic anhydrase 6 after 15 mins by stopped flow CO2 hydration method2010Bioorganic & medicinal chemistry letters, Sep-01, Volume: 20, Issue:17
Carbonic anhydrase inhibitors. Antioxidant polyphenols effectively inhibit mammalian isoforms I-XV.
AID1103078Bactericidal activity against Xanthomonas euvesicatoria at 6.3 ug/ml after 24 hr by BacLight bacterial viability fluorescence assay2004Journal of agricultural and food chemistry, Mar-10, Volume: 52, Issue:5
Phytotoxic and antimicrobial activities of catechin derivatives.
AID603318Inhibition of human CD38 using 20 uM 1, N6-etheno NAD+ as substrate by continuous fluorimetric method2011Bioorganic & medicinal chemistry letters, Jul-01, Volume: 21, Issue:13
Flavonoids as inhibitors of human CD38.
AID456316ABTS radical scavenging activity assessed as trolox equivalent antioxidant capacity2010Bioorganic & medicinal chemistry, Jan-01, Volume: 18, Issue:1
Reliability of bond dissociation enthalpy calculated by the PM6 method and experimental TEAC values in antiradical QSAR of flavonoids.
AID749997Activation of recombinant paraoxonase-1 (unknown origin) expressed in Escherichia coli assessed as delaying of Cu2+-induced LDL oxidation time after 15 mins by UV ELISA2013Bioorganic & medicinal chemistry, Jun-01, Volume: 21, Issue:11
The effects and mechanism of flavonoid-rePON1 interactions. Structure-activity relationship study.
AID456317Antioxidant activity assessed as trolox equivalent by TEAC assay2010Bioorganic & medicinal chemistry, Jan-01, Volume: 18, Issue:1
Reliability of bond dissociation enthalpy calculated by the PM6 method and experimental TEAC values in antiradical QSAR of flavonoids.
AID767448Antioxidant activity assessed as galvinoxyl free radical scavenging activity after 20 mins2013European journal of medicinal chemistry, Sep, Volume: 67Regioselective synthesis of phenanthrenes and evaluation of their anti-oxidant based anti-inflammatory potential.
AID767447Antioxidant activity assessed as DPPH free radical scavenging activity after 30 mins2013European journal of medicinal chemistry, Sep, Volume: 67Regioselective synthesis of phenanthrenes and evaluation of their anti-oxidant based anti-inflammatory potential.
AID1103942Antifeedant activity against third-instar Xanthogaleruca luteola assessed per cm2 leaf disk after 24 hr by leaf-disk choice test2009Bioresource technology, Jul, Volume: 100, Issue:14
Antifeedant activity of ethanolic extract from Flourensia oolepis and isolation of pinocembrin as its active principle compound.
AID501906Inhibition of human carbonic anhydrase 4 after 15 mins by stopped flow CO2 hydration method2010Bioorganic & medicinal chemistry letters, Sep-01, Volume: 20, Issue:17
Carbonic anhydrase inhibitors. Antioxidant polyphenols effectively inhibit mammalian isoforms I-XV.
AID588211Literature-mined compound from Fourches et al multi-species drug-induced liver injury (DILI) dataset, effect in humans2010Chemical research in toxicology, Jan, Volume: 23, Issue:1
Cheminformatics analysis of assertions mined from literature that describe drug-induced liver injury in different species.
AID366284Inhibition of Influenza A Jinan/15/90 H3N2 virus neuraminidase activity by MUN-ANA substrate based fluorimetric assay2008Bioorganic & medicinal chemistry, Aug-01, Volume: 16, Issue:15
Structure-activity relationship of flavonoids as influenza virus neuraminidase inhibitors and their in vitro anti-viral activities.
AID696433Inhibition of bovine kidney LMW-PTPase at 400 uM using pNPP substrate2012Journal of medicinal chemistry, Jan-12, Volume: 55, Issue:1
Low molecular weight phosphotyrosine protein phosphatases as emerging targets for the design of novel therapeutic agents.
AID762875Antioxidant activity assessed as peroxyl radical scavenging activity by ORAC assay relative to trolox2013Journal of medicinal chemistry, Aug-08, Volume: 56, Issue:15
Synthesis and electrochemical and biological studies of novel coumarin-chalcone hybrid compounds.
AID1103077Bactericidal activity against Pectobacterium carotovorum at 3.1 ug/ml after 24 hr by BacLight bacterial viability fluorescence assay2004Journal of agricultural and food chemistry, Mar-10, Volume: 52, Issue:5
Phytotoxic and antimicrobial activities of catechin derivatives.
AID414770Antioxidant activity assessed as superoxide radical scavenging activity after 20 mins by NBT reduction assay2009Bioorganic & medicinal chemistry, Apr-01, Volume: 17, Issue:7
Phenolic compounds with radical scavenging and cyclooxygenase-2 (COX-2) inhibitory activities from Dioscorea opposita.
AID588212Literature-mined compound from Fourches et al multi-species drug-induced liver injury (DILI) dataset, effect in rodents2010Chemical research in toxicology, Jan, Volume: 23, Issue:1
Cheminformatics analysis of assertions mined from literature that describe drug-induced liver injury in different species.
AID711624Increase of lifespan of L4 larvae of Caenorhabditis elegans at 35 degC after 8 hrs2011Journal of natural products, Aug-26, Volume: 74, Issue:8
Diversity of polyphenol action in Caenorhabditis elegans: between toxicity and longevity.
AID395151Antioxidant activity in Wistar rat liver microsomes assessed as inhibition of lipid peroxidation by TBA assay2009European journal of medicinal chemistry, Jan, Volume: 44, Issue:1
QSAR study of antioxidant activity of wine polyphenols.
AID379092Growth inhibition of BALB/c mouse cloned 3T3/A31 cells at 10 to 100 ug/mL after 72 hrs by nigrosin assay1999Journal of natural products, Mar, Volume: 62, Issue:3
Activities of plant-derived phenols in a fibroblast cell culture model
AID379092Growth inhibition of BALB/c mouse cloned 3T3/A31 cells at 10 to 100 ug/mL after 72 hrs by nigrosin assay1999Journal of natural products, Mar, Volume: 62, Issue:3
Activities of plant-derived phenols in a fibroblast cell culture model.
AID1103072Antifungal activity against Fusarium oxysporum at 12.5 to 25 ug/ml after 96 hr by spectrophotometry2004Journal of agricultural and food chemistry, Mar-10, Volume: 52, Issue:5
Phytotoxic and antimicrobial activities of catechin derivatives.
AID624606Specific activity of expressed human recombinant UGT1A12000Annual review of pharmacology and toxicology, , Volume: 40Human UDP-glucuronosyltransferases: metabolism, expression, and disease.
AID1063595Antiinflammatory activity in PMA-treated human THP1 cells assessed as LPS-induced TNFalpha secretion at 15 uM after 4 hrs by sandwich ELISA relative to control2014Bioorganic & medicinal chemistry, Jan-15, Volume: 22, Issue:2
Synthesis and anti-inflammatory activity of indole glucosinolates.
AID588213Literature-mined compound from Fourches et al multi-species drug-induced liver injury (DILI) dataset, effect in non-rodents2010Chemical research in toxicology, Jan, Volume: 23, Issue:1
Cheminformatics analysis of assertions mined from literature that describe drug-induced liver injury in different species.
AID537627Inhibition of Schistosoma mansoni recombinant NAD+ glycohydrolase expressed in Pichia pastoris by continuous fluorometric method2010Bioorganic & medicinal chemistry, Nov-15, Volume: 18, Issue:22
Identification by high-throughput screening of inhibitors of Schistosoma mansoni NAD(+) catabolizing enzyme.
AID773799Antioxidant activity assessed as trolox equivalent of ferric ion reducing activity using fe3+-TPTZ after 4 mins by FRAP assay2013Journal of natural products, Oct-25, Volume: 76, Issue:10
Examination of the phenolic profile and antioxidant activity of the leaves of the Australian native plant Smilax glyciphylla.
AID379055Cytotoxicity against human monocytes assessed as depletion of cellular LDH activity1999Journal of natural products, Mar, Volume: 62, Issue:3
Polymethoxylated flavones derived from citrus suppress tumor necrosis factor-alpha expression by human monocytes.
AID1103943Antifeedant activity against third-instar Epilachna paenulata measured assessed per cm2 leaf disk after 24 hr by leaf disk choice test2009Bioresource technology, Jul, Volume: 100, Issue:14
Antifeedant activity of ethanolic extract from Flourensia oolepis and isolation of pinocembrin as its active principle compound.
AID1070389Neuroprotective activity in mouse HT22 cells assessed as reduction of t-BOOH-induced oxidative stress at 40 uM preincubated for 3 hrs followed by t-BOOH induction measured for 20 hrs by time-resolved ECIS analysis2014Journal of natural products, Mar-28, Volume: 77, Issue:3
Flavonoids, flavonoid metabolites, and phenolic acids inhibit oxidative stress in the neuronal cell line HT-22 monitored by ECIS and MTT assay: a comparative study.
AID1066689Antiprotozoal activity against Giardia lamblia IMSS:1090:12014Journal of natural products, Feb-28, Volume: 77, Issue:2
Structure, absolute configuration, and antidiarrheal activity of a thymol derivative from Ageratina cylindrica.
AID356227Toxicity against brine shrimp2003Journal of natural products, Aug, Volume: 66, Issue:8
Xanthones and benzophenones from the stems of Garcinia multiflora.
AID677268Antioxidant activity against APPH radical assessed as trolox equivalent incubated for 15 mins prior to APPH addition measured every 1 min by 120 mins by fluorescein-based ORAC method2012Bioorganic & medicinal chemistry letters, Sep-01, Volume: 22, Issue:17
Antitrypanosomal and antioxidant properties of 4-hydroxycoumarins derivatives.
AID711623Toxicity in L4 larvae of Caenorhabditis elegans at 800 uM after 8 hrs2011Journal of natural products, Aug-26, Volume: 74, Issue:8
Diversity of polyphenol action in Caenorhabditis elegans: between toxicity and longevity.
AID711613Reduction of body length of L4 larvae of Caenorhabditis elegans at 200 uM by microscopic analysis2011Journal of natural products, Aug-26, Volume: 74, Issue:8
Diversity of polyphenol action in Caenorhabditis elegans: between toxicity and longevity.
AID1063600Antiinflammatory activity in PMA-treated human THP1 cells assessed as LPS-induced TNFalpha secretion at 5 uM after 4 hrs by sandwich ELISA relative to control2014Bioorganic & medicinal chemistry, Jan-15, Volume: 22, Issue:2
Synthesis and anti-inflammatory activity of indole glucosinolates.
AID711606Reduction of frequency of pharyngeal pumping in Caenorhabditis elegans at 200 uM on 3rd to 9th day of adulthood2011Journal of natural products, Aug-26, Volume: 74, Issue:8
Diversity of polyphenol action in Caenorhabditis elegans: between toxicity and longevity.
AID1616108Inhibition of F1F0-ATP synthase in Escherichia coli after 60 mins relative to control2019European journal of medicinal chemistry, Nov-15, Volume: 182Recent advancements in mechanistic studies and structure activity relationship of F
AID501904Inhibition of human carbonic anhydrase 2 after 15 mins by stopped flow CO2 hydration method2010Bioorganic & medicinal chemistry letters, Sep-01, Volume: 20, Issue:17
Carbonic anhydrase inhibitors. Antioxidant polyphenols effectively inhibit mammalian isoforms I-XV.
AID711622Increase of lifespan of L4 larvae of Caenorhabditis elegans after 8 hrs in presence of H2O22011Journal of natural products, Aug-26, Volume: 74, Issue:8
Diversity of polyphenol action in Caenorhabditis elegans: between toxicity and longevity.
AID379054Inhibition of TNFalpha expression in LPS-stimulated human monocytes treated 30 mins before LPS challenge measured after 14 hrs by ELISA1999Journal of natural products, Mar, Volume: 62, Issue:3
Polymethoxylated flavones derived from citrus suppress tumor necrosis factor-alpha expression by human monocytes.
AID1063604Antiinflammatory activity in PMA-treated human THP1 cells assessed as inhibition of LPS-induced TNFalpha secretion at 0.5 uM after 4 hrs by sandwich ELISA relative to control2014Bioorganic & medicinal chemistry, Jan-15, Volume: 22, Issue:2
Synthesis and anti-inflammatory activity of indole glucosinolates.
AID501910Inhibition of human carbonic anhydrase 7 after 15 mins by stopped flow CO2 hydration method2010Bioorganic & medicinal chemistry letters, Sep-01, Volume: 20, Issue:17
Carbonic anhydrase inhibitors. Antioxidant polyphenols effectively inhibit mammalian isoforms I-XV.
AID1055142Inhibition of reduced carboxymethylated-kappa-casein (unknown origin) conversion to amyloid fibrils at 0.1:1 to 2:1 compound to protein molar ratio after 1000 mins by thioflavin T fluorescence assay2013Bioorganic & medicinal chemistry letters, Dec-01, Volume: 23, Issue:23
Gallic acid is the major component of grape seed extract that inhibits amyloid fibril formation.
AID379089Growth inhibition of BALB/c mouse cloned 3T3/A31 cells after 72 hrs by nigrosin assay1999Journal of natural products, Mar, Volume: 62, Issue:3
Activities of plant-derived phenols in a fibroblast cell culture model
AID379089Growth inhibition of BALB/c mouse cloned 3T3/A31 cells after 72 hrs by nigrosin assay1999Journal of natural products, Mar, Volume: 62, Issue:3
Activities of plant-derived phenols in a fibroblast cell culture model.
AID711603Increase of frequency of pharyngeal pumping in Caenorhabditis elegans at 200 uM on 3rd to 9th day of adulthood2011Journal of natural products, Aug-26, Volume: 74, Issue:8
Diversity of polyphenol action in Caenorhabditis elegans: between toxicity and longevity.
AID366285Inhibition of Influenza A PR/8/34 H1N1 virus neuraminidase activity by MUN-ANA substrate based fluorimetric assay2008Bioorganic & medicinal chemistry, Aug-01, Volume: 16, Issue:15
Structure-activity relationship of flavonoids as influenza virus neuraminidase inhibitors and their in vitro anti-viral activities.
AID456319ABTS radical scavenging activity assessed as vitamin C equivalent antioxidant capacity2010Bioorganic & medicinal chemistry, Jan-01, Volume: 18, Issue:1
Reliability of bond dissociation enthalpy calculated by the PM6 method and experimental TEAC values in antiradical QSAR of flavonoids.
AID501915Inhibition of mouse carbonic anhydrase 15 after 15 mins by stopped flow CO2 hydration method2010Bioorganic & medicinal chemistry letters, Sep-01, Volume: 20, Issue:17
Carbonic anhydrase inhibitors. Antioxidant polyphenols effectively inhibit mammalian isoforms I-XV.
AID1103076Bactericidal activity against Erwinia amylovora at 1.6 ug/ml after 24 hr by BacLight bacterial viability fluorescence assay2004Journal of agricultural and food chemistry, Mar-10, Volume: 52, Issue:5
Phytotoxic and antimicrobial activities of catechin derivatives.
AID711616Reduction of initial reproduction rate in Caenorhabditis elegans assessed as first egg deposition at 200 uM after 85 hrs2011Journal of natural products, Aug-26, Volume: 74, Issue:8
Diversity of polyphenol action in Caenorhabditis elegans: between toxicity and longevity.
AID395150ABTS radical scavenging activity assessed as Trolox equivalent antioxidant capacity2009European journal of medicinal chemistry, Jan, Volume: 44, Issue:1
QSAR study of antioxidant activity of wine polyphenols.
AID711625Increase of lifespan of L4 larvae of Caenorhabditis elegans after 8 hrs2011Journal of natural products, Aug-26, Volume: 74, Issue:8
Diversity of polyphenol action in Caenorhabditis elegans: between toxicity and longevity.
AID711619Increase of lifespan of L4 larvae of Caenorhabditis elegans assessed as lifespan increasing concentration after 8 hrs2011Journal of natural products, Aug-26, Volume: 74, Issue:8
Diversity of polyphenol action in Caenorhabditis elegans: between toxicity and longevity.
AID712654Increase of lifespan of Caenorhabditis elegans assessed as trolox equivalent of lipid soluble antioxidant metabolites at 200 uM by photochemiluminescence assay2011Journal of natural products, Aug-26, Volume: 74, Issue:8
Diversity of polyphenol action in Caenorhabditis elegans: between toxicity and longevity.
AID330776Binding affinity to BCL22007Proceedings of the National Academy of Sciences of the United States of America, Dec-04, Volume: 104, Issue:49
Small molecule obatoclax (GX15-070) antagonizes MCL-1 and overcomes MCL-1-mediated resistance to apoptosis.
AID712653Increase of lifespan of Caenorhabditis elegans assessed as ascorbic acid equivalent of water soluble antioxidant metabolites at 200 uM by photochemiluminescence assay2011Journal of natural products, Aug-26, Volume: 74, Issue:8
Diversity of polyphenol action in Caenorhabditis elegans: between toxicity and longevity.
AID1103074Antifungal activity against Trichoderma reesei at 12.5 to 25 ug/ml after 96 hr by spectrophotometry2004Journal of agricultural and food chemistry, Mar-10, Volume: 52, Issue:5
Phytotoxic and antimicrobial activities of catechin derivatives.
AID767446Antioxidant activity assessed as ABTS free radical scavenging activity after 1 min2013European journal of medicinal chemistry, Sep, Volume: 67Regioselective synthesis of phenanthrenes and evaluation of their anti-oxidant based anti-inflammatory potential.
AID502077Inhibition of human carbonic anhydrase 9 after 15 mins by stopped flow CO2 hydration method2010Bioorganic & medicinal chemistry letters, Sep-01, Volume: 20, Issue:17
Carbonic anhydrase inhibitors. Antioxidant polyphenols effectively inhibit mammalian isoforms I-XV.
AID1083149Nematotoxic activity against freshly hatched Meloidogyne incognita J2 (root-knot nematode) isolated from tomato roots assessed as induction of nematode paralysis measured 24 hr after immersion in compound test solutions2012Journal of agricultural and food chemistry, Nov-28, Volume: 60, Issue:47
Nematotoxic phenolic compounds from Melia azedarach against Meloidogyne incognita.
AID263481Effect on CumOOH-induced oxidative damage of herring sperm DNA assessed as reduction in 8-OHdG level2006Bioorganic & medicinal chemistry letters, Apr-01, Volume: 16, Issue:7
Polyhydroxylated 4-thiaflavans as multipotent antioxidants: protective effect on oxidative DNA damage in vitro.
AID1073292Antiinflammatory activity in human THP1 cells assessed as inhibition of LPS-induced TNF-alpha release measured as TNF-alpha level at 5 uM after 4hrs by ELISA relative to control2013Bioorganic & medicinal chemistry, Oct-01, Volume: 21, Issue:19
Synthesis and anti-inflammatory activity of aromatic glucosinolates.
AID755047Antioxidant activity assessed as inhibition of AAPH-induced peroxyl radical formation by ORAC-FL assay relative to trolox2013Bioorganic & medicinal chemistry, Jul-01, Volume: 21, Issue:13
Remarkable antioxidant properties of a series of hydroxy-3-arylcoumarins.
AID502270Inhibition of RNase A-mediated degradation of yeast tRNA assessed as residual tRNA band by agarose gel electrophoresis relative to control2010Bioorganic & medicinal chemistry, Sep-01, Volume: 18, Issue:17
Synthesis and ribonuclease A inhibition activity of resorcinol and phloroglucinol derivatives of catechin and epicatechin: Importance of hydroxyl groups.
AID1103073Antifungal activity against Hypocrea rufa at 12.5 to 25 ug/ml after 96 hr by spectrophotometry2004Journal of agricultural and food chemistry, Mar-10, Volume: 52, Issue:5
Phytotoxic and antimicrobial activities of catechin derivatives.
AID501913Inhibition of human carbonic anhydrase 13 after 15 mins by stopped flow CO2 hydration method2010Bioorganic & medicinal chemistry letters, Sep-01, Volume: 20, Issue:17
Carbonic anhydrase inhibitors. Antioxidant polyphenols effectively inhibit mammalian isoforms I-XV.
AID1103070Antifungal activity against Penicillium sp. at 12.5 to 25 ug/ml after 96 hr by spectrophotometry2004Journal of agricultural and food chemistry, Mar-10, Volume: 52, Issue:5
Phytotoxic and antimicrobial activities of catechin derivatives.
AID773798Antioxidant activity assessed as trolox equivalent of DPPH scavenging activity after 4 mins by spectrophotometry2013Journal of natural products, Oct-25, Volume: 76, Issue:10
Examination of the phenolic profile and antioxidant activity of the leaves of the Australian native plant Smilax glyciphylla.
AID588519A screen for compounds that inhibit viral RNA polymerase binding and polymerization activities2011Antiviral research, Sep, Volume: 91, Issue:3
High-throughput screening identification of poliovirus RNA-dependent RNA polymerase inhibitors.
AID540299A screen for compounds that inhibit the MenB enzyme of Mycobacterium tuberculosis2010Bioorganic & medicinal chemistry letters, Nov-01, Volume: 20, Issue:21
Synthesis and SAR studies of 1,4-benzoxazine MenB inhibitors: novel antibacterial agents against Mycobacterium tuberculosis.
AID1159607Screen for inhibitors of RMI FANCM (MM2) intereaction2016Journal of biomolecular screening, Jul, Volume: 21, Issue:6
A High-Throughput Screening Strategy to Identify Protein-Protein Interaction Inhibitors That Block the Fanconi Anemia DNA Repair Pathway.
AID1805801Various Assay from Article 10.1021/acs.jmedchem.1c00409: \\Perspectives on SARS-CoV-2 Main Protease Inhibitors.\\2021Journal of medicinal chemistry, 12-09, Volume: 64, Issue:23
Perspectives on SARS-CoV-2 Main Protease Inhibitors.
AID504810Antagonists of the Thyroid Stimulating Hormone Receptor: HTS campaign2010Endocrinology, Jul, Volume: 151, Issue:7
A small molecule inverse agonist for the human thyroid-stimulating hormone receptor.
AID588499High-throughput multiplex microsphere screening for inhibitors of toxin protease, specifically Botulinum neurotoxin light chain A protease, MLPCN compound set2010Current protocols in cytometry, Oct, Volume: Chapter 13Microsphere-based flow cytometry protease assays for use in protease activity detection and high-throughput screening.
AID588499High-throughput multiplex microsphere screening for inhibitors of toxin protease, specifically Botulinum neurotoxin light chain A protease, MLPCN compound set2006Cytometry. Part A : the journal of the International Society for Analytical Cytology, May, Volume: 69, Issue:5
Microsphere-based protease assays and screening application for lethal factor and factor Xa.
AID588499High-throughput multiplex microsphere screening for inhibitors of toxin protease, specifically Botulinum neurotoxin light chain A protease, MLPCN compound set2010Assay and drug development technologies, Feb, Volume: 8, Issue:1
High-throughput multiplex flow cytometry screening for botulinum neurotoxin type a light chain protease inhibitors.
AID1745845Primary qHTS for Inhibitors of ATXN expression
AID651635Viability Counterscreen for Primary qHTS for Inhibitors of ATXN expression
AID588497High-throughput multiplex microsphere screening for inhibitors of toxin protease, specifically Botulinum neurotoxin light chain F protease, MLPCN compound set2010Current protocols in cytometry, Oct, Volume: Chapter 13Microsphere-based flow cytometry protease assays for use in protease activity detection and high-throughput screening.
AID588497High-throughput multiplex microsphere screening for inhibitors of toxin protease, specifically Botulinum neurotoxin light chain F protease, MLPCN compound set2006Cytometry. Part A : the journal of the International Society for Analytical Cytology, May, Volume: 69, Issue:5
Microsphere-based protease assays and screening application for lethal factor and factor Xa.
AID588497High-throughput multiplex microsphere screening for inhibitors of toxin protease, specifically Botulinum neurotoxin light chain F protease, MLPCN compound set2010Assay and drug development technologies, Feb, Volume: 8, Issue:1
High-throughput multiplex flow cytometry screening for botulinum neurotoxin type a light chain protease inhibitors.
AID588501High-throughput multiplex microsphere screening for inhibitors of toxin protease, specifically Lethal Factor Protease, MLPCN compound set2010Current protocols in cytometry, Oct, Volume: Chapter 13Microsphere-based flow cytometry protease assays for use in protease activity detection and high-throughput screening.
AID588501High-throughput multiplex microsphere screening for inhibitors of toxin protease, specifically Lethal Factor Protease, MLPCN compound set2006Cytometry. Part A : the journal of the International Society for Analytical Cytology, May, Volume: 69, Issue:5
Microsphere-based protease assays and screening application for lethal factor and factor Xa.
AID588501High-throughput multiplex microsphere screening for inhibitors of toxin protease, specifically Lethal Factor Protease, MLPCN compound set2010Assay and drug development technologies, Feb, Volume: 8, Issue:1
High-throughput multiplex flow cytometry screening for botulinum neurotoxin type a light chain protease inhibitors.
AID504812Inverse Agonists of the Thyroid Stimulating Hormone Receptor: HTS campaign2010Endocrinology, Jul, Volume: 151, Issue:7
A small molecule inverse agonist for the human thyroid-stimulating hormone receptor.
AID697852Inhibition of electric eel AChE at 2 mg/ml by Ellman's method2012Bioorganic & medicinal chemistry, Nov-15, Volume: 20, Issue:22
Exploration of natural compounds as sources of new bifunctional scaffolds targeting cholinesterases and beta amyloid aggregation: the case of chelerythrine.
AID697853Inhibition of horse BChE at 2 mg/ml by Ellman's method2012Bioorganic & medicinal chemistry, Nov-15, Volume: 20, Issue:22
Exploration of natural compounds as sources of new bifunctional scaffolds targeting cholinesterases and beta amyloid aggregation: the case of chelerythrine.
AID521220Inhibition of neurosphere proliferation of mouse neural precursor cells by MTT assay2007Nature chemical biology, May, Volume: 3, Issue:5
Chemical genetics reveals a complex functional ground state of neural stem cells.
AID651635Viability Counterscreen for Primary qHTS for Inhibitors of ATXN expression
AID588499High-throughput multiplex microsphere screening for inhibitors of toxin protease, specifically Botulinum neurotoxin light chain A protease, MLPCN compound set2010Current protocols in cytometry, Oct, Volume: Chapter 13Microsphere-based flow cytometry protease assays for use in protease activity detection and high-throughput screening.
AID588499High-throughput multiplex microsphere screening for inhibitors of toxin protease, specifically Botulinum neurotoxin light chain A protease, MLPCN compound set2006Cytometry. Part A : the journal of the International Society for Analytical Cytology, May, Volume: 69, Issue:5
Microsphere-based protease assays and screening application for lethal factor and factor Xa.
AID588499High-throughput multiplex microsphere screening for inhibitors of toxin protease, specifically Botulinum neurotoxin light chain A protease, MLPCN compound set2010Assay and drug development technologies, Feb, Volume: 8, Issue:1
High-throughput multiplex flow cytometry screening for botulinum neurotoxin type a light chain protease inhibitors.
AID588497High-throughput multiplex microsphere screening for inhibitors of toxin protease, specifically Botulinum neurotoxin light chain F protease, MLPCN compound set2010Current protocols in cytometry, Oct, Volume: Chapter 13Microsphere-based flow cytometry protease assays for use in protease activity detection and high-throughput screening.
AID588497High-throughput multiplex microsphere screening for inhibitors of toxin protease, specifically Botulinum neurotoxin light chain F protease, MLPCN compound set2006Cytometry. Part A : the journal of the International Society for Analytical Cytology, May, Volume: 69, Issue:5
Microsphere-based protease assays and screening application for lethal factor and factor Xa.
AID588497High-throughput multiplex microsphere screening for inhibitors of toxin protease, specifically Botulinum neurotoxin light chain F protease, MLPCN compound set2010Assay and drug development technologies, Feb, Volume: 8, Issue:1
High-throughput multiplex flow cytometry screening for botulinum neurotoxin type a light chain protease inhibitors.
AID1745845Primary qHTS for Inhibitors of ATXN expression
AID588501High-throughput multiplex microsphere screening for inhibitors of toxin protease, specifically Lethal Factor Protease, MLPCN compound set2010Current protocols in cytometry, Oct, Volume: Chapter 13Microsphere-based flow cytometry protease assays for use in protease activity detection and high-throughput screening.
AID588501High-throughput multiplex microsphere screening for inhibitors of toxin protease, specifically Lethal Factor Protease, MLPCN compound set2006Cytometry. Part A : the journal of the International Society for Analytical Cytology, May, Volume: 69, Issue:5
Microsphere-based protease assays and screening application for lethal factor and factor Xa.
AID588501High-throughput multiplex microsphere screening for inhibitors of toxin protease, specifically Lethal Factor Protease, MLPCN compound set2010Assay and drug development technologies, Feb, Volume: 8, Issue:1
High-throughput multiplex flow cytometry screening for botulinum neurotoxin type a light chain protease inhibitors.
AID504810Antagonists of the Thyroid Stimulating Hormone Receptor: HTS campaign2010Endocrinology, Jul, Volume: 151, Issue:7
A small molecule inverse agonist for the human thyroid-stimulating hormone receptor.
AID504812Inverse Agonists of the Thyroid Stimulating Hormone Receptor: HTS campaign2010Endocrinology, Jul, Volume: 151, Issue:7
A small molecule inverse agonist for the human thyroid-stimulating hormone receptor.
AID492140Antioxidant activity assessed as formazan formation induced absorbance changes at 25 ppm at 570 nm at 37 degC for 6 hrs by MTT assay2010Journal of natural products, Jul-23, Volume: 73, Issue:7
An efficient and economical MTT assay for determining the antioxidant activity of plant natural product extracts and pure compounds.
AID1080599Phytotoxic activity against Amaranthus retroflexus assessed as inhibition of hypocotyl growth at 22 +/-2 degC after 72 hr2009Journal of agricultural and food chemistry, Apr-08, Volume: 57, Issue:7
Level of catechin, myricetin, quercetin and isoquercitrin in buckwheat (Fagopyrum esculentum Moench), changes of their levels during vegetation and their effect on the growth of selected weeds.
AID1264954Cytotoxicity against human MSC assessed as cell viability at 5 uM treated for 3 days measured on day 4 by alamar blue assay (Rvb = 97 to 100%)2015Journal of natural products, Nov-25, Volume: 78, Issue:11
Defining Key Structural Determinants for the Pro-osteogenic Activity of Flavonoids.
AID1066694Inhibition of Leishmania amazonensis recombinant arginase expressed in Escherichia coli Rosetta (DE3) pLysS using L-arginine as substrate incubated for 10 mins prior to substrate addition measured after 10 mins by colorimetry2014Journal of natural products, Feb-28, Volume: 77, Issue:2
Isolation of arginase inhibitors from the bioactivity-guided fractionation of Byrsonima coccolobifolia leaves and stems.
AID1591908Inhibition of porcine pancreatic lipase using pNPB as substrate measured after 30 mins using plasma treated sample2019Bioorganic & medicinal chemistry letters, 08-15, Volume: 29, Issue:16
A new approach to procyanidins synthesis with potent anti-adipogenic effects.
AID690143Inhibition of oleic acid-induced triglyceride over-accumulation in human HepG2 cells incubated for 24 hrs relative to untreated control2011European journal of medicinal chemistry, Sep, Volume: 46, Issue:9
Comparative study on antioxidant capacity of flavonoids and their inhibitory effects on oleic acid-induced hepatic steatosis in vitro.
AID1103072Antifungal activity against Fusarium oxysporum at 12.5 to 25 ug/ml after 96 hr by spectrophotometry2004Journal of agricultural and food chemistry, Mar-10, Volume: 52, Issue:5
Phytotoxic and antimicrobial activities of catechin derivatives.
AID538214Antiaggregatory activity in human platelets assessed as inhibition of collagen-induced platelet aggregation by aggregometry2010Bioorganic & medicinal chemistry letters, Dec-15, Volume: 20, Issue:24
Ixorapeptide I and ixorapeptide II, bioactive peptides isolated from Ixora coccinea.
AID311581Antioxidant activity assessed as superoxide anion radical scavenging activity2007Journal of natural products, Oct, Volume: 70, Issue:10
Structures and radical-scavenging activities of phenolic constituents from the bark of Picea jezoensis var. jezoensis.
AID768893Inhibition of human thrombin assessed as equilibrium association constant at 50 to 1000 uM by BIAcore analysis2014Medicinal chemistry research : an international journal for rapid communications on design and mechanisms of action of biologically active agents, , Volume: 23Thrombin inhibitory activity of some polyphenolic compounds.
AID977599Inhibition of sodium fluorescein uptake in OATP1B1-transfected CHO cells at an equimolar substrate-inhibitor concentration of 10 uM2013Molecular pharmacology, Jun, Volume: 83, Issue:6
Structure-based identification of OATP1B1/3 inhibitors.
AID399405Inhibition of sheep placental cotyledons COX2 assessed as PGE2 production preincubated for 10 mins1998Journal of natural products, Jan, Volume: 61, Issue:1
Development of a radiochemical cyclooxygenase-1 and -2 in vitro assay for identification of natural products as inhibitors of prostaglandin biosynthesis.
AID1264951Cytotoxicity against human MSC assessed as cell viability at 5 uM measured on day 1 by alamar blue assay (Rvb = 97 to 101%)2015Journal of natural products, Nov-25, Volume: 78, Issue:11
Defining Key Structural Determinants for the Pro-osteogenic Activity of Flavonoids.
AID1316657Antineuroinflammatory activity in human BV2 cells assessed as inhibition of LPS-induced NO production after 24 hrs in presence of LPS by Griess reaction2016Bioorganic & medicinal chemistry letters, 10-15, Volume: 26, Issue:20
Bioactive phenols as potential neuroinflammation inhibitors from the leaves of Xanthoceras sorbifolia Bunge.
AID1175719Antimalarial activity against chloroquine /mefloquine/pyrimethamine-resistant Plasmodium falciparum C235 by malaria SYBR green 1-based fluorescence (MSF) assay2015Bioorganic & medicinal chemistry letters, Jan-15, Volume: 25, Issue:2
The synthesis, antimalarial activity and CoMFA analysis of novel aminoalkylated quercetin analogs.
AID1264947Induction of osteogenic differentiation in human MSC assessed as increase in ALP activity at 10 uM using p-NPP as substrate after 9 days by colorimetric method relative to control2015Journal of natural products, Nov-25, Volume: 78, Issue:11
Defining Key Structural Determinants for the Pro-osteogenic Activity of Flavonoids.
AID333439Inhibition of peroxidase activity of COX1 in heep seminal vesicle by TMPD assay2004Journal of natural products, Nov, Volume: 67, Issue:11
Mechanism-based inactivation of COX-1 by red wine m-hydroquinones: a structure-activity relationship study.
AID1744548Inhibition of cytochrome c (unknown origin) assessed as reduction in cyt c-CL peroxidase activity at 10 uM up to 20 mins in presence of cardiolipin by Amplex red staining based fluorescence assay relative to control2021Bioorganic & medicinal chemistry, 03-01, Volume: 33A role of flavonoids in cytochrome c-cardiolipin interactions.
AID293297Antioxidant activity assessed as DPPH radical scavenging activity after 20 min2007Bioorganic & medicinal chemistry, Feb-15, Volume: 15, Issue:4
Improved quantitative structure-activity relationship models to predict antioxidant activity of flavonoids in chemical, enzymatic, and cellular systems.
AID1075726Inhibition of alpha-glucosidase (unknown origin) using p-NPG as substrate assessed as p-nitrophenol formation incubated for 20 mins prior to substrate addition measured after 30 mins by UV-spectrophotometry2014Bioorganic & medicinal chemistry letters, Mar-15, Volume: 24, Issue:6
Potential α-glucosidase inhibitors from thermal transformation of (+)-catechin.
AID1083156Antifungal activity against Diplodia seriata LAT28 assessed as growth inhibition measured after 1 to 10 days2012Journal of agricultural and food chemistry, Dec-05, Volume: 60, Issue:48
Phenolics and their antifungal role in grapevine wood decay: focus on the Botryosphaeriaceae family.
AID1417093Inhibition of recombinant oligo-histidine-tagged Leishmania major DHODH expressed in Escherichia coli BL21(DE3) cells at 100 uM using DHO as substrate measured after 60 secs2018European journal of medicinal chemistry, Sep-05, Volume: 157Natural products as inhibitors of Leishmania major dihydroorotate dehydrogenase.
AID774310Antiprotozoal activity against clinical isolates of Entamoeba histolytica HM-1:IMSS2013Journal of natural products, Oct-25, Volume: 76, Issue:10
Hydroxyclerodanes from Salvia shannoni.
AID1264957Cytotoxicity against human MSC assessed as cell viability at 5 uM treated for 6 days measured on day 7 by alamar blue assay (Rvb = 96 to 101%)2015Journal of natural products, Nov-25, Volume: 78, Issue:11
Defining Key Structural Determinants for the Pro-osteogenic Activity of Flavonoids.
AID311280Antagonist activity at human kappa opioid receptor expressed in CHO cells by [35S]GTP-gamma-S assay2007Journal of natural products, Aug, Volume: 70, Issue:8
Flavonoids as opioid receptor ligands: identification and preliminary structure-activity relationships.
AID380217Antimicrobial activity against Pseudomonas aeruginosa1999Journal of natural products, Jul, Volume: 62, Issue:7
Biological evaluation of proanthocyanidin dimers and related polyphenols.
AID768895Inhibition of human thrombin assessed as response unit at 1000 uM by BIAcore analysis2014Medicinal chemistry research : an international journal for rapid communications on design and mechanisms of action of biologically active agents, , Volume: 23Thrombin inhibitory activity of some polyphenolic compounds.
AID456183Inhibition of reduced carboxymethylated kappa-casein fibril formation at 50 ug/mL measured every 5 mins after 1000 mins by thioflavin T staining-based binding assay2010Bioorganic & medicinal chemistry, Jan-01, Volume: 18, Issue:1
Carboxymethylated-kappa-casein: a convenient tool for the identification of polyphenolic inhibitors of amyloid fibril formation.
AID399404Inhibition of bovine seminal microsomal COX1 assessed as PGE2 production preincubated for 10 mins1998Journal of natural products, Jan, Volume: 61, Issue:1
Development of a radiochemical cyclooxygenase-1 and -2 in vitro assay for identification of natural products as inhibitors of prostaglandin biosynthesis.
AID1103082Antibacterial activity against Pseudomonas fluorescens after 24 hr by spectrophotometry2004Journal of agricultural and food chemistry, Mar-10, Volume: 52, Issue:5
Phytotoxic and antimicrobial activities of catechin derivatives.
AID265764Inhibition of FabI at 100 uM2006Journal of medicinal chemistry, Jun-01, Volume: 49, Issue:11
Inhibition of Plasmodium falciparum fatty acid biosynthesis: evaluation of FabG, FabZ, and FabI as drug targets for flavonoids.
AID468509Antibacterial activity against Staphylococcus aureus ATCC 25923 after 24 hrs by NCCLS method2010European journal of medicinal chemistry, Mar, Volume: 45, Issue:3
Synthesis and antimicrobial activities of 3-O-alkyl analogues of (+)-catechin: improvement of stability and proposed action mechanism.
AID379516Cytotoxicity against human A549 cells after 96 hrs by MTT assay2006Journal of natural products, Nov, Volume: 69, Issue:11
A nitrogen-containing 3-alkyl-1,4-benzoquinone and a gomphilactone derivative from Embelia ribes.
AID1083163Antifungal activity against Botryosphaeria dothidea OGE14 assessed as growth inhibition measured after 1 to 10 days relative to control2012Journal of agricultural and food chemistry, Dec-05, Volume: 60, Issue:48
Phenolics and their antifungal role in grapevine wood decay: focus on the Botryosphaeriaceae family.
AID1417124Antitrypanosomal activity against Trypanosoma cruzi Tulahuen C2C4 trypomastigotes infected in rat skeletal myoblasts L-6 cells after 96 hrs by CPRG/Nonidet reagent based spectrophotometric method2018European journal of medicinal chemistry, Sep-05, Volume: 157Natural products as inhibitors of Leishmania major dihydroorotate dehydrogenase.
AID641102Inhibition of Hepatitic C virus NS3/4A protease by FRET assay2012Bioorganic & medicinal chemistry letters, Jan-15, Volume: 22, Issue:2
Inhibitory effects of polyphenols toward HCV from the mangrove plant Excoecaria agallocha L.
AID1428745Antioxidant activity assessed as second order rate constant for galvinoxyl radical scavenging activity by UV-vis spectrophotometry2017Bioorganic & medicinal chemistry letters, 02-15, Volume: 27, Issue:4
Synthesis and antioxidant activity of a procyanidin B3 analogue.
AID468510Antibacterial activity against Micrococcus luteus ATCC 10240 after 24 hrs by NCCLS method2010European journal of medicinal chemistry, Mar, Volume: 45, Issue:3
Synthesis and antimicrobial activities of 3-O-alkyl analogues of (+)-catechin: improvement of stability and proposed action mechanism.
AID598747Induction of osteoclast differentiation in mouse RAW264 cells assessed as TRAP activity2011Bioorganic & medicinal chemistry letters, Jun-01, Volume: 21, Issue:11
Osteogenic activity of diphenyl ether-type cyclic diarylheptanoids derived from Acer nikoense.
AID768897Inhibition of human thrombin assessed as decrease in platelet aggregation at 125 to 1000 uM preincubated for 10 mins measured for 10 mins by dual channel chrono-log aggregometric analysis2014Medicinal chemistry research : an international journal for rapid communications on design and mechanisms of action of biologically active agents, , Volume: 23Thrombin inhibitory activity of some polyphenolic compounds.
AID1103079Antibacterial activity against Pectobacterium carotovorum after 24 hr by spectrophotometry2004Journal of agricultural and food chemistry, Mar-10, Volume: 52, Issue:5
Phytotoxic and antimicrobial activities of catechin derivatives.
AID468516Antibacterial activity against Klebsiella pneumoniae ATCC 10031 after 24 hrs by NCCLS method2010European journal of medicinal chemistry, Mar, Volume: 45, Issue:3
Synthesis and antimicrobial activities of 3-O-alkyl analogues of (+)-catechin: improvement of stability and proposed action mechanism.
AID596672Induction of adipogenesis in mouse 3T3L1 cells assessed as increase in triglyceride level at 10 uM on day 8 relative to control2011Bioorganic & medicinal chemistry, May-01, Volume: 19, Issue:9
Structural requirements of flavonoids for the adipogenesis of 3T3-L1 cells.
AID332219Inhibition of DMBA-induced preneoplastic lesions in mouse mammary gland organ culture at 10 ug/mL2002Journal of natural products, Feb, Volume: 65, Issue:2
Constituents of the bark and twigs of Artocarpus dadah with cyclooxygenase inhibitory activity.
AID399401Inhibition of bovine seminal microsomal COX1 assessed as PGE2 production1998Journal of natural products, Jan, Volume: 61, Issue:1
Development of a radiochemical cyclooxygenase-1 and -2 in vitro assay for identification of natural products as inhibitors of prostaglandin biosynthesis.
AID1696140Anticancer activity against human PANC-1 cells assessed as reduction in cell viability in nutrient-deprived medium after 24 hrs by WST-8 assay
AID358165Cytotoxicity against human PRMI7951 cells by tetrazolium salt-based colorimetric assay1992Journal of natural products, Aug, Volume: 55, Issue:8
Antitumor agents, 129. Tannins and related compounds as selective cytotoxic agents.
AID768929Inhibition of human thrombin amidolytic activity using D-Phe-Pip-Arg-pNA as substrate preincubated for 10 mins followed by substrate addition measured every 12 secs for 10 mins by spectrophotometric analysis2014Medicinal chemistry research : an international journal for rapid communications on design and mechanisms of action of biologically active agents, , Volume: 23Thrombin inhibitory activity of some polyphenolic compounds.
AID338036Hepatoprotective activity against carbon tetrachloride-induced hepatotoxicity in fasted Sprague-Dawley rat hepatocytes assessed as serum glutamate pyruvate transaminase release at 1 mg/ml administered before 10 mins of carbon tetrachloride challenge measu
AID403341Inhibition of COX12005Journal of natural products, Jul, Volume: 68, Issue:7
Expanding the ChemGPS chemical space with natural products.
AID1103074Antifungal activity against Trichoderma reesei at 12.5 to 25 ug/ml after 96 hr by spectrophotometry2004Journal of agricultural and food chemistry, Mar-10, Volume: 52, Issue:5
Phytotoxic and antimicrobial activities of catechin derivatives.
AID1264958Cytotoxicity against human MSC assessed as cell viability at 10 uM treated for 6 days measured on day 7 by alamar blue assay (Rvb = 96 to 101%)2015Journal of natural products, Nov-25, Volume: 78, Issue:11
Defining Key Structural Determinants for the Pro-osteogenic Activity of Flavonoids.
AID1080602Phytotoxic activity against Lolium perenne (perennial ryegrass) assessed as inhibition of hypocotyl growth at 22 +/-2 degC after 72 hr2009Journal of agricultural and food chemistry, Apr-08, Volume: 57, Issue:7
Level of catechin, myricetin, quercetin and isoquercitrin in buckwheat (Fagopyrum esculentum Moench), changes of their levels during vegetation and their effect on the growth of selected weeds.
AID1265118Inhibition of recombinant human N-terminal His6-tagged AKR1B10 expressed in Escherichia coli BL21 cells using all-trans-retinal as substrate at 20 uM incubated for 15 mins by HPLC method2015Journal of natural products, Nov-25, Volume: 78, Issue:11
Flavones Inhibit the Activity of AKR1B10, a Promising Therapeutic Target for Cancer Treatment.
AID311282Antagonist activity at human delta opioid receptor expressed in CHO cells by [35S]GTPgammaS assay2007Journal of natural products, Aug, Volume: 70, Issue:8
Flavonoids as opioid receptor ligands: identification and preliminary structure-activity relationships.
AID1080604Phytotoxic activity against Achillea millefolium assessed as inhibition of hypocotyl growth at 22 +/-2 degC after 72 hr2009Journal of agricultural and food chemistry, Apr-08, Volume: 57, Issue:7
Level of catechin, myricetin, quercetin and isoquercitrin in buckwheat (Fagopyrum esculentum Moench), changes of their levels during vegetation and their effect on the growth of selected weeds.
AID332930Cytotoxicity against human H9 cells after 3 days1994Journal of natural products, Jan, Volume: 57, Issue:1
Anti-AIDS agents, 10. Acacetin-7-O-beta-D-galactopyranoside, an anti-HIV principle from Chrysanthemum morifolium and a structure-activity correlation with some related flavonoids.
AID1083161Antifungal activity against Neofusicoccum parvum PER20 assessed as growth inhibition measured after 1 to 10 days2012Journal of agricultural and food chemistry, Dec-05, Volume: 60, Issue:48
Phenolics and their antifungal role in grapevine wood decay: focus on the Botryosphaeriaceae family.
AID1705065Inhibition of biotinylated 5-(4-((Z)-3-Carboxy-3-hydroxyacryloyl)-4-(4-chlorobenzyl)piperidine-1-carbonyl)-2-((13,35-dioxo-39-((3aR,4R,6aS)-2-oxohexahydro-1H-thieno[3,4-d]imidazole-4-yl)-3,6,9,16,19,22,25,28,31-nonaoxa-12,34-diazanonatriacontyl)oxy)benzoi2020European journal of medicinal chemistry, Dec-15, Volume: 208Unraveling the anti-influenza effect of flavonoids: Experimental validation of luteolin and its congeners as potent influenza endonuclease inhibitors.
AID650645Antioxidant activity assessed as DPPH radical scavenging activity after 30 mins by spectrophotometry2012Bioorganic & medicinal chemistry, Apr-01, Volume: 20, Issue:7
Tea catechins and flavonoids from the leaves of Camellia sinensis inhibit yeast alcohol dehydrogenase.
AID470814Inhibition of bovine pancreatic RNase A assessed as degradation of 18s rRNA after 1 hr by agarose gel based assay2009Bioorganic & medicinal chemistry letters, Dec-15, Volume: 19, Issue:24
Design, synthesis and bioactivity of catechin/epicatechin and 2-azetidinone derived chimeric molecules.
AID1080605Phytotoxic activity against Trifolium repens assessed as inhibition of root growth at 22 +/-2 degC after 72 hr2009Journal of agricultural and food chemistry, Apr-08, Volume: 57, Issue:7
Level of catechin, myricetin, quercetin and isoquercitrin in buckwheat (Fagopyrum esculentum Moench), changes of their levels during vegetation and their effect on the growth of selected weeds.
AID1366623Antioxidant activity assessed as second order rate constant for galvinoxyl radical scavenging activity in presence of deaerated conditions by UV-Vis spectrophotometric analysis2017Bioorganic & medicinal chemistry letters, 11-15, Volume: 27, Issue:22
Enhanced radical scavenging activity of a procyanidin B3 analogue comprised of a dimer of planar catechin.
AID380220Modulation of alternative complement pathway system assessed as hemoglobin release by spectrophotometry1999Journal of natural products, Jul, Volume: 62, Issue:7
Biological evaluation of proanthocyanidin dimers and related polyphenols.
AID333443Inactivation of holo-COX1 in sheep seminal vesicle assessed as drug oxidization at 2.5 to 4 nmol by RP-HPLC in presence of hydrogen peroxide2004Journal of natural products, Nov, Volume: 67, Issue:11
Mechanism-based inactivation of COX-1 by red wine m-hydroquinones: a structure-activity relationship study.
AID336872Antihyperlipidemic effect in high fat diet-induced rat assessed as decrease in serum triglyceride level at 10 mg/kg, ip relative to control
AID456188Inhibition of beta amyloid (1 to 40) fibril formation by thioflavin T staining-based binding assay2010Bioorganic & medicinal chemistry, Jan-01, Volume: 18, Issue:1
Carboxymethylated-kappa-casein: a convenient tool for the identification of polyphenolic inhibitors of amyloid fibril formation.
AID399340Inhibition of xanthine oxidase assessed as decrease in uric acid production by spectrophotometry1998Journal of natural products, Jan, Volume: 61, Issue:1
Structure-activity relationship and classification of flavonoids as inhibitors of xanthine oxidase and superoxide scavengers.
AID403340Inhibition of COX22005Journal of natural products, Jul, Volume: 68, Issue:7
Expanding the ChemGPS chemical space with natural products.
AID596670Induction of adipogenesis in mouse 3T3L1 cells assessed as increase in triglyceride level at 1 uM on day 8 relative to control2011Bioorganic & medicinal chemistry, May-01, Volume: 19, Issue:9
Structural requirements of flavonoids for the adipogenesis of 3T3-L1 cells.
AID1264955Cytotoxicity against human MSC assessed as cell viability at 10 uM treated for 3 days measured on day 4 by alamar blue assay (Rvb = 97 to 100%)2015Journal of natural products, Nov-25, Volume: 78, Issue:11
Defining Key Structural Determinants for the Pro-osteogenic Activity of Flavonoids.
AID468520Antifungal activity against Candida tropicalis IFO 10241 after 24 to 72 hrs by NCCLS method2010European journal of medicinal chemistry, Mar, Volume: 45, Issue:3
Synthesis and antimicrobial activities of 3-O-alkyl analogues of (+)-catechin: improvement of stability and proposed action mechanism.
AID293298Antioxidant activity assessed as inhibition of superoxide production by xanthine/xanthine oxidase method2007Bioorganic & medicinal chemistry, Feb-15, Volume: 15, Issue:4
Improved quantitative structure-activity relationship models to predict antioxidant activity of flavonoids in chemical, enzymatic, and cellular systems.
AID332646Inhibition of human DNA topoisomerase 2 catalytic domain-mediated knotted bacteriophage P4Virl dell0 DNA unknotting up to 100 uM by agarose gel electrophoresis1995Journal of natural products, Feb, Volume: 58, Issue:2
Flavonoids as DNA topoisomerase antagonists and poisons: structure-activity relationships.
AID380218Antimicrobial activity against Escherichia coli1999Journal of natural products, Jul, Volume: 62, Issue:7
Biological evaluation of proanthocyanidin dimers and related polyphenols.
AID1080600Phytotoxic activity against Sinapis alba assessed as inhibition of hypocotyl growth at 22 +/-2 degC after 72 hr2009Journal of agricultural and food chemistry, Apr-08, Volume: 57, Issue:7
Level of catechin, myricetin, quercetin and isoquercitrin in buckwheat (Fagopyrum esculentum Moench), changes of their levels during vegetation and their effect on the growth of selected weeds.
AID339057Inhibition of Moloney murine leukemia virus reverse transcriptase using (ribocytidylic acid)n(deoxyguanylic acid)12-18 as template primer by liquid scintillation counting1992Journal of natural products, Feb, Volume: 55, Issue:2
Inhibitory effects of flavonoids on Moloney murine leukemia virus reverse transcriptase activity.
AID1417122Antileishmanial activity against Leishmania donovani MHOM/ET/67/L82 amastigotes after 72 hrs by Alamar Blue assay2018European journal of medicinal chemistry, Sep-05, Volume: 157Natural products as inhibitors of Leishmania major dihydroorotate dehydrogenase.
AID1193988Inhibition of LPS-induced IL-12 p40 production in wild-type C57BL/6 mouse BMDC pretreated with compound for 1 hr before LPS treatment measured 16 hrs by ELISA2015Bioorganic & medicinal chemistry letters, Apr-01, Volume: 25, Issue:7
Chemical constituents from Kandelia candel with their inhibitory effects on pro-inflammatory cytokines production in LPS-stimulated bone marrow-derived dendritic cells (BMDCs).
AID358168Cytotoxicity against human HCT8 cells by tetrazolium salt-based colorimetric assay1992Journal of natural products, Aug, Volume: 55, Issue:8
Antitumor agents, 129. Tannins and related compounds as selective cytotoxic agents.
AID1175717Antimalarial activity against chloroquine-resistant/mefloquine-sensitive Plasmodium falciparum W2 by malaria SYBR green 1-based fluorescence (MSF) assay2015Bioorganic & medicinal chemistry letters, Jan-15, Volume: 25, Issue:2
The synthesis, antimalarial activity and CoMFA analysis of novel aminoalkylated quercetin analogs.
AID358167Cytotoxicity against human A549 cells by tetrazolium salt-based colorimetric assay1992Journal of natural products, Aug, Volume: 55, Issue:8
Antitumor agents, 129. Tannins and related compounds as selective cytotoxic agents.
AID1083162Antifungal activity against Neofusicoccum parvum Bp0014 assessed as growth inhibition measured after 1 to 10 days2012Journal of agricultural and food chemistry, Dec-05, Volume: 60, Issue:48
Phenolics and their antifungal role in grapevine wood decay: focus on the Botryosphaeriaceae family.
AID1264953Cytotoxicity against human MSC assessed as cell viability at 1 uM treated for 3 days measured on day 4 by alamar blue assay (Rvb = 97 to 100%)2015Journal of natural products, Nov-25, Volume: 78, Issue:11
Defining Key Structural Determinants for the Pro-osteogenic Activity of Flavonoids.
AID338037Hepatoprotective activity against carbon tetrachloride-induced hepatotoxicity in fasted Sprague-Dawley rat hepatocytes assessed as serum glutamic pyruvate transaminase release at 3 mg/ml administered before 10 mins of carbon tetrachloride challenge measur
AID1493773Inhibition of BChE (unknown origin) at 0.1 mg/ml using thiocholine as substrate preincubated for 15 mins followed by substrate addition measured after 5 mins by Ellman's method2018European journal of medicinal chemistry, Jan-01, Volume: 1432-Arylbenzofurans from Artocarpus lakoocha and methyl ether analogs with potent cholinesterase inhibitory activity.
AID1744549Inhibition of cytochrome c (unknown origin) assessed as reduction reduction of cyt c from its ferric state to ferrous state at 10 uM incubated for 20 mins in presence of cardiolipin by UV-vis Spectrophotometric assay relative to control2021Bioorganic & medicinal chemistry, 03-01, Volume: 33A role of flavonoids in cytochrome c-cardiolipin interactions.
AID1083171Antifungal activity against Togninia minima SO21 assessed as susceptibility at 500 uM measured after 1 to 10 days2012Journal of agricultural and food chemistry, Dec-05, Volume: 60, Issue:48
Phenolics and their antifungal role in grapevine wood decay: focus on the Botryosphaeriaceae family.
AID1142755Antioxidant activity assessed as galvinoxyl free radical scavenging activity measured as second order rate constant by spectrophotometry2014Bioorganic & medicinal chemistry letters, Jun-01, Volume: 24, Issue:11
Synthesis and radical-scavenging activity of a dimethyl catechin analogue.
AID626985Inhibition of Pseudomonas aeruginosa PAO1 quorum sensing assessed as reduction of biofilm formation at 3 mg/ml after 18 hrs using crystal violet staining2011Journal of natural products, Oct-28, Volume: 74, Issue:10
Malabaricone C from Myristica cinnamomea exhibits anti-quorum sensing activity.
AID234680Free radical scavenging activity of DPPH relative to resveratrol was determined2004Bioorganic & medicinal chemistry letters, Jan-19, Volume: 14, Issue:2
Syntheses and radical scavenging activities of resveratrol derivatives.
AID380212Antimicrobial activity against Candida albicans1999Journal of natural products, Jul, Volume: 62, Issue:7
Biological evaluation of proanthocyanidin dimers and related polyphenols.
AID1379749Inhibition of quorum sensing system in Chromobacterium violaceum ATCC 12472 assessed as inhibition of violacein production at 5 mg/mL incubated for 48 hrs2017European journal of medicinal chemistry, Nov-10, Volume: 140Synthesis, antimicrobial, antiquorum-sensing, antitumor and cytotoxic activities of new series of cyclopenta(hepta)[b]thiophene and fused cyclohepta[b]thiophene analogs.
AID538215Antiaggregatory activity in human platelets assessed as inhibition of thrombin-induced platelet aggregation by aggregometry2010Bioorganic & medicinal chemistry letters, Dec-15, Volume: 20, Issue:24
Ixorapeptide I and ixorapeptide II, bioactive peptides isolated from Ixora coccinea.
AID311580Antioxidant activity assessed as DPPH radical scavenging activity2007Journal of natural products, Oct, Volume: 70, Issue:10
Structures and radical-scavenging activities of phenolic constituents from the bark of Picea jezoensis var. jezoensis.
AID379519Cytotoxicity against human BGC-823 cells after 96 hrs by MTT assay2006Journal of natural products, Nov, Volume: 69, Issue:11
A nitrogen-containing 3-alkyl-1,4-benzoquinone and a gomphilactone derivative from Embelia ribes.
AID1491344Inhibition of quorum sensing system in Chromobacterium violaceum ATCC 12472 assessed as diameter of violacein pigment inhibition at 5 mg/ml after 48 hrs2017European journal of medicinal chemistry, Sep-08, Volume: 137Synthesis, antimicrobial, antiquorum-sensing and antitumor activities of new benzimidazole analogs.
AID336875Antihyperlipidemic effect in high fat diet-induced rat assessed as decrease in serum total cholesterol level at 20 mg/kg, ip relative to control
AID399411Inhibition of bovine seminal vesicle microsomal COX1-mediated prostaglandin production1998Journal of natural products, Jan, Volume: 61, Issue:1
Two new isoflavones from Ceiba pentandra and their effect on cyclooxygenase-catalyzed prostaglandin biosynthesis.
AID380216Antimicrobial activity against Salmonella paratyphi1999Journal of natural products, Jul, Volume: 62, Issue:7
Biological evaluation of proanthocyanidin dimers and related polyphenols.
AID768894Inhibition of human thrombin assessed as equilibrium dissociation constant at 50 to 1000 uM by BIAcore analysis2014Medicinal chemistry research : an international journal for rapid communications on design and mechanisms of action of biologically active agents, , Volume: 23Thrombin inhibitory activity of some polyphenolic compounds.
AID1175718Antimalarial activity against chloroquine-sensitive/mefloquine-resistant Plasmodium falciparum D6 by malaria SYBR green 1-based fluorescence (MSF) assay2015Bioorganic & medicinal chemistry letters, Jan-15, Volume: 25, Issue:2
The synthesis, antimalarial activity and CoMFA analysis of novel aminoalkylated quercetin analogs.
AID468519Antifungal activity against Candida albicans ATCC 10231 after 24 to 72 hrs by NCCLS method2010European journal of medicinal chemistry, Mar, Volume: 45, Issue:3
Synthesis and antimicrobial activities of 3-O-alkyl analogues of (+)-catechin: improvement of stability and proposed action mechanism.
AID257315Inhibitory activity against baker's yeast alpha glucosidase at 200 uM2005Bioorganic & medicinal chemistry letters, Dec-15, Volume: 15, Issue:24
Sulfonamide chalcone as a new class of alpha-glucosidase inhibitors.
AID1821412Trypanocidal activity against Trypanosoma evansi assessed as parasite growth inhibition at 50 ug/ml incubated for 3 days by Celltiter-Glo luminescence assay2022Journal of natural products, 01-28, Volume: 85, Issue:1
Benzophenone Glucosides and B-Type Proanthocyanidin Dimers from Zambian
AID293299Antioxidant activity in BALB/c mouse BM cells assessed as inhibition of ROS production2007Bioorganic & medicinal chemistry, Feb-15, Volume: 15, Issue:4
Improved quantitative structure-activity relationship models to predict antioxidant activity of flavonoids in chemical, enzymatic, and cellular systems.
AID1083155Antifungal activity against Diplodia seriata BoF99-1 assessed as growth inhibition measured after 1 to 10 days2012Journal of agricultural and food chemistry, Dec-05, Volume: 60, Issue:48
Phenolics and their antifungal role in grapevine wood decay: focus on the Botryosphaeriaceae family.
AID626983Inhibition of Pseudomonas aeruginosa PAO1 quorum sensing assessed as reduction of biofilm formation at 1 mg/ml after 18 hrs using crystal violet staining2011Journal of natural products, Oct-28, Volume: 74, Issue:10
Malabaricone C from Myristica cinnamomea exhibits anti-quorum sensing activity.
AID456189Inhibition of beta amyloid (1 to 42) fibril formation by thioflavin T staining-based binding assay2010Bioorganic & medicinal chemistry, Jan-01, Volume: 18, Issue:1
Carboxymethylated-kappa-casein: a convenient tool for the identification of polyphenolic inhibitors of amyloid fibril formation.
AID1405925Antioxidant activity assessed as inhibition of lipid peroxidation2018European journal of medicinal chemistry, Aug-05, Volume: 156Current progress on antioxidants incorporating the pyrazole core.
AID468508Antibacterial activity against Enterococcus faecalis ATCC 29212 after 24 hrs by NCCLS method2010European journal of medicinal chemistry, Mar, Volume: 45, Issue:3
Synthesis and antimicrobial activities of 3-O-alkyl analogues of (+)-catechin: improvement of stability and proposed action mechanism.
AID380213Antimicrobial activity against Staphylococcus aureus1999Journal of natural products, Jul, Volume: 62, Issue:7
Biological evaluation of proanthocyanidin dimers and related polyphenols.
AID380219Modulation of classical complement pathway system assessed as hemoglobin release by spectrophotometry1999Journal of natural products, Jul, Volume: 62, Issue:7
Biological evaluation of proanthocyanidin dimers and related polyphenols.
AID1083154Antifungal activity against Diplodia seriata BoF98-1 assessed as growth inhibition measured after 1 to 10 days2012Journal of agricultural and food chemistry, Dec-05, Volume: 60, Issue:48
Phenolics and their antifungal role in grapevine wood decay: focus on the Botryosphaeriaceae family.
AID690149Reducing activity by cyclic voltammetry2011European journal of medicinal chemistry, Sep, Volume: 46, Issue:9
Comparative study on antioxidant capacity of flavonoids and their inhibitory effects on oleic acid-induced hepatic steatosis in vitro.
AID336874Antihyperlipidemic effect in high fat diet-induced rat assessed as decrease in serum total cholesterol level at 10 mg/kg, ip relative to control
AID1589046Inhibition of Amyloid beta (1 to 42) (unknown origin) self aggregation at 20 uM incubated for 12 hrs by thioflavin T assay2019Bioorganic & medicinal chemistry letters, 09-15, Volume: 29, Issue:18
Inhibition of β-amyloid-induced neurotoxicity by planar analogues of procyanidin B3.
AID380214Antimicrobial activity against Mycobacterium fortuitum1999Journal of natural products, Jul, Volume: 62, Issue:7
Biological evaluation of proanthocyanidin dimers and related polyphenols.
AID380215Antimicrobial activity against Enterobacter cloacae1999Journal of natural products, Jul, Volume: 62, Issue:7
Biological evaluation of proanthocyanidin dimers and related polyphenols.
AID356411Inhibition of aldose reductase in rat lens homogenate2003Journal of natural products, Sep, Volume: 66, Issue:9
Structures of new friedelane-type triterpenes and eudesmane-type sesquiterpene and aldose reductase inhibitors from Salacia chinensis.
AID1103080Antibacterial activity against Erwinia amylovora after 24 hr by spectrophotometry2004Journal of agricultural and food chemistry, Mar-10, Volume: 52, Issue:5
Phytotoxic and antimicrobial activities of catechin derivatives.
AID774309Antiprotozoal activity against clinical isolates of Giardia lamblia IMSS:8901:12013Journal of natural products, Oct-25, Volume: 76, Issue:10
Hydroxyclerodanes from Salvia shannoni.
AID690144Antioxidant activity in human HepG2 cells assessed as reduction of oleic acid-induced ROS generation incubated for 24 hrs by DHCF-DA based fluorimetric assay relative to untreated control2011European journal of medicinal chemistry, Sep, Volume: 46, Issue:9
Comparative study on antioxidant capacity of flavonoids and their inhibitory effects on oleic acid-induced hepatic steatosis in vitro.
AID551462Antioxidant activity assessed as copper ion radical scavenging activity at 2 uM2011Bioorganic & medicinal chemistry letters, Jan-15, Volume: 21, Issue:2
Antioxidant activity of a new C-glycosylflavone from the leaves of Ficus microcarpa.
AID768905Inhibition of human thrombin-induced cross-linked fibrin formation at 125 to 1000 uM after 5 to 30 mins by SDS-PAGE analysis2014Medicinal chemistry research : an international journal for rapid communications on design and mechanisms of action of biologically active agents, , Volume: 23Thrombin inhibitory activity of some polyphenolic compounds.
AID1191917Antioxidant activity assessed as DPPH free radical scavenging activity2015Bioorganic & medicinal chemistry letters, Mar-15, Volume: 25, Issue:6
Enhancement of antioxidant effects of naringin after atmospheric pressure dielectric barrier discharge plasma treatment.
AID1419480Antiquorum-sensing activity against Chromobacterium violaceum ATCC 12472 assessed as reduction in violacein production at 5000 ug/ml a=2017European journal of medicinal chemistry, May-05, Volume: 131Synthesis and biological evaluation of a new series of benzimidazole derivatives as antimicrobial, antiquorum-sensing and antitumor agents.
AID1821410Trypanocidal activity against Trypanosoma brucei rhodesiense IL1501 assessed as parasite growth inhibition at 50 ug/ml incubated for 3 days by Celltiter-Glo luminescence assay2022Journal of natural products, 01-28, Volume: 85, Issue:1
Benzophenone Glucosides and B-Type Proanthocyanidin Dimers from Zambian
AID1070016Inhibition of rat intestinal sucrase using p-nitrophenyl-alpha-d-glucopyranoside as substrate incubated for 10 mins prior to substrate addition measured after 5 mins by spectrophotometry2014Bioorganic & medicinal chemistry letters, Feb-15, Volume: 24, Issue:4
Rat intestinal sucrase inhibition of constituents from the roots of Rosa rugosa Thunb.
AID1316660Cytotoxicity against LPS-activated human BV2 cells assessed as cell viability at 30 uM after 24 hrs by MTT assay (Rvb = 98.03 to 98.84%)2016Bioorganic & medicinal chemistry letters, 10-15, Volume: 26, Issue:20
Bioactive phenols as potential neuroinflammation inhibitors from the leaves of Xanthoceras sorbifolia Bunge.
AID1103078Bactericidal activity against Xanthomonas euvesicatoria at 6.3 ug/ml after 24 hr by BacLight bacterial viability fluorescence assay2004Journal of agricultural and food chemistry, Mar-10, Volume: 52, Issue:5
Phytotoxic and antimicrobial activities of catechin derivatives.
AID1083157Antifungal activity against Lasiodiplodia theobromae CBS116460 assessed as growth inhibition measured after 1 to 10 days2012Journal of agricultural and food chemistry, Dec-05, Volume: 60, Issue:48
Phenolics and their antifungal role in grapevine wood decay: focus on the Botryosphaeriaceae family.
AID380206Selectivity index, ratio of CC50 for human MT4 cells to IC50 for HIV infected in human MT4 cells1999Journal of natural products, Jul, Volume: 62, Issue:7
Biological evaluation of proanthocyanidin dimers and related polyphenols.
AID1872871Inhibition of rat intestinal sucrase using sucrose as substrate incubated for 15 mins by spectometric analysis2022European journal of medicinal chemistry, May-05, Volume: 235Recent results from non-basic glycosidase inhibitors: How structural diversity can inform general strategies for improving inhibition potency.
AID1516910Antifungal activity against FLC-resistant Candida tropicalis in presence of FLC2019Bioorganic & medicinal chemistry letters, 10-01, Volume: 29, Issue:19
Recent advances in natural antifungal flavonoids and their derivatives.
AID336873Antihyperlipidemic effect in high fat diet-induced rat assessed as decrease in serum triglyceride level at 20 mg/kg, ip relative to control
AID1247840Displacement of ANS from DAPK1 catalytic domain (1 to 285) (unknown origin) after 30 mins by fluorescence assay2015Journal of medicinal chemistry, Sep-24, Volume: 58, Issue:18
Structural Insight into the Interactions between Death-Associated Protein Kinase 1 and Natural Flavonoids.
AID1083159Antifungal activity against Diplodia mutila BRA08 assessed as growth inhibition measured after 1 to 10 days2012Journal of agricultural and food chemistry, Dec-05, Volume: 60, Issue:48
Phenolics and their antifungal role in grapevine wood decay: focus on the Botryosphaeriaceae family.
AID380205Cytotoxicity against human MT4 cells by MTT assay1999Journal of natural products, Jul, Volume: 62, Issue:7
Biological evaluation of proanthocyanidin dimers and related polyphenols.
AID1193989Inhibition of LPS-induced IL-6 production in wild-type C57BL/6 mouse BMDC pretreated with compound for 1 hr before LPS treatment measured 16 hrs by ELISA2015Bioorganic & medicinal chemistry letters, Apr-01, Volume: 25, Issue:7
Chemical constituents from Kandelia candel with their inhibitory effects on pro-inflammatory cytokines production in LPS-stimulated bone marrow-derived dendritic cells (BMDCs).
AID596673Induction of adipogenesis in mouse 3T3L1 cells assessed as increase in triglyceride level at 30 uM on day 8 relative to control2011Bioorganic & medicinal chemistry, May-01, Volume: 19, Issue:9
Structural requirements of flavonoids for the adipogenesis of 3T3-L1 cells.
AID379522Inhibition of thrombin at 50 uM2006Journal of natural products, Nov, Volume: 69, Issue:11
A nitrogen-containing 3-alkyl-1,4-benzoquinone and a gomphilactone derivative from Embelia ribes.
AID1080598Phytotoxic activity against Trifolium repens assessed as inhibition of hypocotyl growth at 22 +/-2 degC after 72 hr2009Journal of agricultural and food chemistry, Apr-08, Volume: 57, Issue:7
Level of catechin, myricetin, quercetin and isoquercitrin in buckwheat (Fagopyrum esculentum Moench), changes of their levels during vegetation and their effect on the growth of selected weeds.
AID265763Inhibition of FabZ at 100 uM2006Journal of medicinal chemistry, Jun-01, Volume: 49, Issue:11
Inhibition of Plasmodium falciparum fatty acid biosynthesis: evaluation of FabG, FabZ, and FabI as drug targets for flavonoids.
AID332931Therapeutic index, ratio of IC50 for human H9 cells to EC50 for HIV1 3B1994Journal of natural products, Jan, Volume: 57, Issue:1
Anti-AIDS agents, 10. Acacetin-7-O-beta-D-galactopyranoside, an anti-HIV principle from Chrysanthemum morifolium and a structure-activity correlation with some related flavonoids.
AID399403Selectivity ratio of IC50 for sheep placental cotyledons COX2 to IC50 for bovine seminal microsomal COX11998Journal of natural products, Jan, Volume: 61, Issue:1
Development of a radiochemical cyclooxygenase-1 and -2 in vitro assay for identification of natural products as inhibitors of prostaglandin biosynthesis.
AID1764181Hypolipidemic activity against oleic acid/palmitic acid-induced hyperlipidemia in human HepG2 cells assessed as reduction in triglycerides content2021Bioorganic & medicinal chemistry letters, 09-01, Volume: 47Phenolic compounds from the leaves of Crataegus pinnatifida Bge. var. major N.E.Br. And their lipid-lowering effects.
AID468512Antibacterial activity against Bacillus subtilis ATCC 6633 after 24 hrs by NCCLS method2010European journal of medicinal chemistry, Mar, Volume: 45, Issue:3
Synthesis and antimicrobial activities of 3-O-alkyl analogues of (+)-catechin: improvement of stability and proposed action mechanism.
AID1103070Antifungal activity against Penicillium sp. at 12.5 to 25 ug/ml after 96 hr by spectrophotometry2004Journal of agricultural and food chemistry, Mar-10, Volume: 52, Issue:5
Phytotoxic and antimicrobial activities of catechin derivatives.
AID338031Hepatoprotective activity against carbon tetrachloride-induced hepatotoxicity in fasted Sprague-Dawley rat hepatocytes assessed as serum glutamic oxaloacetic transaminase release at 0.1 mg/ml administered before 10 mins of carbon tetrachloride challenge m
AID1239713Anti-platelet activity in rat platelet rich plasma assessed as inhibition of ADP and calcium-induced platelet aggregation at 100 uM pre-incubated at 37 degC for 10 mins and measured 30 mins after ADP and calcium addition2015Bioorganic & medicinal chemistry letters, Aug-15, Volume: 25, Issue:16
Potential therapeutic agents for circulatory diseases from Bauhinia glauca Benth.subsp. pernervosa. (Da Ye Guan Men).
AID977602Inhibition of sodium fluorescein uptake in OATP1B3-transfected CHO cells at an equimolar substrate-inhibitor concentration of 10 uM2013Molecular pharmacology, Jun, Volume: 83, Issue:6
Structure-based identification of OATP1B1/3 inhibitors.
AID468517Antifungal activity against Candida krusei IFO 1664 after 24 to 72 hrs by NCCLS method2010European journal of medicinal chemistry, Mar, Volume: 45, Issue:3
Synthesis and antimicrobial activities of 3-O-alkyl analogues of (+)-catechin: improvement of stability and proposed action mechanism.
AID598716Cytotoxicity against mouse MC3T3-E1 cells at 30 uM after 6 days2011Bioorganic & medicinal chemistry letters, Jun-01, Volume: 21, Issue:11
Osteogenic activity of diphenyl ether-type cyclic diarylheptanoids derived from Acer nikoense.
AID1103076Bactericidal activity against Erwinia amylovora at 1.6 ug/ml after 24 hr by BacLight bacterial viability fluorescence assay2004Journal of agricultural and food chemistry, Mar-10, Volume: 52, Issue:5
Phytotoxic and antimicrobial activities of catechin derivatives.
AID338041Effect on glutamic pyruvate transaminase activity at 0.1 mg/ml
AID1186044Cytotoxicity against human HL60 cells assessed as cell survival at 50 uM after 72 hrs by CCK8 assay2014Bioorganic & medicinal chemistry letters, Sep-01, Volume: 24, Issue:17
Phytochemical analysis and antileukemic activity of polyphenolic constituents of Toona sinensis.
AID377528Induction of supercoiled pSP64 plasmid DNA cleavage assessed as increase in linear duplex form 3 at 10 uM by agarose gel electrophoresis2000Journal of natural products, Sep, Volume: 63, Issue:9
Use of COMPARE analysis to discover functional analogues of bleomycin.
AID265762Antiplasmodial activity against chloroquine-resistant Plasmodium falciparum K12006Journal of medicinal chemistry, Jun-01, Volume: 49, Issue:11
Inhibition of Plasmodium falciparum fatty acid biosynthesis: evaluation of FabG, FabZ, and FabI as drug targets for flavonoids.
AID690148Reducing activity assessed as chlorogenic acid equivalent per mmol standard at 37 degC for 30 mins by Folin-Ciocalteu reagent assay assay2011European journal of medicinal chemistry, Sep, Volume: 46, Issue:9
Comparative study on antioxidant capacity of flavonoids and their inhibitory effects on oleic acid-induced hepatic steatosis in vitro.
AID380207Antiviral activity against HIV infected in human MT4 cells assessed as inhibition of virus-induced cytopathic effect by MTT assay1999Journal of natural products, Jul, Volume: 62, Issue:7
Biological evaluation of proanthocyanidin dimers and related polyphenols.
AID226690Free radical scavenging activity of DPPH was determined; value taken from reference 112004Bioorganic & medicinal chemistry letters, Jan-19, Volume: 14, Issue:2
Syntheses and radical scavenging activities of resveratrol derivatives.
AID332929Antiviral activity against HIV1 3B infected in human H9 cells assessed as inhibition of viral replication after 3 days by p24 antigen capture assay1994Journal of natural products, Jan, Volume: 57, Issue:1
Anti-AIDS agents, 10. Acacetin-7-O-beta-D-galactopyranoside, an anti-HIV principle from Chrysanthemum morifolium and a structure-activity correlation with some related flavonoids.
AID1417130Antitrypanosomal activity against Trypanosoma brucei rhodesiense STIB 900 trypomastigotes after 72 hrs by Alamar Blue assay2018European journal of medicinal chemistry, Sep-05, Volume: 157Natural products as inhibitors of Leishmania major dihydroorotate dehydrogenase.
AID1821415Trypanocidal activity against Trypanosoma brucei gambiense IL1922 assessed as parasite growth inhibition at 50 ug/ml incubated for 3 days by Celltiter-Glo luminescence assay2022Journal of natural products, 01-28, Volume: 85, Issue:1
Benzophenone Glucosides and B-Type Proanthocyanidin Dimers from Zambian
AID626984Inhibition of Pseudomonas aeruginosa PAO1 quorum sensing assessed as reduction of biofilm formation at 2 mg/ml after 18 hrs using crystal violet staining2011Journal of natural products, Oct-28, Volume: 74, Issue:10
Malabaricone C from Myristica cinnamomea exhibits anti-quorum sensing activity.
AID1821418Trypanocidal activity against Trypanosoma brucei rhodesiense assessed as parasite growth inhibition incubated for 3 days by Celltiter-Glo luminescence assay2022Journal of natural products, 01-28, Volume: 85, Issue:1
Benzophenone Glucosides and B-Type Proanthocyanidin Dimers from Zambian
AID265765Inhibition of FabG at 100 uM2006Journal of medicinal chemistry, Jun-01, Volume: 49, Issue:11
Inhibition of Plasmodium falciparum fatty acid biosynthesis: evaluation of FabG, FabZ, and FabI as drug targets for flavonoids.
AID1674378Antifungal activity against Cryptococcus neoformans H99 by CLSI protocol-based broth serial dilution method
AID257317Inhibitory activity against barley beta amylase at 200 uM2005Bioorganic & medicinal chemistry letters, Dec-15, Volume: 15, Issue:24
Sulfonamide chalcone as a new class of alpha-glucosidase inhibitors.
AID551463Metal chelating activity of the compound at 1 to 2 uM2011Bioorganic & medicinal chemistry letters, Jan-15, Volume: 21, Issue:2
Antioxidant activity of a new C-glycosylflavone from the leaves of Ficus microcarpa.
AID333445Inhibition of human COX2 expressed in baculovirus infected Sf-21 insect cells2004Journal of natural products, Nov, Volume: 67, Issue:11
Mechanism-based inactivation of COX-1 by red wine m-hydroquinones: a structure-activity relationship study.
AID1821420Trypanocidal activity against Trypanosoma evansi assessed as parasite growth inhibition incubated for 3 days by Celltiter-Glo luminescence assay2022Journal of natural products, 01-28, Volume: 85, Issue:1
Benzophenone Glucosides and B-Type Proanthocyanidin Dimers from Zambian
AID1316658Cytotoxicity against LPS-activated human BV2 cells assessed as cell viability at 1 uM after 24 hrs by MTT assay (Rvb = 98.03 to 98.84%)2016Bioorganic & medicinal chemistry letters, 10-15, Volume: 26, Issue:20
Bioactive phenols as potential neuroinflammation inhibitors from the leaves of Xanthoceras sorbifolia Bunge.
AID332218Inhibition of COX22002Journal of natural products, Feb, Volume: 65, Issue:2
Constituents of the bark and twigs of Artocarpus dadah with cyclooxygenase inhibitory activity.
AID356646Antioxidant activity assessed as DPPH radical scavenging activity after 30 mins2003Journal of natural products, Nov, Volume: 66, Issue:11
New bioactive polyphenols from Theobroma grandiflorum ("cupuaçu").
AID1744553Permeability constant, logPe of compound incubated for 2 to 30 hrs by PAMPA assay2021Bioorganic & medicinal chemistry, 03-01, Volume: 33A role of flavonoids in cytochrome c-cardiolipin interactions.
AID356412Inhibition of aldose reductase in rat lens homogenate at 30 uM2003Journal of natural products, Sep, Volume: 66, Issue:9
Structures of new friedelane-type triterpenes and eudesmane-type sesquiterpene and aldose reductase inhibitors from Salacia chinensis.
AID338030Hepatoprotective activity against carbon tetrachloride-induced hepatotoxicity in fasted Sprague-Dawley rat hepatocytes assessed as serum glutamic oxaloacetic transaminase release at 0.01 mg/ml administered before 10 mins of carbon tetrachloride challenge
AID690145Cytotoxicity against human HepG2 cells incubated for 24 hrs by MTT assay2011European journal of medicinal chemistry, Sep, Volume: 46, Issue:9
Comparative study on antioxidant capacity of flavonoids and their inhibitory effects on oleic acid-induced hepatic steatosis in vitro.
AID650647Activation of aldehyde dehydrogenase2012Bioorganic & medicinal chemistry, Apr-01, Volume: 20, Issue:7
Tea catechins and flavonoids from the leaves of Camellia sinensis inhibit yeast alcohol dehydrogenase.
AID1316661Cytotoxicity against LPS-activated human BV2 cells assessed as cell viability at 100 uM after 24 hrs by MTT assay (Rvb = 98.03 to 98.84%)2016Bioorganic & medicinal chemistry letters, 10-15, Volume: 26, Issue:20
Bioactive phenols as potential neuroinflammation inhibitors from the leaves of Xanthoceras sorbifolia Bunge.
AID311283Selectivity for antagonist activity at human mu opioid receptor to kappa opioid receptor expressed in CHO cells by [35S]GTP-gamma-S assay2007Journal of natural products, Aug, Volume: 70, Issue:8
Flavonoids as opioid receptor ligands: identification and preliminary structure-activity relationships.
AID1591901Inhibition of porcine pancreatic lipase using pNPB as substrate measured after 30 mins2019Bioorganic & medicinal chemistry letters, 08-15, Volume: 29, Issue:16
A new approach to procyanidins synthesis with potent anti-adipogenic effects.
AID1264945Induction of osteogenic differentiation in human MSC assessed as increase in ALP activity at 1 uM using p-NPP as substrate after 9 days by colorimetric method relative to control2015Journal of natural products, Nov-25, Volume: 78, Issue:11
Defining Key Structural Determinants for the Pro-osteogenic Activity of Flavonoids.
AID1103071Antifungal activity against Aspergillus niger at 12.5 to 25 ug/ml after 96 hr by spectrophotometry2004Journal of agricultural and food chemistry, Mar-10, Volume: 52, Issue:5
Phytotoxic and antimicrobial activities of catechin derivatives.
AID1821413Trypanocidal activity against Trypanosoma brucei congolense IL3000 assessed as parasite growth inhibition at 50 ug/ml incubated for 3 days by Celltiter-Glo luminescence assay2022Journal of natural products, 01-28, Volume: 85, Issue:1
Benzophenone Glucosides and B-Type Proanthocyanidin Dimers from Zambian
AID475504Binding affinity to amyloid beta (1 to 42) fibrils by change in fluorescence at 100 uM after 10 mins2009Bioorganic & medicinal chemistry letters, Sep-01, Volume: 19, Issue:17
A chemical screening approach reveals that indole fluorescence is quenched by pre-fibrillar but not fibrillar amyloid-beta.
AID379521Inhibition of PTP1B at 50 uM2006Journal of natural products, Nov, Volume: 69, Issue:11
A nitrogen-containing 3-alkyl-1,4-benzoquinone and a gomphilactone derivative from Embelia ribes.
AID1193990Inhibition of LPS-induced TNF-alpha production in wild-type C57BL/6 mouse BMDC pretreated with compound for 1 hr before LPS treatment measured 16 hrs by ELISA2015Bioorganic & medicinal chemistry letters, Apr-01, Volume: 25, Issue:7
Chemical constituents from Kandelia candel with their inhibitory effects on pro-inflammatory cytokines production in LPS-stimulated bone marrow-derived dendritic cells (BMDCs).
AID1103073Antifungal activity against Hypocrea rufa at 12.5 to 25 ug/ml after 96 hr by spectrophotometry2004Journal of agricultural and food chemistry, Mar-10, Volume: 52, Issue:5
Phytotoxic and antimicrobial activities of catechin derivatives.
AID1080603Phytotoxic activity against Echinochloa crus-galli (barnyard grass) assessed as inhibition of hypocotyl growth at 22 +/-2 degC after 72 hr2009Journal of agricultural and food chemistry, Apr-08, Volume: 57, Issue:7
Level of catechin, myricetin, quercetin and isoquercitrin in buckwheat (Fagopyrum esculentum Moench), changes of their levels during vegetation and their effect on the growth of selected weeds.
AID1103077Bactericidal activity against Pectobacterium carotovorum at 3.1 ug/ml after 24 hr by BacLight bacterial viability fluorescence assay2004Journal of agricultural and food chemistry, Mar-10, Volume: 52, Issue:5
Phytotoxic and antimicrobial activities of catechin derivatives.
AID1186051Retention time of the compound by UPLC analysis2014Bioorganic & medicinal chemistry letters, Sep-01, Volume: 24, Issue:17
Phytochemical analysis and antileukemic activity of polyphenolic constituents of Toona sinensis.
AID1821409Trypanocidal activity against Trypanosoma brucei rhodesiense assessed as parasite growth inhibition at 50 ug/ml incubated for 3 days by Celltiter-Glo luminescence assay2022Journal of natural products, 01-28, Volume: 85, Issue:1
Benzophenone Glucosides and B-Type Proanthocyanidin Dimers from Zambian
AID399341Antioxidant activity assessed as superoxide-scavenging activity by nitrite method1998Journal of natural products, Jan, Volume: 61, Issue:1
Structure-activity relationship and classification of flavonoids as inhibitors of xanthine oxidase and superoxide scavengers.
AID1493772Inhibition of electric eel AChE at 0.1 mg/ml using acetylthiocholine as substrate preincubated for 15 mins followed by substrate addition measured after 5 mins by Ellman's method2018European journal of medicinal chemistry, Jan-01, Volume: 1432-Arylbenzofurans from Artocarpus lakoocha and methyl ether analogs with potent cholinesterase inhibitory activity.
AID1417094Inhibition of recombinant oligo-histidine-tagged Leishmania major DHODH expressed in Escherichia coli BL21(DE3) cells using DHO as substrate measured after 60 secs2018European journal of medicinal chemistry, Sep-05, Volume: 157Natural products as inhibitors of Leishmania major dihydroorotate dehydrogenase.
AID1744550Inhibition of cytochrome c (unknown origin) assessed as reduction reduction of cyt c from its ferric state to ferrous state incubated for 20 mins in presence of cardiolipin by UV-vis Spectrophotometric assay2021Bioorganic & medicinal chemistry, 03-01, Volume: 33A role of flavonoids in cytochrome c-cardiolipin interactions.
AID1103081Antibacterial activity against Xanthomonas campestris pv. vesicatoria after 24 hr by spectrophotometry2004Journal of agricultural and food chemistry, Mar-10, Volume: 52, Issue:5
Phytotoxic and antimicrobial activities of catechin derivatives.
AID399406Selectivity ratio of IC50 for sheep placental cotyledons COX2 to IC50 for bovine seminal microsomal COX1 preincubated for 10 mins1998Journal of natural products, Jan, Volume: 61, Issue:1
Development of a radiochemical cyclooxygenase-1 and -2 in vitro assay for identification of natural products as inhibitors of prostaglandin biosynthesis.
AID311281Antagonist activity at human mu opioid receptor expressed in CHO cells by [35S]GTP-gamma-S assay2007Journal of natural products, Aug, Volume: 70, Issue:8
Flavonoids as opioid receptor ligands: identification and preliminary structure-activity relationships.
AID768927Inhibition of human thrombin assessed as inhibition of fibrinogen polymerization preincubated for 10 mins followed by fibrionogen addition measured for 20 mins2014Medicinal chemistry research : an international journal for rapid communications on design and mechanisms of action of biologically active agents, , Volume: 23Thrombin inhibitory activity of some polyphenolic compounds.
AID332217Inhibition of COX12002Journal of natural products, Feb, Volume: 65, Issue:2
Constituents of the bark and twigs of Artocarpus dadah with cyclooxygenase inhibitory activity.
AID311288Agonist activity at opioid receptor relative to U69,5932007Journal of natural products, Aug, Volume: 70, Issue:8
Flavonoids as opioid receptor ligands: identification and preliminary structure-activity relationships.
AID377522Induction of pSP64 plasmid DNA relaxation by agarose gel electrophoresis in presence of Cu2+2000Journal of natural products, Sep, Volume: 63, Issue:9
Use of COMPARE analysis to discover functional analogues of bleomycin.
AID1264956Cytotoxicity against human MSC assessed as cell viability at 1 uM treated for 6 days measured on day 7 by alamar blue assay (Rvb = 96 to 101%)2015Journal of natural products, Nov-25, Volume: 78, Issue:11
Defining Key Structural Determinants for the Pro-osteogenic Activity of Flavonoids.
AID265761Antiplasmodial activity against chloroquine-sensitive Plasmodium falciparum NF542006Journal of medicinal chemistry, Jun-01, Volume: 49, Issue:11
Inhibition of Plasmodium falciparum fatty acid biosynthesis: evaluation of FabG, FabZ, and FabI as drug targets for flavonoids.
AID1674379Antifungal activity against Cryptococcus neoformans JEC21 by CLSI protocol-based broth serial dilution method
AID333442Effect on COX1 activity in sheep seminal vesicle at 5 uM by TMPD peroxidase assay2004Journal of natural products, Nov, Volume: 67, Issue:11
Mechanism-based inactivation of COX-1 by red wine m-hydroquinones: a structure-activity relationship study.
AID338034Hepatoprotective activity against carbon tetrachloride-induced hepatotoxicity in fasted Sprague-Dawley rat hepatocytes assessed as serum glutamic pyruvate transaminase release at 0.01 mg/ml administered before 10 mins of carbon tetrachloride challenge mea
AID650646Inhibition of aldehyde dehydrogenase2012Bioorganic & medicinal chemistry, Apr-01, Volume: 20, Issue:7
Tea catechins and flavonoids from the leaves of Camellia sinensis inhibit yeast alcohol dehydrogenase.
AID333444Binding affinity to COX1 in sheep seminal vesicle2004Journal of natural products, Nov, Volume: 67, Issue:11
Mechanism-based inactivation of COX-1 by red wine m-hydroquinones: a structure-activity relationship study.
AID1264946Induction of osteogenic differentiation in human MSC assessed as increase in ALP activity at 5 uM using p-NPP as substrate after 9 days by colorimetric method relative to control2015Journal of natural products, Nov-25, Volume: 78, Issue:11
Defining Key Structural Determinants for the Pro-osteogenic Activity of Flavonoids.
AID1631834Antitrypanosomal activity against Trypanosoma brucei brucei Lister 427 bloodstream forms after 72 hrs by resazurin-based assay2016Journal of medicinal chemistry, 08-25, Volume: 59, Issue:16
Profiling of Flavonol Derivatives for the Development of Antitrypanosomatidic Drugs.
AID1264952Cytotoxicity against human MSC assessed as cell viability at 10 uM measured on day 1 by alamar blue assay (Rvb = 97 to 101%)2015Journal of natural products, Nov-25, Volume: 78, Issue:11
Defining Key Structural Determinants for the Pro-osteogenic Activity of Flavonoids.
AID311284Selectivity for antagonist activity at human delta opioid receptor to kappa opioid receptor expressed in CHO cells by [35S]GTP-gamma-S assay2007Journal of natural products, Aug, Volume: 70, Issue:8
Flavonoids as opioid receptor ligands: identification and preliminary structure-activity relationships.
AID399402Inhibition of sheep placental cotyledons COX2 assessed as PGE2 production1998Journal of natural products, Jan, Volume: 61, Issue:1
Development of a radiochemical cyclooxygenase-1 and -2 in vitro assay for identification of natural products as inhibitors of prostaglandin biosynthesis.
AID468515Antibacterial activity against Proteus mirabilis ATCC 27853 after 24 hrs by NCCLS method2010European journal of medicinal chemistry, Mar, Volume: 45, Issue:3
Synthesis and antimicrobial activities of 3-O-alkyl analogues of (+)-catechin: improvement of stability and proposed action mechanism.
AID1424749Inhibition of N-acyl-homoserinlactone-related quorum sensing system in Chromobacterium violaceum ATCC 12472 assessed as diameter of violacein pigment inhibition after 48 hrs2018European journal of medicinal chemistry, May-25, Volume: 152New pyrazolopyridine analogs: Synthesis, antimicrobial, antiquorum-sensing and antitumor screening.
AID379520Cytotoxicity against human HCT8 cells after 96 hrs by MTT assay2006Journal of natural products, Nov, Volume: 69, Issue:11
A nitrogen-containing 3-alkyl-1,4-benzoquinone and a gomphilactone derivative from Embelia ribes.
AID1872870Inhibition of rat intestinal maltase using maltose as substrate incubated for 15 mins by spectometric analysis2022European journal of medicinal chemistry, May-05, Volume: 235Recent results from non-basic glycosidase inhibitors: How structural diversity can inform general strategies for improving inhibition potency.
AID257316Inhibitory activity against Bacillus licheniformis alpha amylase at 200 uM2005Bioorganic & medicinal chemistry letters, Dec-15, Volume: 15, Issue:24
Sulfonamide chalcone as a new class of alpha-glucosidase inhibitors.
AID1744552Inhibition of cytochrome c (unknown origin) assessed as pseudo first order rate constant2021Bioorganic & medicinal chemistry, 03-01, Volume: 33A role of flavonoids in cytochrome c-cardiolipin interactions.
AID1441295Inhibition of CaCl2 activated hyaluronidase (unknown origin) up to 4000 uM using hyaluronic acid as substrate preincubated for 20 mins followed by substrate addition measured after 10 mins in presence of up to 20% DMSO by colorimetric method2017Bioorganic & medicinal chemistry letters, 04-01, Volume: 27, Issue:7
Discovery of hyaluronidase inhibitors from natural products and their mechanistic characterization under DMSO-perturbed assay conditions.
AID1915607Agonist activity at human MT1R stably expressed in HEK293 cells by FlexStation3 Bench-top MultiMode Microplate Reader2021European journal of medicinal chemistry, Jan-15, Volume: 210Recent research progress of Uncaria spp. based on alkaloids: phytochemistry, pharmacology and structural chemistry.
AID1080610Phytotoxic activity against Echinochloa crus-galli (barnyard grass) assessed as inhibition of root growth at 22 +/-2 degC after 72 hr2009Journal of agricultural and food chemistry, Apr-08, Volume: 57, Issue:7
Level of catechin, myricetin, quercetin and isoquercitrin in buckwheat (Fagopyrum esculentum Moench), changes of their levels during vegetation and their effect on the growth of selected weeds.
AID44249Inhibition of human Beta-secretase 12003Bioorganic & medicinal chemistry letters, Nov-17, Volume: 13, Issue:22
Green tea catechins as a BACE1 (beta-secretase) inhibitor.
AID1080601Phytotoxic activity against Plantago lanceolata assessed as inhibition of hypocotyl growth at 22 +/-2 degC after 72 hr2009Journal of agricultural and food chemistry, Apr-08, Volume: 57, Issue:7
Level of catechin, myricetin, quercetin and isoquercitrin in buckwheat (Fagopyrum esculentum Moench), changes of their levels during vegetation and their effect on the growth of selected weeds.
AID1080611Phytotoxic activity against Achillea millefolium assessed as inhibition of root growth at 22 +/-2 degC after 72 hr2009Journal of agricultural and food chemistry, Apr-08, Volume: 57, Issue:7
Level of catechin, myricetin, quercetin and isoquercitrin in buckwheat (Fagopyrum esculentum Moench), changes of their levels during vegetation and their effect on the growth of selected weeds.
AID379518Cytotoxicity against human Bel-7402 cells after 96 hrs by MTT assay2006Journal of natural products, Nov, Volume: 69, Issue:11
A nitrogen-containing 3-alkyl-1,4-benzoquinone and a gomphilactone derivative from Embelia ribes.
AID468518Antifungal activity against Candida lusitaniae ATCC 42720 after 24 to 72 hrs by NCCLS method2010European journal of medicinal chemistry, Mar, Volume: 45, Issue:3
Synthesis and antimicrobial activities of 3-O-alkyl analogues of (+)-catechin: improvement of stability and proposed action mechanism.
AID379517Cytotoxicity against human A2780 cells after 96 hrs by MTT assay2006Journal of natural products, Nov, Volume: 69, Issue:11
A nitrogen-containing 3-alkyl-1,4-benzoquinone and a gomphilactone derivative from Embelia ribes.
AID492140Antioxidant activity assessed as formazan formation induced absorbance changes at 25 ppm at 570 nm at 37 degC for 6 hrs by MTT assay2010Journal of natural products, Jul-23, Volume: 73, Issue:7
An efficient and economical MTT assay for determining the antioxidant activity of plant natural product extracts and pure compounds.
AID1264950Cytotoxicity against human MSC assessed as cell viability at 1 uM measured on day 1 by alamar blue assay (Rvb = 97 to 101%)2015Journal of natural products, Nov-25, Volume: 78, Issue:11
Defining Key Structural Determinants for the Pro-osteogenic Activity of Flavonoids.
AID380203Antioxidant activity assessed as superoxide radical anion scavenging activity1999Journal of natural products, Jul, Volume: 62, Issue:7
Biological evaluation of proanthocyanidin dimers and related polyphenols.
AID1083160Antifungal activity against Neofusicoccum luteum CBS110299 assessed as growth inhibition measured after 1 to 10 days2012Journal of agricultural and food chemistry, Dec-05, Volume: 60, Issue:48
Phenolics and their antifungal role in grapevine wood decay: focus on the Botryosphaeriaceae family.
AID1915608Agonist activity at human MT2R stably expressed in HEK293 cells by FlexStation3 Bench-top MultiMode Microplate Reader2021European journal of medicinal chemistry, Jan-15, Volume: 210Recent research progress of Uncaria spp. based on alkaloids: phytochemistry, pharmacology and structural chemistry.
AID1066693Noncompetitive inhibition of Leishmania amazonensis recombinant arginase expressed in Escherichia coli Rosetta (DE3) pLysS using L-arginine as substrate by Dixon reciprocal plot analysis2014Journal of natural products, Feb-28, Volume: 77, Issue:2
Isolation of arginase inhibitors from the bioactivity-guided fractionation of Byrsonima coccolobifolia leaves and stems.
AID1070017Inhibition of rat intestinal sucrase using p-nitrophenyl-alpha-d-glucopyranoside as substrate at 1 mM incubated for 10 mins prior to substrate addition measured after 5 mins by spectrophotometry2014Bioorganic & medicinal chemistry letters, Feb-15, Volume: 24, Issue:4
Rat intestinal sucrase inhibition of constituents from the roots of Rosa rugosa Thunb.
AID403810Octanol-water partition coefficient, log POW of the compound2005Journal of natural products, Sep, Volume: 68, Issue:9
Efficiency of foam fractionation for the enrichment of nonpolar compounds from aqueous extracts of plant materials.
AID1080609Phytotoxic activity against Lolium perenne (perennial ryegrass) assessed as inhibition of root growth at 22 +/-2 degC after 72 hr2009Journal of agricultural and food chemistry, Apr-08, Volume: 57, Issue:7
Level of catechin, myricetin, quercetin and isoquercitrin in buckwheat (Fagopyrum esculentum Moench), changes of their levels during vegetation and their effect on the growth of selected weeds.
AID1417091Inhibition of human DHODH at 100 uM2018European journal of medicinal chemistry, Sep-05, Volume: 157Natural products as inhibitors of Leishmania major dihydroorotate dehydrogenase.
AID468514Antibacterial activity against Escherichia coli ATCC 10536 after 24 hrs by NCCLS method2010European journal of medicinal chemistry, Mar, Volume: 45, Issue:3
Synthesis and antimicrobial activities of 3-O-alkyl analogues of (+)-catechin: improvement of stability and proposed action mechanism.
AID339056Inhibition of Moloney murine leukemia virus reverse transcriptase using (riboadenylic acid)n(deoxythymidylic acid)12-18 as template primer by liquid scintillation counting1992Journal of natural products, Feb, Volume: 55, Issue:2
Inhibitory effects of flavonoids on Moloney murine leukemia virus reverse transcriptase activity.
AID333440Inhibition of cyclooxygenase activity of COX1 in sheep seminal vesicle in presence of 1 mM phenol by cyclooxygenase assay2004Journal of natural products, Nov, Volume: 67, Issue:11
Mechanism-based inactivation of COX-1 by red wine m-hydroquinones: a structure-activity relationship study.
AID336155Antioxidant activity assessed as DPPH free radical scavenging activity after 30 mins2002Journal of natural products, Sep, Volume: 65, Issue:9
New diarylheptanoids from the stems of Carpinus cordata.
AID338038Effect on glutamate oxaloacetic transaminase activity at 0.1 mg/ml
AID1821414Trypanocidal activity against Trypanosoma brucei brucei GUTat3.1 assessed as parasite growth inhibition at 50 ug/ml incubated for 3 days by Celltiter-Glo luminescence assay2022Journal of natural products, 01-28, Volume: 85, Issue:1
Benzophenone Glucosides and B-Type Proanthocyanidin Dimers from Zambian
AID624608Specific activity of expressed human recombinant UGT1A42000Annual review of pharmacology and toxicology, , Volume: 40Human UDP-glucuronosyltransferases: metabolism, expression, and disease.
AID377527Induction of supercoiled pSP64 plasmid DNA cleavage assessed as increase in nicked form 2 at 500 nM by agarose gel electrophoresis in presence of Cu2+2000Journal of natural products, Sep, Volume: 63, Issue:9
Use of COMPARE analysis to discover functional analogues of bleomycin.
AID358166Cytotoxicity against human KB cells by tetrazolium salt-based colorimetric assay1992Journal of natural products, Aug, Volume: 55, Issue:8
Antitumor agents, 129. Tannins and related compounds as selective cytotoxic agents.
AID468511Antibacterial activity against Staphylococcus epidermidis ATCC 0155 after 24 hrs by NCCLS method2010European journal of medicinal chemistry, Mar, Volume: 45, Issue:3
Synthesis and antimicrobial activities of 3-O-alkyl analogues of (+)-catechin: improvement of stability and proposed action mechanism.
AID338032Hepatoprotective activity against carbon tetrachloride-induced hepatotoxicity in fasted Sprague-Dawley rat hepatocytes assessed as serum glutamic oxaloacetic transaminase release at 1 mg/ml administered before 10 mins of carbon tetrachloride challenge mea
AID1083158Antifungal activity against Diplodia seriata PLU03 assessed as growth inhibition measured after 1 to 10 days2012Journal of agricultural and food chemistry, Dec-05, Volume: 60, Issue:48
Phenolics and their antifungal role in grapevine wood decay: focus on the Botryosphaeriaceae family.
AID338035Hepatoprotective activity against carbon tetrachloride-induced hepatotoxicity in fasted Sprague-Dawley rat hepatocytes assessed as serum glutamic pyruvate transaminase release at 0.1 mg/ml administered before 10 mins of carbon tetrachloride challenge meas
AID1699025Inhibition of quorum sensing system in Pseudomonas aeruginosa PAO12020Bioorganic & medicinal chemistry, 11-01, Volume: 28, Issue:21
Next generation quorum sensing inhibitors: Accounts on structure activity relationship studies and biological activities.
AID1316659Cytotoxicity against LPS-activated human BV2 cells assessed as cell viability at 10 uM after 24 hrs by MTT assay (Rvb = 98.03 to 98.84%)2016Bioorganic & medicinal chemistry letters, 10-15, Volume: 26, Issue:20
Bioactive phenols as potential neuroinflammation inhibitors from the leaves of Xanthoceras sorbifolia Bunge.
AID1080607Phytotoxic activity against Sinapis alba assessed as inhibition of root growth at 22 +/-2 degC after 72 hr2009Journal of agricultural and food chemistry, Apr-08, Volume: 57, Issue:7
Level of catechin, myricetin, quercetin and isoquercitrin in buckwheat (Fagopyrum esculentum Moench), changes of their levels during vegetation and their effect on the growth of selected weeds.
AID596671Induction of adipogenesis in mouse 3T3L1 cells assessed as increase in triglyceride level at 3 uM on day 8 relative to control2011Bioorganic & medicinal chemistry, May-01, Volume: 19, Issue:9
Structural requirements of flavonoids for the adipogenesis of 3T3-L1 cells.
AID1103075Bactericidal activity against Pseudomonas fluorescens at 3.1 ug/ml after 24 hr by BacLight bacterial viability fluorescence assay2004Journal of agricultural and food chemistry, Mar-10, Volume: 52, Issue:5
Phytotoxic and antimicrobial activities of catechin derivatives.
AID768892Competitive inhibition of human thrombin using D-Phe-Pip-Arg-pNA as substrate preincubated for 10 mins followed by substrate addition measured every 12 secs for 10 mins by Lineweaver-Burk plot analysis2014Medicinal chemistry research : an international journal for rapid communications on design and mechanisms of action of biologically active agents, , Volume: 23Thrombin inhibitory activity of some polyphenolic compounds.
AID475505Binding affinity to amyloid beta (1 to 42) oligomers by change in fluorescence at 100 uM after 10 mins2009Bioorganic & medicinal chemistry letters, Sep-01, Volume: 19, Issue:17
A chemical screening approach reveals that indole fluorescence is quenched by pre-fibrillar but not fibrillar amyloid-beta.
AID1744554Octanol-water distribution coefficient, log D of the compound at pH 7.4 after 1 hr by UV-VIS spectroscopic analysis2021Bioorganic & medicinal chemistry, 03-01, Volume: 33A role of flavonoids in cytochrome c-cardiolipin interactions.
AID338033Hepatoprotective activity against carbon tetrachloride-induced hepatotoxicity in fasted Sprague-Dawley rat hepatocytes assessed as serum glutamic oxaloacetic transaminase release at 3 mg/ml administered before 10 mins of carbon tetrachloride challenge mea
AID1674380Antifungal activity against Candida albicans SC5314 by CLSI protocol-based broth serial dilution method
AID551461Antioxidant activity assessed as peroxyl radical scavenging activity at 1 to 2 uM by ORAC assay2011Bioorganic & medicinal chemistry letters, Jan-15, Volume: 21, Issue:2
Antioxidant activity of a new C-glycosylflavone from the leaves of Ficus microcarpa.
AID650644Inhibition of Saccharomyces cerevisiae alcohol dehydrogenase measured every 5 mins for 2 hrs by spectrophotometry2012Bioorganic & medicinal chemistry, Apr-01, Volume: 20, Issue:7
Tea catechins and flavonoids from the leaves of Camellia sinensis inhibit yeast alcohol dehydrogenase.
AID1080606Phytotoxic activity against Amaranthus retroflexus assessed as inhibition of root growth at 22 +/-2 degC after 72 hr2009Journal of agricultural and food chemistry, Apr-08, Volume: 57, Issue:7
Level of catechin, myricetin, quercetin and isoquercitrin in buckwheat (Fagopyrum esculentum Moench), changes of their levels during vegetation and their effect on the growth of selected weeds.
AID468513Antibacterial activity against Escherichia coli ATCC 25922 after 24 hrs by NCCLS method2010European journal of medicinal chemistry, Mar, Volume: 45, Issue:3
Synthesis and antimicrobial activities of 3-O-alkyl analogues of (+)-catechin: improvement of stability and proposed action mechanism.
AID1417133Antileishmanial activity against Leishmania amazonensis IFLA/BR/1967/PH-8 promastigotes after 48 hrs by MTT assay2018European journal of medicinal chemistry, Sep-05, Volume: 157Natural products as inhibitors of Leishmania major dihydroorotate dehydrogenase.
AID1080608Phytotoxic activity against Plantago lanceolata assessed as inhibition of root growth at 22 +/-2 degC after 72 hr2009Journal of agricultural and food chemistry, Apr-08, Volume: 57, Issue:7
Level of catechin, myricetin, quercetin and isoquercitrin in buckwheat (Fagopyrum esculentum Moench), changes of their levels during vegetation and their effect on the growth of selected weeds.
AID332645Inhibition of calf thymus DNA topoisomerase 1 catalytic domain-mediated supercoiled Escherichia coli pUC8 DNA relaxation up to 100 uM after 30 mins by agarose gel electrophoresis1995Journal of natural products, Feb, Volume: 58, Issue:2
Flavonoids as DNA topoisomerase antagonists and poisons: structure-activity relationships.
AID358169Cytotoxicity against human TE671 cells by tetrazolium salt-based colorimetric assay1992Journal of natural products, Aug, Volume: 55, Issue:8
Antitumor agents, 129. Tannins and related compounds as selective cytotoxic agents.
AID1408111Inhibition of quorum sensing system in Chromobacterium violaceum ATCC 12472 assessed as diameter of violacein pigment inhibition at 5 mg/ml after 48 hrs2018European journal of medicinal chemistry, Sep-05, Volume: 157Design, synthesis, antimicrobial, antiquorum-sensing and antitumor evaluation of new series of pyrazolopyridine derivatives.
AID1405926Antioxidant activity assessed as hydroxyl radical scavenging activity2018European journal of medicinal chemistry, Aug-05, Volume: 156Current progress on antioxidants incorporating the pyrazole core.
AID1347405qHTS to identify inhibitors of the type 1 interferon - major histocompatibility complex class I in skeletal muscle: primary screen against the NCATS LOPAC collection2020ACS chemical biology, 07-17, Volume: 15, Issue:7
High-Throughput Screening to Identify Inhibitors of the Type I Interferon-Major Histocompatibility Complex Class I Pathway in Skeletal Muscle.
AID504836Inducers of the Endoplasmic Reticulum Stress Response (ERSR) in human glioma: Validation2002The Journal of biological chemistry, Apr-19, Volume: 277, Issue:16
Sustained ER Ca2+ depletion suppresses protein synthesis and induces activation-enhanced cell death in mast cells.
AID1347086qHTS for Inhibitors of the Functional Ribonucleoprotein Complex (vRNP) of Lymphocytic Choriomeningitis Arenaviruses (LCMV): LCMV Primary Screen - GLuc reporter signal2020Antiviral research, 01, Volume: 173A cell-based, infectious-free, platform to identify inhibitors of lassa virus ribonucleoprotein (vRNP) activity.
AID588378qHTS for Inhibitors of ATXN expression: Validation
AID1347410qHTS for inhibitors of adenylyl cyclases using a fission yeast platform: a pilot screen against the NCATS LOPAC library2019Cellular signalling, 08, Volume: 60A fission yeast platform for heterologous expression of mammalian adenylyl cyclases and high throughput screening.
AID1347049Natriuretic polypeptide receptor (hNpr1) antagonism - Pilot screen2019Science translational medicine, 07-10, Volume: 11, Issue:500
Inhibition of natriuretic peptide receptor 1 reduces itch in mice.
AID588349qHTS for Inhibitors of ATXN expression: Validation of Cytotoxic Assay
AID1347050Natriuretic polypeptide receptor (hNpr2) antagonism - Pilot subtype selectivity assay2019Science translational medicine, 07-10, Volume: 11, Issue:500
Inhibition of natriuretic peptide receptor 1 reduces itch in mice.
AID1347045Natriuretic polypeptide receptor (hNpr1) antagonism - Pilot counterscreen GloSensor control cell line2019Science translational medicine, 07-10, Volume: 11, Issue:500
Inhibition of natriuretic peptide receptor 1 reduces itch in mice.
AID504810Antagonists of the Thyroid Stimulating Hormone Receptor: HTS campaign2010Endocrinology, Jul, Volume: 151, Issue:7
A small molecule inverse agonist for the human thyroid-stimulating hormone receptor.
AID504812Inverse Agonists of the Thyroid Stimulating Hormone Receptor: HTS campaign2010Endocrinology, Jul, Volume: 151, Issue:7
A small molecule inverse agonist for the human thyroid-stimulating hormone receptor.
AID1347058CD47-SIRPalpha protein protein interaction - HTRF assay qHTS validation2019PloS one, , Volume: 14, Issue:7
Quantitative high-throughput screening assays for the discovery and development of SIRPα-CD47 interaction inhibitors.
AID1508630Primary qHTS for small molecule stabilizers of the endoplasmic reticulum resident proteome: Secreted ER Calcium Modulated Protein (SERCaMP) assay2021Cell reports, 04-27, Volume: 35, Issue:4
A target-agnostic screen identifies approved drugs to stabilize the endoplasmic reticulum-resident proteome.
AID1347083qHTS for Inhibitors of the Functional Ribonucleoprotein Complex (vRNP) of Lassa (LASV) Arenavirus: Viability assay - alamar blue signal for LASV Primary Screen2020Antiviral research, 01, Volume: 173A cell-based, infectious-free, platform to identify inhibitors of lassa virus ribonucleoprotein (vRNP) activity.
AID1347059CD47-SIRPalpha protein protein interaction - Alpha assay qHTS validation2019PloS one, , Volume: 14, Issue:7
Quantitative high-throughput screening assays for the discovery and development of SIRPα-CD47 interaction inhibitors.
AID1347057CD47-SIRPalpha protein protein interaction - LANCE assay qHTS validation2019PloS one, , Volume: 14, Issue:7
Quantitative high-throughput screening assays for the discovery and development of SIRPα-CD47 interaction inhibitors.
AID1347082qHTS for Inhibitors of the Functional Ribonucleoprotein Complex (vRNP) of Lassa (LASV) Arenavirus: LASV Primary Screen - GLuc reporter signal2020Antiviral research, 01, Volume: 173A cell-based, infectious-free, platform to identify inhibitors of lassa virus ribonucleoprotein (vRNP) activity.
AID1347151Optimization of GU AMC qHTS for Zika virus inhibitors: Unlinked NS2B-NS3 protease assay2020Proceedings of the National Academy of Sciences of the United States of America, 12-08, Volume: 117, Issue:49
Therapeutic candidates for the Zika virus identified by a high-throughput screen for Zika protease inhibitors.
AID540299A screen for compounds that inhibit the MenB enzyme of Mycobacterium tuberculosis2010Bioorganic & medicinal chemistry letters, Nov-01, Volume: 20, Issue:21
Synthesis and SAR studies of 1,4-benzoxazine MenB inhibitors: novel antibacterial agents against Mycobacterium tuberculosis.
AID588519A screen for compounds that inhibit viral RNA polymerase binding and polymerization activities2011Antiviral research, Sep, Volume: 91, Issue:3
High-throughput screening identification of poliovirus RNA-dependent RNA polymerase inhibitors.
AID1794808Fluorescence-based screening to identify small molecule inhibitors of Plasmodium falciparum apicoplast DNA polymerase (Pf-apPOL).2014Journal of biomolecular screening, Jul, Volume: 19, Issue:6
A High-Throughput Assay to Identify Inhibitors of the Apicoplast DNA Polymerase from Plasmodium falciparum.
AID1794808Fluorescence-based screening to identify small molecule inhibitors of Plasmodium falciparum apicoplast DNA polymerase (Pf-apPOL).
AID1745854NCATS anti-infectives library activity on HEK293 viability as a counter-qHTS vs the C. elegans viability qHTS2023Disease models & mechanisms, 03-01, Volume: 16, Issue:3
In vivo quantitative high-throughput screening for drug discovery and comparative toxicology.
AID1745855NCATS anti-infectives library activity on the primary C. elegans qHTS viability assay2023Disease models & mechanisms, 03-01, Volume: 16, Issue:3
In vivo quantitative high-throughput screening for drug discovery and comparative toxicology.
AID1803217Esterase Activity Assay from Article 10.3109/14756366.2011.651464: \\Analysis of saponins and phenolic compounds as inhibitors of a-carbonic anhydrase isoenzymes.\\2013Journal of enzyme inhibition and medicinal chemistry, Apr, Volume: 28, Issue:2
Analysis of saponins and phenolic compounds as inhibitors of α-carbonic anhydrase isoenzymes.
AID1803140Esterase Activity Assay from Article 10.3109/14756366.2011.643303: \\Carbonic anhydrase inhibitors: in vitro inhibition of a isoforms (hCA I, hCA II, bCA III, hCA IV) by flavonoids.\\2013Journal of enzyme inhibition and medicinal chemistry, Apr, Volume: 28, Issue:2
Carbonic anhydrase inhibitors: in vitro inhibition of α isoforms (hCA I, hCA II, bCA III, hCA IV) by flavonoids.
AID1159607Screen for inhibitors of RMI FANCM (MM2) intereaction2016Journal of biomolecular screening, Jul, Volume: 21, Issue:6
A High-Throughput Screening Strategy to Identify Protein-Protein Interaction Inhibitors That Block the Fanconi Anemia DNA Repair Pathway.
AID977611Experimentally measured binding affinity data (Kd) for protein-ligand complexes derived from PDB2013The Journal of biological chemistry, Dec-06, Volume: 288, Issue:49
The strawberry pathogenesis-related 10 (PR-10) Fra a proteins control flavonoid biosynthesis by binding to metabolic intermediates.
AID1159550Human Phosphogluconate dehydrogenase (6PGD) Inhibitor Screening2015Nature cell biology, Nov, Volume: 17, Issue:11
6-Phosphogluconate dehydrogenase links oxidative PPP, lipogenesis and tumour growth by inhibiting LKB1-AMPK signalling.
[information is prepared from bioassay data collected from National Library of Medicine (NLM), extracted Dec-2023]

Research

Studies (11,240)

TimeframeStudies, This Drug (%)All Drugs %
pre-1990398 (3.54)18.7374
1990's538 (4.79)18.2507
2000's3192 (28.40)29.6817
2010's5259 (46.79)24.3611
2020's1853 (16.49)2.80
[information is prepared from research data collected from National Library of Medicine (NLM), extracted Dec-2023]

Market Indicators

Research Demand Index: 65.16

According to the monthly volume, diversity, and competition of internet searches for this compound, as well the volume and growth of publications, there is estimated to be very strong demand-to-supply ratio for research on this compound.

MetricThis Compound (vs All)
Research Demand Index65.16 (24.57)
Research Supply Index3.76 (2.92)
Research Growth Index4.99 (4.65)
Search Engine Demand Index152.52 (26.88)
Search Engine Supply Index2.86 (0.95)

This Compound (65.16)

All Compounds (24.57)

Study Types

Publication TypeThis drug (%)All Drugs (%)
Trials0 (0.00%)5.53%
Trials0 (0.00%)5.53%
Trials0 (0.00%)5.53%
Trials477 (4.13%)5.53%
Reviews2 (4.76%)6.00%
Reviews0 (0.00%)6.00%
Reviews0 (0.00%)6.00%
Reviews833 (7.22%)6.00%
Case Studies0 (0.00%)4.05%
Case Studies0 (0.00%)4.05%
Case Studies0 (0.00%)4.05%
Case Studies37 (0.32%)4.05%
Observational0 (0.00%)0.25%
Observational0 (0.00%)0.25%
Observational0 (0.00%)0.25%
Observational7 (0.06%)0.25%
Other40 (95.24%)84.16%
Other7 (100.00%)84.16%
Other6 (100.00%)84.16%
Other10,190 (88.27%)84.16%
[information is prepared from research data collected from National Library of Medicine (NLM), extracted Dec-2023]