Page last updated: 2024-12-05

nadp

Description Research Excerpts Clinical Trials Roles Classes Pathways Study Profile Bioassays Related Drugs Related Conditions Protein Interactions Research Growth Market Indicators

Cross-References

ID SourceID
PubMed CID2734411
MeSH IDM0014413
PubMed CID5885
CHEMBL ID295069
CHEBI ID44409
SCHEMBL ID7869
MeSH IDM0014413

Synonyms (74)

Synonym
NADP ,
24292-60-2
nadide phosphate disodium
AKOS016012243
triphosphopyridine nucleotide disodium salt
nadp disodium
beta-nicotinamide adenine dinucleotide phosphate disodium salt
disodium nadp
mfcd00065390
nadp disodium salt
nadp, disodium salt
BCP11528-1
disodium 1-[(2r,3r,4s,5r)-5-{[({[(2r,3r,4r,5r)-5-(6-amino-9h-purin-9-yl)-3-hydroxy-4-(phosphonatooxy)oxolan-2-yl]methoxy}(hydroxy)phosphoryl phosphonato)oxy]methyl}-3,4-dihydroxyoxolan-2-yl]-3-carbamoyl-1??-pyridin-1-ylium
AS-75272
disodium;[(2r,3r,4r,5r)-2-(6-aminopurin-9-yl)-5-[[[[(2r,3s,4r,5r)-5-(3-carbamoylpyridin-1-ium-1-yl)-3,4-dihydroxyoxolan-2-yl]methoxy-oxidophosphoryl]oxy-hydroxyphosphoryl]oxymethyl]-4-hydroxyoxolan-3-yl] phosphate
tpn 2na
1-((2r,3r,4s,5r)-5-((((((((2r,3r,4r,5r)-5-(6-amino-9h-purin-9-yl)-3-hydroxy-4-(phosphonooxy)tetrahydrofuran-2-yl)methoxy)(hydroxy)phosphoryl)oxy)oxidophosphoryl)oxy)methyl)-3,4-dihydroxytetrahydrofuran-2-yl)-3-carbamoylpyridin-1-ium, disodium salt
Q27253318
A936565
nadp disodium;
nadpdisodium
triphosphopyridinenucleotidedisodiumsalt
DTXSID401044998
CHEMBL295069
einecs 200-178-1
nad phosphate
brn 3885115
nadide phosphate
nadp nicotinamide-adenine-dinucleotide phosphate
adenosine 5'-(trihydrogen diphosphate), 2'-(dihydrogen phosphate), p'-5'-ester with 3-(aminocarbonyl)-1-beta-d-ribofuranosylpyridinium, inner salt (9ci)
tpn (nucleotide)
codehydrogenase ii
adenosine 5'-(trihydrogen diphosphate), 2'-(dihydrogen phosphate), 5'->'-ester with 3-(aminocarbonyl)-1-beta-d-ribofuranosylpyridinium hydroxide, inner salt
pyridinium, 3-carbamoyl-1-beta-d-ribofuranosyl-, hydroxide, 5',5'-ester with adenosine 2'-(dihydrogen phosphate) 5'-(trihydrogen pyrophosphate), inner salt
codehydrase ii
adenine-nicotinamide dinucleotide phosphate
cozymase ii
adenosine 5'-(trihydrogen diphosphate), 2'-(dihydrogen phosphate), p'-5'-ester with 3-(aminocarbonyl)-1-beta-d-ribofuranosylpyridinium, inner salt
pyridinium, 3-carbamoyl-1-beta-d-ribofuranosyl-, hydroxide, 5'-5'-ester with adenosine 2'-(dihydrogen phosphate) 5'-(trihydrogen pyrophosphate), inner salt (8ci)
beta-tpn
triphosphopyridine nucleotide
beta-nicotinamide adenine dinucleotide phosphate
CHEBI:44409 ,
DB03461
nicotinamide-adenine dinucleotide phosphate
944A1E1D-E8B9-42AF-B61D-7C4242AB099A
[[(2r,3r,4r,5r)-5-(6-aminopurin-9-yl)-3-hydroxy-4-phosphonooxyoxolan-2-yl]methoxy-hydroxyphosphoryl] [(2r,3s,4r,5r)-5-(3-carbamoylpyridin-1-ium-1-yl)-3,4-dihydroxyoxolan-2-yl]methyl phosphate
4-26-00-03672 (beilstein handbook reference)
adenosine 5'-(trihydrogen diphosphate), 2'-(dihydrogen phosphate), p'->5'-ester with 3-(aminocarbonyl)-1-beta-d-ribofuranosylpyridinium, inner salt
unii-by8p107xep
adenosine 5'-(trihydrogen diphosphate), 2'-(dihydrogen phosphate), p'.fwdarw.5'-ester with 3-(aminocarbonyl)-1-beta-d-ribofuranosylpyridinium, inner salt
adenosine 5'-(trihydrogen diphosphate), 2'-(dihydrogen phosphate), p'.fwdarw.5'-ester with 3-(aminocarbonyl)-1-.beta.-d-ribofuranosylpyridinium, inner salt
codehydrogenaseii
SCHEMBL7869
b-nadp
W-203016
.beta.-nicotinamide adenine dinucleotide phosphate
.beta.-nadp
XJLXINKUBYWONI-NNYOXOHSSA-N
b-nicotinamide adenine dinucleotide phosphate
b-tpn
ss-nicotinamide adenine dinucleotide phosphate hydrate, napd
1-((2r,3r,4s,5r)-5-((((((((2r,3r,4r,5r)-5-(6-amino-9h-purin-9-yl)-3-hydroxy-4-(phosphonooxy)tetrahydrofuran-2-yl)methoxy)(hydroxy)phosphoryl)oxy)oxidophosphoryl)oxy)methyl)-3,4-dihydroxytetrahydrofuran-2-yl)-3-carbamoylpyridin-1-ium
DTXSID50889327
1-((2r,3r,4s,5r)-5-((((((2r,3r,4r,5r)-5-(6-amino-9h-purin-9-yl)-3-hydroxy-4-(phosphonooxy)tetrahydrofuran-2-yl)methoxy)(hydroxy)phosphoryloxy)oxidophosphoryloxy)methyl)-3,4-dihydroxytetrahydrofuran-2-yl)-3-carbamoylpyridinium
nadp zwitterion
Q28747
CS-0059610
HY-113325
D87726
beta -nicotinamide adenine dinucleotide phosphate
nadp+ (hydrate)
AC-37030
BP-58609

Research Excerpts

Toxicity

NADPH depletion may be a toxic effect common to quinone drugs. p-Tert-butylbenzoic acid, an inhibitor of gluconeogenesis, decreased selenite dependent O2 consumption and potentiated the effect on NADPH levels.

ExcerptReferenceRelevance
"Dehydroascorbate, an electron affinic metabolite of vitamin C, sensitized Ehrlich ascites tumor cells, in vivo, to radiation and was selectively toxic to V79 Chinese hamster lung cells under hypoxic conditions (without radiation)."( Toxicity, radiation sensitivity modification, and metabolic effects of dehydroascorbate and ascorbate in mammalian cells.
Biaglow, JE; Koch, CJ, 1978
)
0.26
" In view of the inclusion of nicotinic acid, nicotinamide, salicylic acid, and phenylbutazone in this correlation between toxicity and 7-14C-nicotinamide mobilization, it is not necessary that the formation of compounds analogous to the nicotinamide dinucleotides plays a significant role in the toxic manifestations of the nicotinamide analogs."( Drug-biomolecule interactions: drug toxicity and vitamin coenzyme depletion.
Ahmad, N; Bederka, JP; Davitiyananda, D; Moses, ML, 1975
)
0.25
" The results showed that the carboxylic-containing drugs and the 1,4-dihydroxy AQ were weak sister chromatid exchange inducers and the most toxic among the six anthraquinones examined."( Superoxide anion production and toxicity in V79 cells of six hydroxy-anthraquinones.
Benetti, D; Fratta, D; Gervasi, PG; Mariani, T; Mian, M; Rainaldi, G; Simi, S,
)
0.13
"The toxic effects of vanadium pentoxide were investigated following chronic exposure."( Toxic effects of long-term intratracheal administration of vanadium pentoxide in rats.
Byczkowski, JZ; Kulkarni, AP; Zychlinski, L, 1991
)
0.28
" The severity of the muscle damage induced by these compounds in vivo was found to be directly proportional to their autoxidation rates in vitro, suggesting that reactive species formed during oxidation may be involved in the initiation of this toxic effect."( Structure-activity relationships in the myotoxicity of ring-methylated p-phenylenediamines in rats and correlation with autoxidation rates in vitro.
Fowke, EA; Hoggard, GK; Manns, E; Munday, R, 1990
)
0.28
" It was demonstrated that cytotoxicity was greater in PBMCs which were obtained from patients with chronic active hepatitis with a parallel malotilate-induced liver injury than in those from two different control groups; normal volunteers and patients with chronic active hepatitis who had had long-term malotilate treatment without any adverse reactions."( Detection of malotilate toxicity in vitro with peripheral blood mononuclear cells as targets. A preliminary report.
Nomura, F; Ohnishi, K; Ohto, M, 1990
)
0.28
" 1,4-NQ was more toxic than 2-Me-1,4-NQ whereas 2,3-diMe-1,4-NQ did not cause cell death at the solubility-limited concentrations used."( Mechanisms of toxicity of naphthoquinones to isolated hepatocytes.
Cohen, GM; Miller, MG; Rodgers, A, 1986
)
0.27
"142) were found to protect mice against the hepatotoxicity of paracetamol, which is due to cytochrome P-450 dependent formation of toxic metabolites and radicals."( In vivo effects of immunostimulating lipopeptides on mouse liver microsomal cytochromes P-450 and on paracetamol-induced toxicity.
Delaforge, M; Jaouen, M; Jollès, P; Mansuy, D; Migliore-Samour, D, 1989
)
0.28
" Although it has proved safe in use there have been a number of cases of poisoning after the intentional swallowing of the commercial product."( Paraquat toxicity.
Smith, LL, 1985
)
0.27
"The role of S-oxidation in the toxic bioactivation of alpha-naphthylisothiocyanate (ANIT) was investigated."( Effect of inhibitors of alpha-naphthylisothiocyanate-induced hepatotoxicity on the in vitro metabolism of alpha-naphthylisothiocyanate.
Hanzlik, RP; Traiger, GJ; Vyas, KP, 1985
)
0.27
" This is most likely due to the effect of 2,4,5-HBB and toxic congeners formed during the irradiation of 2,4,5-HBB."( Photolysis products of 2,4,5,2',4',5'-hexabromobiphenyl: hepatic microsomal enzyme induction and toxicity in Sprague-Dawley rats.
Aust, SD; Millis, CD; Mills, R; Sleight, SD, 1985
)
0.27
" NADPH depletion may be a toxic effect common to quinone drugs."( Modulation of cytotoxicity of menadione sodium bisulfite versus leukemia L1210 by the acid-soluble thiol pool.
Akman, SA; Block, JB; Chlebowski, R; Dietrich, M; Limberg, P, 1985
)
0.27
" The drug semiquinone, in turn, autoxidizes and efficiently generates highly reactive and toxic oxyradicals."( A possible role for membrane lipid peroxidation in anthracycline nephrotoxicity.
Gram, TE; Mimnaugh, EG; Trush, MA, 1986
)
0.27
"The disulfide metabolites of thiono-sulfur drugs were found to be about 50 to 100 times more toxic to isolated rat hepatocytes than the corresponding parent drugs."( The toxicity of disulphides to isolated hepatocytes and mitochondria.
Jatoe, SD; Lauriault, V; McGirr, LG; O'Brien, PJ, 1988
)
0.27
" The toxic electrophile produced by cytochrome P-450 oxidation of acetaminophen, N-acetyl-p-benzoquinoneimine, is reduced rapidly by NADH in aqueous solution."( Mechanism by which ethanol diminishes the hepatotoxicity of acetaminophen.
Nelson, SD; Slattery, JT; Thummel, KE, 1988
)
0.27
" An improved method is described in which toxic APAP metabolites are generated by a purified and reconstituted cytochrome P-450 system, minimizing the amount of exogenous detoxification enzymes in the assay."( Drug metabolite toxicity assessed in human lymphocytes with a purified, reconstituted cytochrome P-450 system.
Cannon, M; Leeder, JS; Nakhooda, A; Spielberg, SP, 1988
)
0.27
" This species of oxygen radical can contribute to the formation of more toxic species of radical which may directly damage vital cellular constituents."( Mechanism of paraquat toxicity in lung and its relevance to treatment.
Smith, LL, 1987
)
0.27
" Diquat was shown to be more toxic than paraquat toward these cells in the first three assay systems."( Bipyridylium herbicide toxicity: effects of paraquat and diquat on isolated rat hepatocytes.
Stevens, JB; Suleiman, SA,
)
0.13
" Since it was unclear whether light exposure enhanced DTIC antitumor activity or local toxic effects in vivo, a series of experiments was performed in mice given DTIC solutions exposed to light for 2 hours at room temperature."( Experimental dacarbazine antitumor activity and skin toxicity in relation to light exposure and pharmacologic antidotes.
Alberts, DS; Dorr, RT; Einspahr, J; Mason-Liddil, N; Soble, M, 1987
)
0.27
"The 24-hr LD50 values of carbon disulfide (CS2) were estimated in 1-, 5-, 10-, 20-, 30-, and 40-day-old rats."( Toxicity of carbon disulfide in developing rats: LD50 values and effects on the hepatic mixed-function oxidase enzyme system.
Green, EC; Hunter, A, 1985
)
0.27
" No differences were observed in the toxic effects of methylnitrosourea, a carcinogen that does not need metabolic activation, on normal and variant fibroblasts."( Effect of glucose-6-phosphate dehydrogenase deficiency on the benz(a)pyrene toxicity for in vitro cultured human skin fibroblasts.
Daino, L; Feo, F; Frassetto, S; Garcea, R; Gaspa, L; La Spina, V; Ledda, GM; Pascale, R; Pirisi, L; Zanetti, S, 1982
)
0.26
" In this instance, mitochondria initiation of such a cycle with quinones results not only in the formation of toxic radical species but also in the diversion of electrons from phosphorylating pathways."( Futile redox cycling: implications for oxygen radical toxicity.
Hochstein, P,
)
0.13
" p-Tert-butylbenzoic acid, an inhibitor of gluconeogenesis, decreased selenite dependent O2 consumption and potentiated the effect on NADPH levels as well as the toxic effect."( Effects of selenite on O2 consumption, glutathione oxidation and NADPH levels in isolated hepatocytes and the role of redox changes in selenite toxicity.
Anundi, I; Högberg, J; Ståhl, A, 1984
)
0.27
" The results indicate that this was the major metabolic pathway for toxic concentrations of selenite in isolated hepatocytes."( Involvement of glutathione reductase in selenite metabolism and toxicity, studied in isolated rat hepatocytes.
Anundi, I; Högberg, J; Ståhl, A, 1982
)
0.26
" Considering the trans-anethole genotoxicity data base as a whole, including the positive response observed only in the L5178Y mouse lymphoma TK+/- assay, the irreproducible response in the Salmonella/microsome test, the negative result in the chromosome aberration test in vitro and the results from 32P-postlabeling studies in vivo, as well as the occurrence of liver tumors in the rat bioassay only at doses which exceeded the MTD and caused significant liver toxicity, repeated toxic insult followed by compensatory cell proliferation is favored as an underlying mechanism for the observed rat tumorigenic response."( Genotoxicity of trans-anethole in vitro.
Gorelick, NJ, 1995
)
0.29
"One potential mechanism of aerobic cytotoxicity is redox cycling of SR 4233 with molecular oxygen resulting in several potentially toxic oxidative species that overburden the intrinsic intracellular detoxification systems such as superoxide dismutase, catalase, and glutathione peroxidase."( Protection against SR 4233 (Tirapazamine) aerobic cytotoxicity by the metal chelators desferrioxamine and tiron.
Biaglow, JE; Coleman, CN; Cook, JA; Gonzalez, FJ; Herscher, LL; Krishna, MC; Mitchell, JB; Tuttle, SW, 1994
)
0.29
"SR-4233 is activated to a toxic species by bioreductive metabolism."( Bioreductive metabolism of SR-4233 (WIN 59075) by whole cell suspensions under aerobic and hypoxic conditions: role of the pentose cycle and implications for the mechanism of cytotoxicity observed in air.
Biaglow, JE; Coleman, CN; Hazard, L; Koch, CJ; Mitchell, JB; Tuttle, SW, 1994
)
0.29
" Although the toxic effects of paraquat are associated with the generation of very active superoxides, U2 cells contained higher levels of superoxide dismutase and catalase than RLF cells."( Protection of a rat tracheal epithelial cell line from paraquat toxicity by inhibition of glucose-6-phosphate dehydrogenase.
Ho, IC; Kao, SL; Lai, GJ; Lee, TC; Wu, CW, 1993
)
0.29
" The viability of the outer hair cells did not decrease after the incubation in non-metabolized cisplatin solutions or S9 fraction only, demonstrating the absence of toxic effect from non-metabolized cisplatin and the absence of intrinsic toxic substances in S9 fraction."( Cisplatin metabolites and their toxicity on isolated cochlear outer hair cells in vitro.
Manabe, Y; Saito, H; Saito, T; Yamada, T; Yamamoto, T, 1996
)
0.29
" Autonomic motor neurons that were stained for either nicotinamide adenine dinucleotide phosphate reduced diaphorase or choline acetyltransferase only were both able to tolerate 50 microM N-methyl-D-aspartate treatment for over seven days in culture with no apparent adverse effects."( Differential vulnerability of autonomic and somatic motor neurons to N-methyl-D-aspartate-induced excitotoxicity.
Annis, CM; Vaughn, JE, 1998
)
0.3
" In this study we investigated the kinetics and toxicity of 2,3,7,8-tetrachlorothianthren (TCTA), the analogue of the most toxic PCDD congener 2,3,7,8-tetrachlorodibenzo-p-dioxin (TCDD)."( Elimination kinetics and toxicity of 2,3,7,8-tetrachlorothianthren, a thio analogue of 2,3,7,8-TCDD.
Hagenmaier, H; Schrenk, D; Weber, R, 1998
)
0.3
" We use a multiple logistic regression model to test for adverse effects of acid rain on the Wood Thrush, while controlling for regional abundance, landscape-level habitat fragmentation, elevation, soil pH, and vegetation."( Adverse effects of acid rain on the distribution of the Wood Thrush Hylocichla mustelina in North America.
Barker, SE; Dhondt, AA; Hames, RS; Lowe, JD; Rosenberg, KV, 2002
)
0.31
"Paraquat, a quarternary nitrogen herbicide, is a highly toxic compound for humans and animals and many cases of acute poisoning and death have been reported over the past few decades."( Role of antioxidants in paraquat toxicity.
Suntres, ZE, 2002
)
0.31
" People vary greatly in their susceptibility to adverse health outcomes from benzene exposure."( [Individual susceptibility to hematotoxicity from benzene exposure and the genetic polymorphism of metabolic enzymes].
Chen, Y; Li, G; Yin, S, 2002
)
0.31
" However, therapeutic effects of nilutamide are overshadowed by the occurrence of several adverse reactions mediated by toxic mechanism(s), which remain(s) poorly investigated."( Reduction of nilutamide by NO synthases: implications for the adverse effects of this nitroaromatic antiandrogen drug.
Ask, K; Boucher, JL; Camus, P; Casse, L; Dijols, S; Frapart, YM; Giroud, C; Kim, KS; Mansuy, D; Sari, MA; Stuehr, DJ, 2003
)
0.32
" However, prolonged exposure to elevated glucose exerts toxic effects on beta cells and results in beta cell dysfunction and ultimately beta cell death (glucose toxicity)."( Oxidative stress is a mediator of glucose toxicity in insulin-secreting pancreatic islet cell lines.
Knobel, SM; May, JM; Nicholson, W; Piston, DW; Powers, AC; Steffner, RJ; Wu, L, 2004
)
0.32
"In contrast with the Parkinson's-like effects associated with the mitochondrial neurotoxin N-methyl-4-phenyl-1,2,3,6-tetrahydropyridine (MPTP) and the neuroleptic agent haloperidol, there exist no reports on adverse central nervous system (CNS) effects with the structurally related N-substituted-4-arylpiperidin-4-ol derivative and antidiarrheal agent loperamide."( Identification of an N-methyl-4-phenylpyridinium-like metabolite of the antidiarrheal agent loperamide in human liver microsomes: underlying reason(s) for the lack of neurotoxicity despite the bioactivation event.
Kalgutkar, AS; Nguyen, HT, 2004
)
0.32
" These assays were carried out with different dosages of several toxic compounds with the following permanent cell lines: human liver (Hep G2), human endometrium (ECC-1), human cervix (HeLa) and Chinese hamster ovary (CHO) cells."( Cytotoxic effects of 110 reference compounds on HepG2 cells and for 60 compounds on HeLa, ECC-1 and CHO cells. II mechanistic assays on NAD(P)H, ATP and DNA contents.
de Roos, JA; Débiton, E; Schoonen, WG; Westerink, WM, 2005
)
0.33
"In a number of adverse drug reactions leading to hepatotoxicity drug metabolism is thought to be involved by generation of reactive metabolites from nontoxic drugs."( Development of an in vitro assay for the investigation of metabolism-induced drug hepatotoxicity.
Badolo, L; Dalgaard, L; Dubois, J; Hansen, SH; Otto, M, 2008
)
0.35
" However, although an ideal delivery system should have high efficacy and minimal toxicity, existing materials fall short, most of them being either too toxic or little effective."( Breaking up the correlation between efficacy and toxicity for nonviral gene delivery.
Breunig, M; Goepferich, A; Liebl, R; Lungwitz, U, 2007
)
0.34
" The current thinking is that anthracyclines are toxic per se but gain further cardiotoxicity after one-electron reduction with ROS overproduction or two-electron reduction with conversion to C-13 alcohol metabolites."( New developments in anthracycline-induced cardiotoxicity.
Giardina, B; Martorana, GE; Meucci, E; Mordente, A; Silvestrini, A, 2009
)
0.35
" The redox cycling of paraquat has two potentially important consequences relevant to the development of toxicity: the generation of the superoxide anion, which can lead to the formation of more toxic reactive oxygen species which are highly reactive to cellular macromolecules; and the oxidation of reducing equivalents (e."( Nitric oxide in paraquat-mediated toxicity: A review.
Fuentes, JM; Morán, JM; Ortiz-Ortiz, MA; Ruiz-Mesa, LM,
)
0.13
" For 59 toxic reference compounds, an evaluation for both assays was carried up to 10(-3)M."( Cytotoxic effects of 109 reference compounds on rat H4IIE and human HepG2 hepatocytes. III: Mechanistic assays on oxygen consumption with MitoXpress and NAD(P)H production with Alamar Blue™.
Horbach, GJ; Schoonen, WG; Stevenson, JC; Westerink, WM, 2012
)
0.38
" However, leaching of toxic metals from QDs is of great concern."( Acute toxicity and tissue distribution of CdSe/CdS-MPA quantum dots after repeated intraperitoneal injection to mice.
Haque, MM; Hasan, M; Im, HY; Kwon, OS; Seo, JE; Woo, K, 2013
)
0.39
" These data illustrated that NQO1 involved in the imine bond reduction of sanguinarine and this was a less toxic metabolizing pathway than CYP1A1-metabolizing pathway."( NQO1 involves in the imine bond reduction of sanguinarine and recombinant adeno-associated virus mediated NQO1 overexpression decreases sanguinarine-induced cytotoxicity in rat BRL cells.
Li, YJ; Liu, ZY; Sun, ZL; Zhang, DS, 2014
)
0.4
"The liver is an important organ for its ability to transform xenobiotics, making the liver tissue a prime target for toxic substances."( Protective effect of bixin on carbon tetrachloride-induced hepatotoxicity in rats.
Guelfi, M; Maioli, MA; Medeiros, HC; Mingatto, FE; Moreira, PR; Pereira, FT, 2014
)
0.4
" Single dosing of NADPH or omitting toxic components from the MAS preparation did also not reduce embryotoxicity."( Antioxidants reduce reactive oxygen species but not embryotoxicity in the metabolic Danio rerio test (mDarT).
Bars, C; Knapen, D; Pype, C; Saad, MA; Van Cruchten, SJ; Van Ginneken, CJ; Verbueken, E, 2017
)
0.46
"Paraquat dichloride, a herbicide used for weed and grass control, is extremely toxic to humans and animals."( Exploring the potential benefit of natural product extracts in paraquat toxicity.
Suntres, ZE, 2018
)
0.48
" ZnO-NPs are toxic to fish, but there are few reports on its immunotoxicity on crucian carp (Carassius carassius)."( Zinc oxide nanoparticles (ZnO-NPs) exhibit immune toxicity to crucian carp (Carassius carassius) by neutrophil extracellular traps (NETs) release and oxidative stress.
Hong, H; Jiang, A; Jiang, L; Li, P; Li, S; Liu, Z; Wei, Z; Wu, D; Wu, Z; Xu, J; Yang, Z; Zhang, Y, 2022
)
0.72
" However, excessive exposure to zinc can cause toxic damage to living organism."( Crosstalk Between the Mitochondrial Dynamics and Oxidative Stress in Zinc-induced Cytotoxicity.
Ao, D; Li, Y; Liu, X; Yang, J; Yang, Q; Yong, K; Zhang, Y; Zhong, P, 2023
)
0.91

Pharmacokinetics

ExcerptReferenceRelevance
" Efficient use of pharmacokinetic models may help in reducing these unwanted actions of methotrexate in cancer chemotherapy."( Methotrexate. I. Pharmacology and pharmacokinetics.
Lippens, RJ, 1984
)
0.27
" administration of M2, 5 mg kg(-1), to rats, the mean plasma concentrations of M2 were detected up to 60 min with a mean terminal half-life of only 38."( Comparison of pharmacokinetics of M1, M2, M3, and M4 after intravenous administration of DA-125 or ME2303 to mice and rats. New adriamycin analogues containing fluorine.
Kim, WB; Lee, MG; Lee, SD; Lee, WI; Shim, HJ; Yang, J; Yoon, EJ, 1996
)
0.29
" Other pharmacokinetic parameters, such as volume of distribution and plasma protein binding did not show any statistical differences."( Pharmacokinetics of verapamil in New Zealand white rabbits during ontogeny.
Aramayona, JJ; Bregante, MA; Fraile, LJ; Garcia, MA; Solans, C, 2000
)
0.31
" The in vivo clearance of tanshinone IIA was acquired from a pharmacokinetic study in rat."( The prediction of the hepatic clearance of tanshinone IIA in rat liver subcellular fractions: accuracy improvement.
Khlentzos, A; Li, J; Li, P; Liu, X; Roberts, MS; Wang, GJ; Zhang, Q, 2008
)
0.35

Compound-Compound Interactions

ExcerptReferenceRelevance
"05%) combined with dietary choline deficiency was used to study changes in aldehyde dehydrogenase (ALDH) activity during hepatocarcinogenesis in male Sprague-Dawley rats."( Changes in aldehyde dehydrogenase occurring during rat hepatocarcinogenesis induced by ethionine combined with dietary choline deficiency.
Evces, S; Lindahl, R, 1986
)
0.27
" However, due to its low dose and relatively low unbound exposure, selexipag has a low potential for causing drug-drug interactions."( The metabolism and drug-drug interaction potential of the selective prostacyclin receptor agonist selexipag.
Äänismaa, P; de Kanter, R; Delahaye, S; Gnerre, C; Ichikawa, T; Pfeifer, T; Seeland, S; Segrestaa, J; Treiber, A; Yamada, T, 2018
)
0.48
" The metabolites were characterized by liquid chromatography in combination with Q-Exactive-Orbitrap-MS."( In vitro metabolites characterization of ponatinib in human liver microsomes using ultra-high performance liquid chromatography combined with Q-Exactive-Orbitrap tandem mass spectrometry.
Gao, L; Lang, X; Liu, Q; Xu, Q, 2020
)
0.56
" The incubation samples were analyzed by liquid chromatography combined with electrospray ionization high-resolution mass spectrometry."( Identification of lusianthridin metabolites in rat liver microsomes by liquid chromatography combined with electrospray ionization time-of-flight mass spectrometry.
Guan, H; Ju, Z; Liao, Q; Ma, C; Tang, X; Wang, Z; Yang, L; Yang, Y, 2021
)
0.62
" To fight against COVID-19 in a more efficient way, drug-drug or drug-herb combinations are frequently used in clinical settings."( Inhibition of drug-metabolizing enzymes by Qingfei Paidu decoction: Implication of herb-drug interactions in COVID-19 pharmacotherapy.
Chen, HZ; Ge, GB; Huang, J; Liang, XM; Liu, W; Liu, YF; Tu, DZ; Wang, CR; Yang, L; Zhang, F; Zhang, WD, 2021
)
0.62
" The FLIM method combined with unsupervised machine learning (FLIM-ML) had a sensitivity and specificity of 90."( Early Detection of Cervical Cancer by Fluorescence Lifetime Imaging Microscopy Combined with Unsupervised Machine Learning.
Fei, Y; Ji, M; Kong, Y; Ma, J; Mi, L; Su, W; Wang, Y; Xue, R; Zhong, J, 2022
)
0.72

Bioavailability

The predominant metabolic pathways observed in the present study could be attributed to preponderant bioavailability of NAD+ and NADPH in the intact transfected cells used. These results validate this novel approach to improve NADPH bioavailability in E. coli.

ExcerptReferenceRelevance
"5 hours, and bioavailability is 89%."( Recombinant interferon gamma for treatment of chronic granulomatous disease and other disorders.
Bolinger, AM; Taeubel, MA, 1992
)
0.28
" The predominant metabolic pathways observed in the present study could be attributed to preponderant bioavailability of NAD+ and NADPH in the intact transfected cells used."( Formation and degradation of dihydrotestosterone by recombinant members of the rat 3 beta-hydroxysteroid dehydrogenase/delta 5-delta 4 isomerase family.
Bélanger, A; de Launoit, Y; Durocher, F; Labrie, F; Sanchez, R; Simard, J, 1994
)
0.29
" The reported exclusive bioavailability of the co-factors NADPH and NAD+ in vivo, however, will direct the metabolic pathways in these tissues to sustain the formation of DHT."( 3 Alpha-hydroxysteroid oxidoreductase activities in dihydrotestosterone degradation and back-formation in rat prostate and epididymis.
Benraad, TJ; Smals, AG; Span, PN; Sweep, CG, 1996
)
0.29
" Dried skim milk with most of its niacin in free form showed 98% niacin equivalent to be bioavailable whereas in pearl millet niacin was in bound form and bioavailability equivalent was only 48 per cent."( Hepatic pyridine nucleotides content in rat--a better indicator for determining available niacin values of food.
Behl, R; Deodhar, AD, 1999
)
0.3
" The oral bioavailability of SB-277011 in rat, dog and cynomolgus monkey was 35, 43 and 2%, respectively."( Pharmacokinetics of the novel, high-affinity and selective dopamine D3 receptor antagonist SB-277011 in rat, dog and monkey: in vitro/in vivo correlation and the role of aldehyde oxidase.
Austin, NE; Ayrton, A; Baldwin, SJ; Cutler, L; Deeks, N; Jeffrey, P; Kelly, PJ; Nash, M; Shardlow, CE; Stemp, G; Thewlis, K,
)
0.13
"23 micro g h ml(-1) and the bioavailability was 75%."( Pharmacokinetics and metabolism of NO-1886, a lipoprotein lipase-promoting agent, in cynomolgus monkey.
Harada, M; Imai, T; Morioka, Y; Naito, S, 2003
)
0.32
"0 micromol/L nebivolol restored NO bioavailability in endothelial cells from black donors with concurrent reductions in O2- and ONOO- release, similar to levels in the endothelium of whites."( Nebivolol reduces nitroxidative stress and restores nitric oxide bioavailability in endothelium of black Americans.
Jacob, RF; Jacoby, AM; Kalinowski, L; Malinski, T; Mason, RP, 2005
)
0.33
"Reduced endothelial NO bioavailability in American blacks is mainly due to excessive O2- and ONOO- generation by NAD(P)H and uncoupled endothelial NO synthase."( Nebivolol reduces nitroxidative stress and restores nitric oxide bioavailability in endothelium of black Americans.
Jacob, RF; Jacoby, AM; Kalinowski, L; Malinski, T; Mason, RP, 2005
)
0.33
"Dietary CQA reduces oxidative stress and improves nitric oxide bioavailability by inhibiting excessive production of reactive oxygen species in the vasculature, and leads to the attenuation of endothelial dysfunction, vascular hypertrophy, and hypertension in spontaneously hypertensive rats."( Chlorogenic acid attenuates hypertension and improves endothelial function in spontaneously hypertensive rats.
Fujii, A; Jokura, H; Saito, I; Suzuki, A; Tokimitsu, I; Yamamoto, M; Yamamoto, N, 2006
)
0.33
" We investigated whether the antioxidant vitamin E could preserve renal function and NO bioavailability and reduce oxidative stress in the 5/6th nephrectomy (NX) rat model."( Vitamin E reduces glomerulosclerosis, restores renal neuronal NOS, and suppresses oxidative stress in the 5/6 nephrectomized rat.
Baylis, C; Dikalova, A; Freshour, G; Griendling, K; Tain, YL, 2007
)
0.34
" Basal nitric oxide (NO) bioavailability in the aorta was determined from the contractile response induced by the NO synthase inhibitor N(G)-nitro-L-arginine methyl ester (L-NAME, 10(-4) mol/L)."( Ferulic acid restores endothelium-dependent vasodilation in aortas of spontaneously hypertensive rats.
Fujii, A; Hase, T; Jokura, H; Saito, I; Suzuki, A; Tokimitsu, I; Yamamoto, M, 2007
)
0.34
"Ferulic acid restores endothelial function through enhancing the bioavailability of basal and stimulated NO in SHR aortas."( Ferulic acid restores endothelium-dependent vasodilation in aortas of spontaneously hypertensive rats.
Fujii, A; Hase, T; Jokura, H; Saito, I; Suzuki, A; Tokimitsu, I; Yamamoto, M, 2007
)
0.34
"Enhanced oxidative stress and impairments in nitric oxide synthesis and bioavailability are of considerable importance in the pathogenesis of diabetic vascular diseases."( Melatonin attenuates metabolic disorders due to streptozotocin-induced diabetes in rats.
Bryszewska, M; Kubyshin, VL; Lapshina, EA; Maksimchik, YZ; Reiter, RJ; Sudnikovich, EJ; Zabrodskaya, SV; Zavodnik, IB, 2007
)
0.34
"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
" The effective bioavailability of these compounds makes them suitable antioxidants with potential use in atherosclerosis susceptible conditions."( Mangifera indica L. extract (Vimang) and its main polyphenol mangiferin prevent mitochondrial oxidative stress in atherosclerosis-prone hypercholesterolemic mouse.
Castilho, RF; Delgado, R; Oliveira, HC; Paim, BA; Pardo-Andreu, GL; Velho, JA; Vercesi, AE, 2008
)
0.35
"9-fold) and a decreased bioavailability (approximately 45%) during pregnancy."( As in humans, pregnancy increases the clearance of the protease inhibitor nelfinavir in the nonhuman primate Macaca nemestrina.
Chung, F; Mirfazaelian, A; Naraharisetti, SB; Unadkat, JD; Whittington, D; Wu, X; Zhang, H, 2009
)
0.35
" Our results indicate that resveratrol alleviates type 1 diabetes-induced vasculopathy by decreasing vascular oxidative stress and thereby increasing the bioavailability of nitric oxide without changing metabolic abnormalities."( Resveratrol shows vasoprotective effect reducing oxidative stress without affecting metabolic disturbances in insulin-dependent diabetes of rabbits.
Akar, F; Gokalp, B; Ozturk, K; Pektas, MB; Sepici, A; Soylemez, S; Surucu, HS; Tufan, C; Ulus, AT, 2011
)
0.37
" Increased production and/or bioavailability of IFN-α and associated alterations in dendritic cell (DC) homeostasis have been linked to lupus pathogenesis."( Netting neutrophils are major inducers of type I IFN production in pediatric systemic lupus erythematosus.
Allantaz, F; Baisch, J; Banchereau, J; Barrat, FJ; Caielli, S; Coffman, RL; Connolly, J; Garcia-Romo, GS; Guiducci, C; Pascual, V; Punaro, M; Vega, B; Xu, Z, 2011
)
0.37
" The combined effect of glucose-6-phosphate dehydrogenase overexpression or lactate dehydrogenase deletion with PFK deficiency on NADPH bioavailability was also studied."( Improvement of NADPH bioavailability in Escherichia coli through the use of phosphofructokinase deficient strains.
Bennett, GN; San, KY; Wang, Y, 2013
)
0.39
" Metabolic studies demonstrated that SA bioavailability is apparently low, and the main pathway of SA metabolism is iminium bond reduction resulting in dihydrosanguinarine (DHSA) formation."( Reductive metabolism of the sanguinarine iminium bond by rat liver preparations.
Cao, Y; Chen, XJ; Liu, ZY; Sun, ZL; Wu, Y; Zeng, JG, 2013
)
0.39
" 7-KC controls miR-144 expression, which in turn decreases IDH2 expression and attenuates NO bioavailability to impair endothelial homeostasis."( 7-Ketocholesterol inhibits isocitrate dehydrogenase 2 expression and impairs endothelial function via microRNA-144.
Chen, W; Fu, X; Huang, X; Li, P; Xia, M, 2014
)
0.4
" Many metabolites associated with poor outcomes are substrates of NAD(P)-dependent enzymatic processes, while alterations in NAD cofactors rely on bioavailability of dietary B-vitamins thiamine, riboflavin and pyridoxine."( A metabolomic endotype of bioenergetic dysfunction predicts mortality in critically ill patients with acute respiratory failure.
Benton, R; Files, DC; Flores, L; Gandotra, S; Gillespie, MN; Harrod, KS; Kean, EA; Langley, RJ; Lovato, J; Luckett, P; Migaud, ME; Morris, PE; Mostellar, MM; Mowry, M; Purcell, LD; Thompson, JW, 2021
)
0.62
" Therefore, the potential health effects of short-term mobile phone like RFR exposure (GSM 1800 MHz; 14 V/m, 2 mW/kg specific absorption rate (SAR) during 15 min/day for a week) during pregnancy and also the development of fetuses were investigated."( Short-term exposure to radiofrequency radiation and metabolic enzymes' activities during pregnancy and prenatal development.
Ozgur-Buyukatalay, E; Ozturk, GG; Tomruk, A; Ulusu, NN, 2022
)
0.72

Dosage Studied

NADPH shifts the dose-response curve of NO to the left and possibly increases, in this way, the ADP-ribosylation reaction under physiological conditions. A relationship between triiodothyronine (T3) production and NADPH in vitro showed similar age-related changes. The dose-dependency of T3-formation on GSH was decreasing with age.

ExcerptRelevanceReference
" 48 h after dosage of [3H]rifampicin (33 mg/kg) to rats, 29-2 +/- 4-1 (S."( Implication of rifampicin-quinone in the irreversible binding of rifampicin to macromolecules.
Bolt, HM; Remmer, H, 1976
)
0.26
" When the testicular tissue pieces were incubated with different doses of HCG or dibutyryl cAMP and testosterone production was measured, identical dose-response curves for old and young tissue were obtained."( In vitro and in vivo studies on Leydig cell function in old rats.
Geiss, M; Pirke, KM; Vogt, HJ, 1978
)
0.26
" The changes in H+ fluxes may account for the glucose-induced decrease in K+ and Ca2+ fractional outflow rate, all three parameters displaying hyperbolic-like dose-response curves with half-maximal values at noninsulinotropic glucose concentrations."( Insulin release: the fuel hypothesis.
Herchuelz, A; Hutton, JC; Malaisse, WJ; Sener, A, 1979
)
0.26
" The pathology in the lung can be divided into two distinct phases: (1) a destruction phase lasting a few days with damage to the type I and type II alveolar epithelial cells, oedema and haemorrhage (most of the rats which die after dosing with paraquat do so during this phase); (2) a reparative phase with regeneration of the epithelium and, in areas of severe damage, a characteristic proliferation of fibroblasts."( The pathology and biochemistry of paraquat.
Rose, MS; Smith, LL; Wyatt, I,
)
0.13
" At low dosage (50 mg."( In vivo hepatic and intestinal toxicity of sodium cyanate in rats: cyanate-induced alterations in hepatic glycogen metabolism.
Conrad, ME; Glader, BE; Haut, MJ; Hildenbrandt, PK; Toskes, PP, 1975
)
0.25
" V(V) did not significantly affect SOD activity when assayed with the sulfite method, which is devoid of interferences with V(V); however, there was an apparent inhibitory dose-response pattern for either V(IV) or V(V) using the pyrogallol assay, owing to an interference of pyrogallol with the metal."( Vanadium effect on the activity of horseradish peroxidase, catalase, glutathione peroxidase, and superoxide dismutase in vitro.
Casella, L; Pintar, A; Sabbioni, E; Serra, MA, 1992
)
0.28
"The chemistry, biological activity, and pharmacokinetics of gamma-interferon and recombinant interferon gamma are reviewed, and the agent's clinical efficacy, adverse effects, and dosage and administration for the treatment of chronic granulomatous disease (CGD) and other disorders are described."( Recombinant interferon gamma for treatment of chronic granulomatous disease and other disorders.
Bolinger, AM; Taeubel, MA, 1992
)
0.28
" NADPH shifts the dose-response curve of NO to the left and possibly increases, in this way, the ADP-ribosylation reaction under physiological conditions."( NADPH: a stimulatory cofactor for nitric oxide-induced ADP-ribosylation reaction.
Brüne, B; Dimmeler, S; Lapetina, EG, 1992
)
0.28
" The potentiating effect of 20-HETE resulted in a shifting to the left of the dose-response curve to Epo."( Modulation of erythropoiesis by novel human bone marrow cytochrome P450-dependent metabolites of arachidonic acid.
Abraham, NG; Falck, JR; Feldman, E; Lutton, JD; Schwartzman, ML, 1991
)
0.28
" administration of the mycotoxin to the animals at 3 dosage levels (0."( The metabolism of zearalenone in subcellular fractions from rabbit and hen hepatocytes and its estrogenic activity in rabbits.
Di Lauro, FM; Fadini, L; Montesissa, C; Pompa, G, 1986
)
0.27
"Paraquat (PQ) was administered to rats for 7 days by iv infusion from osmotic minipump at dosage rates of 250 and 500 nmol PQ/hr."( Prolonged, intravenous paraquat infusion in the rat. I. Failure of coinfused putrescine to attenuate pulmonary paraquat uptake, paraquat-induced biochemical changes, or lung injury.
Acuff, RV; DeLucia, AJ; Dunbar, JR; Ferslew, KE, 1988
)
0.27
" Rapid irreversible inhibition occurred in some cases, and this could be responsible for in vivo inhibition after repeated dosing of these MAOIs."( Inhibition of cytochrome P-450-dependent oxidation reactions by MAO inhibitors in rat liver microsomes.
Davies, DS; Dupont, H; Strolin-Benedetti, M, 1987
)
0.27
" The dose-response curves for enzyme release and loss of cell respiration superimposed the lethality curves for both compounds."( Bipyridylium herbicide toxicity: effects of paraquat and diquat on isolated rat hepatocytes.
Stevens, JB; Suleiman, SA,
)
0.13
" The effect of perezone on mitochondrial Ca2+ release follows a dose-response relationship and is dependent of the reduction of the drug."( Ca2+ releasing effect of perezone on adrenal cortex mitochondria.
Cárabez, A; Chávez, E; Cuéllar, A, 1987
)
0.27
" Both cell lines showed a dose-response relationship to DTIC after 1- or 6-hour exposures in the presence or absence of light."( Experimental dacarbazine antitumor activity and skin toxicity in relation to light exposure and pharmacologic antidotes.
Alberts, DS; Dorr, RT; Einspahr, J; Mason-Liddil, N; Soble, M, 1987
)
0.27
" Three enzymes whose structural genes have known genetic positions were chosen to see if the relationship between gene dosage and enzyme activity could be used as a tool in cytological localization."( Segmental aneuploidy and enzyme activity as a method for cytogenetic localization in drosophila melanogaster.
Merriam, JR; Stewart, BR, 1974
)
0.25
" The NADP+NADPH(2) was little changed in the early hours after dosing with thioacetamide but had decreased by approx."( Liver nucleotides in acute experimental liver injury induced by dimethylnitrosamine and by thioacetamide.
Sawyer, BC; Slater, TF, 1966
)
0.24
" after dosing but showed a partial recovery at the 4hr."( Nicotinamide-adenine dinucleotides in acute liver injury induced by ethionine, and a comparison with the effects of salicylate.
Sawyer, BC; Slater, TF, 1966
)
0.24
" Thus, it appears that trauma may have a significant, and possibly selective, effect on hepatic drug metabolism, suggesting that careful monitoring and/or dosage adjustment may be in order in some cases of post-traumatic drug therapy."( Effects of model traumatic injury on hepatic drug metabolism in the rat. I. In vivo antipyrine metabolism.
Griffeth, LK; Rauckman, EJ; Rosen, GM; Tschanz, C,
)
0.13
" An exponential dose-response relation was obtained between NADPH and T3 generated."( On the role of NADPH and glutathione in the catalytic mechanism of hepatic thyroxine 5'-deiodination.
Maruyama, S; Nomura, K; Sato, T, 1981
)
0.26
" A dose-response relationship between triiodothyronine (T3) production and NADPH in vitro showed similar age-related changes, whereas dose-dependency of T3-formation on GSH was decreasing with age, especially under the presence of 1 mM NADPH."( Correlation of hepatic thyroxine 5'-monodeiodination with hexose monophosphate shunt in young rats.
Maruyama, S; Saida, K; Sato, T; Takata, I, 1982
)
0.26
" The concentration of compounds causing 50% inhibition of enzyme activity was determined from dose-response curves."( The Entner-Doudoroff pathway in Helicobacter pylori.
Burns, BP; Hazell, SL; Mendz, GL, 1994
)
0.29
" ADIOL exerted its inductive response at a somewhat lower dosage than DHEA, whereas ADIOL and DHEA both induced the microsomal enzymes (P4504A and its oxidoreductase) at somewhat lower dosages than those required to induce peroxisomal enzymes."( Induction of microsomal and peroxisomal enzymes by dehydroepiandrosterone and its reduced metabolite in rats.
Lapenson, DP; Prough, RA; Waxman, DJ; Webb, SJ; Wu, HQ, 1994
)
0.29
" Female Sprague-Dawley rats were dosed with equimolar doses of tamoxifen (11."( Alterations of drug metabolizing and antioxidant enzyme activities during tamoxifen-induced hepatocarcinogenesis in the rat.
Ahotupa, M; Hirsimäki, P; Mäntylä, E; Pärssinen, R, 1994
)
0.29
" Both 2'-P-cADPR and cADPR appear to act by a similar mechanism based on similar kinetics of Ca2+ release, similar dose-response curves, cross-desensitization, and partial inhibition of release by procaine."( 2'-Phospho-cyclic ADP-ribose, a calcium-mobilizing agent derived from NADP.
Chen, CS; Jacobson, MK; Lu, PJ; Vu, CQ, 1996
)
0.29
") increased the hepatic mitochondrial-reduced glutathione (GSH) level, BHT treatment at the same dosage regimen decreased it."( The crucial antioxidant action of schisandrin B in protecting against carbon tetrachloride hepatotoxicity in mice: a comparative study with butylated hydroxytoluene.
Ip, SP; Ko, KM, 1996
)
0.29
" The dose-response was similar for thioredoxin reductase and glutathione peroxidase, but the recovery of glutathione peroxidase activity upon selenium supplementation was faster than with thioredoxin reductase."( Evidence for a functional relevance of the selenocysteine residue in mammalian thioredoxin reductase.
Flohé, L; Marcocci, L; Packer, L, 1997
)
0.3
" In accordance with this rapid elimination, a weekly dosage of 1mg TCTA per kg body weight (i."( Elimination kinetics and toxicity of 2,3,7,8-tetrachlorothianthren, a thio analogue of 2,3,7,8-TCDD.
Hagenmaier, H; Schrenk, D; Weber, R, 1998
)
0.3
" Although these microbes have advantages such as low cost and availability, there are some cares that are necessary to be taken, like NAD(P)H dosage to choose strains more adequate for reduction reactions."( The use of baker's yeast in the generation of asymmetric centers to produce chiral drugs and others compounds.
Pereira, Rde S, 1998
)
0.3
" This study sought to determine the lowest dosage of stiripentol (STP) protective against phenytoin-induced teratogenesis in a mouse model, and to determine mechanistically if inhibition of oxidative metabolism by STP in vitro decreased production of reactive phenytoin (PHT) metabolites."( Effect of stiripentol dose on phenytoin-induced teratogenesis in a mouse model.
Bajpai, M; Bennett, GD; Finnell, RH; Levy, RH; Mather, GG; Wlodarczyk, B,
)
0.13
" dosing as compared with oral dosing may be due to differences in the affinity of various FMO family members for xanomeline or to differences in exposure to xanomeline that these enzymes receive under different dosing regimens."( Flavin-containing monooxygenase-mediated N-oxidation of the M(1)-muscarinic agonist xanomeline.
Aldridge, SL; Haehner, B; Hansen, K; Ring, BJ; Shipley, LA; Wrighton, SA, 1999
)
0.3
" In permeabilized Mag-indo 1-loaded cells, NADPH and H(2)O(2) each decreased the threshold concentration of inositol 1,4,5-trisphosphate (InsP(3)) required to release intracellularly stored Ca(2+) and shifted the InsP(3)-Ca(2+) release dose-response curve to the left."( NADPH oxidase activation increases the sensitivity of intracellular Ca2+ stores to inositol 1,4,5-trisphosphate in human endothelial cells.
Deshpande, S; Hu, Q; Irani, K; Zheng, G; Ziegelstein, RC; Zweier, JL, 2000
)
0.31
" The induction was confirmed in vivo by dosing rats with DFP at 100 mg/kg for 4 days."( Application of rat hepatocyte culture to predict in vivo metabolic auto-induction: studies with DFP, a cyclooxygenase-2 inhibitor.
Chauret, N; Day, S; Dixit, R; Leblanc, Y; Nicoll-Griffith, DA; Patrick, D; Roy, P; Silva, JM; Yergey, JA, 2001
)
0.31
" The protection of mitochondrial functions was almost complete at a dosage of 10 mg/kg/day."( Attenuation of liver normothermic ischemia--reperfusion injury by preservation of mitochondrial functions with S-15176, a potent trimetazidine derivative.
Elimadi, A; Le Louet, H; Morin, D; Sapena, R; Settaf, A; Tillement, J, 2001
)
0.31
" An antibody raised against CYP2B1 markedly inhibited the PCB-dependent bilirubin degradation and PROD activities of phenobarbital-induced microsomes with similar dose-response curves for the two effects."( Bilirubin and uroporphyrinogen oxidation by induced cytochrome P4501A and cytochrome P4502B. Role of polyhalogenated biphenyls of different configuration.
Dawson, SJ; De Matteis, F; Pipino, S; Pons, N, 2002
)
0.31
" 6-Hydroxydopamine (6-OHDA) treatment markedly reduced, in a dose-response fashion, chromaffin cell viability."( Chromaffin cell death induced by 6-hydroxydopamine is independent of mitochondrial swelling and caspase activation.
Ceña, V; Galindo, MF; González-García, C; Jordán, J, 2003
)
0.32
" These adducts were also formed when bile duct-cannulated rats were dosed with MB243."( Metabolic activation of a 1,3-disubstituted piperazine derivative: evidence for a novel ring contraction to an imidazoline.
Baillie, TA; Doss, GA; Evans, DC; Miller, RR; Nargund, RP; Palucki, B; Park, MK; Stearns, RA; Tang, YS; Teffera, Y; Zhang, Z, 2005
)
0.33
" The pathologies found became more serious as the dosage increased and were present throughout the entire digestive system, in the fat body and in the male gonads: in these areas cell and tissue breakdown and severely damaged spermiogenesis were observed."( Tissue damage after acute intoxication by polychlorinated biphenyls in cockroaches.
Bernocchi, G; Fasola, M; Grigolo, A; Lambiase, S; Morbini, P; Roda, E; Zhang, Y,
)
0.13
" Overall, a significant dose-response relationship was noted between NO exposure and markers of aging with between 50 and 100 microM SNAP (0."( Nitric oxide delays oocyte aging.
Abu-Soud, HM; Diamond, MP; Goud, AP; Goud, PT, 2005
)
0.33
" After a 20-week 4-n-NP treatment orally at the dosage of 10 and 50 muM in the drinking water, phenylephrine- and potassium chloride-induced concentration-dependent responsiveness assessed by wire myograph were both significantly higher in aorta isolated from 4-n-NP-treated rats compared with control rats, but acetylcholine-induced vasorelaxation was similar between these two groups."( Effects of chronic 4-n-nonylphenol treatment on aortic vasoconstriction and vasorelaxation in rats.
Hsieh, CC; Hsieh, CY; Miaw, CL; Tseng, HC; Yang, YH; Yen, CH, 2009
)
0.35
" The main metabolite detected in urine after intravenous dosing was characterized as a dihydrohydroxy S-mercapturic acid conjugate."( Metabolism-related liabilities of a potent histone deacetylase (HDAC) inhibitor and relevance of the route of administration on its metabolic fate.
Fiore, F; Fonsi, M; Jones, P; Kinzel, O; Laufer, R; Monteagudo, E; Rowley, M, 2009
)
0.35
" The aim of this study was to establish a dose-response relationship for rfA of thyroid nodules."( Bipolar radiofrequency ablation for nodular thyroid disease--ex vivo and in vivo evaluation of a dose-response relationship.
Buhr, HJ; Frericks, B; Holmer, C; Knappe, V; Lehmann, KS; Ritz, JP; Schumann, T; Zurbuchen, U, 2011
)
0.37
"This study is the first to demonstrate a dose-response relationship for rfA of thyroid tissue."( Bipolar radiofrequency ablation for nodular thyroid disease--ex vivo and in vivo evaluation of a dose-response relationship.
Buhr, HJ; Frericks, B; Holmer, C; Knappe, V; Lehmann, KS; Ritz, JP; Schumann, T; Zurbuchen, U, 2011
)
0.37
" Nevertheless, we conclude that the formation of this reactive species might not be a safety concern for oxymetazoline nasal products because of the typical low-dose and brief dosage regimen limited to nasal delivery."( In vitro metabolism of oxymetazoline: evidence for bioactivation to a reactive metabolite.
Daniels, JS; Gan, LS; LeDuc, BW; Mahajan, MK; Uttamsingh, V; Williams, DA, 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
" In addition, two narrow bell-shaped dose-response curves were identified with maxima in either the nanomolar or low micromolar NAADP concentration range, where TPC1 was found to be responsible for activating the low affinity pathway."( NAADP and the two-pore channel protein 1 participate in the acrosome reaction in mammalian spermatozoa.
Arlt, E; Arndt, L; Biel, M; Boekhoff, I; Borth, H; Breit, A; Castonguay, J; Gudermann, T; Hassan, S; Klugbauer, N; Meyer, D; Wahl-Schott, C; Wennemuth, G; Zierler, S, 2014
)
0.4
" Single dosing of NADPH or omitting toxic components from the MAS preparation did also not reduce embryotoxicity."( Antioxidants reduce reactive oxygen species but not embryotoxicity in the metabolic Danio rerio test (mDarT).
Bars, C; Knapen, D; Pype, C; Saad, MA; Van Cruchten, SJ; Van Ginneken, CJ; Verbueken, E, 2017
)
0.46
"Findings will provide timely information on the safety, efficacy, and optimal dosing of t-PA to treat moderate/severe COVID-19-induced ARDS, which can be rapidly adapted to a phase III trial (NCT04357730; FDA IND 149634)."(
Abbasi, S; Abd El-Wahab, A; Abdallah, M; Abebe, G; Aca-Aca, G; Adama, S; Adefegha, SA; Adidigue-Ndiome, R; Adiseshaiah, P; Adrario, E; Aghajanian, C; Agnese, W; Ahmad, A; Ahmad, I; Ahmed, MFE; Akcay, OF; Akinmoladun, AC; Akutagawa, T; Alakavuklar, MA; Álava-Rabasa, S; Albaladejo-Florín, MJ; Alexandra, AJE; Alfawares, R; Alferiev, IS; Alghamdi, HS; Ali, I; Allard, B; Allen, JD; Almada, E; Alobaid, A; Alonso, GL; Alqahtani, YS; Alqarawi, W; Alsaleh, H; Alyami, BA; Amaral, BPD; Amaro, JT; Amin, SAW; Amodio, E; Amoo, ZA; Andia Biraro, I; Angiolella, L; Anheyer, D; Anlay, DZ; Annex, BH; Antonio-Aguirre, B; Apple, S; Arbuznikov, AV; Arinsoy, T; Armstrong, DK; Ash, S; Aslam, M; Asrie, F; Astur, DC; Atzrodt, J; Au, DW; Aucoin, M; Auerbach, EJ; Azarian, S; Ba, D; Bai, Z; Baisch, PRM; Balkissou, AD; Baltzopoulos, V; Banaszewski, M; Banerjee, S; Bao, Y; Baradwan, A; Barandika, JF; Barger, PM; Barion, MRL; Barrett, CD; Basudan, AM; Baur, LE; Baz-Rodríguez, SA; Beamer, P; Beaulant, A; Becker, DF; Beckers, C; Bedel, J; Bedlack, R; Bermúdez de Castro, JM; Berry, JD; Berthier, C; Bhattacharya, D; Biadgo, B; Bianco, G; Bianco, M; Bibi, S; Bigliardi, AP; Billheimer, D; Birnie, DH; Biswas, K; Blair, HC; Bognetti, P; Bolan, PJ; Bolla, JR; Bolze, A; Bonnaillie, P; Borlimi, R; Bórquez, J; Bottari, NB; Boulleys-Nana, JR; Brighetti, G; Brodeur, GM; Budnyak, T; Budnyk, S; Bukirwa, VD; Bulman, DM; Burm, R; Busman-Sahay, K; Butcher, TW; Cai, C; Cai, H; Cai, L; Cairati, M; Calvano, CD; Camacho-Ordóñez, A; Camela, E; Cameron, T; Campbell, BS; Cansian, RL; Cao, Y; Caporale, AS; Carciofi, AC; Cardozo, V; Carè, J; Carlos, AF; Carozza, R; Carroll, CJW; Carsetti, A; Carubelli, V; Casarotta, E; Casas, M; Caselli, G; Castillo-Lora, J; Cataldi, TRI; Cavalcante, ELB; Cavaleiro, A; Cayci, Z; Cebrián-Tarancón, C; Cedrone, E; Cella, D; Cereda, C; Ceretti, A; Ceroni, M; Cha, YH; Chai, X; Chang, EF; Chang, TS; Chanteux, H; Chao, M; Chaplin, BP; Chaturvedi, S; Chaturvedi, V; Chaudhary, DK; Chen, A; Chen, C; Chen, HY; Chen, J; Chen, JJ; Chen, K; Chen, L; Chen, Q; Chen, R; Chen, SY; Chen, TY; Chen, WM; Chen, X; Chen, Y; Cheng, G; Cheng, GJ; Cheng, J; Cheng, YH; Cheon, HG; Chew, KW; Chhoker, S; Chiu, WN; Choi, ES; Choi, MJ; Choi, SD; Chokshi, S; Chorny, M; Chu, KI; Chu, WJ; Church, AL; Cirrincione, A; Clamp, AR; Cleff, MB; Cohen, M; Coleman, RL; Collins, SL; Colombo, N; Conduit, N; Cong, WL; Connelly, MA; Connor, J; Cooley, K; Correa Ramos Leal, I; Cose, S; Costantino, C; Cottrell, M; Cui, L; Cundall, J; Cutaia, C; Cutler, CW; Cuypers, ML; da Silva Júnior, FMR; Dahal, RH; Damiani, E; Damtie, D; Dan-Li, W; Dang, Z; Dasa, SSK; Davin, A; Davis, DR; de Andrade, CM; de Jong, PL; de Oliveira, D; de Paula Dorigam, JC; Dean, A; Deepa, M; Delatour, C; Dell'Aiera, S; Delley, MF; den Boer, RB; Deng, L; Deng, Q; Depner, RM; Derdau, V; Derici, U; DeSantis, AJ; Desmarini, D; Diffo-Sonkoue, L; Divizia, M; Djenabou, A; Djordjevic, JT; Dobrovolskaia, MA; Domizi, R; Donati, A; Dong, Y; Dos Santos, M; Dos Santos, MP; Douglas, RG; Duarte, PF; Dullaart, RPF; Duscha, BD; Edwards, LA; Edwards, TE; Eichenwald, EC; El-Baba, TJ; Elashiry, M; Elashiry, MM; Elashry, SH; Elliott, A; Elsayed, R; Emerson, MS; Emmanuel, YO; Emory, TH; Endale-Mangamba, LM; Enten, GA; Estefanía-Fernández, K; Estes, JD; Estrada-Mena, FJ; Evans, S; Ezra, L; Faria de, RO; Farraj, AK; Favre, C; Feng, B; Feng, J; Feng, L; Feng, W; Feng, X; Feng, Z; Fernandes, CLF; Fernández-Cuadros, ME; Fernie, AR; Ferrari, D; Florindo, PR; Fong, PC; Fontes, EPB; Fontinha, D; Fornari, VJ; Fox, NP; Fu, Q; Fujitaka, Y; Fukuhara, K; Fumeaux, T; Fuqua, C; Fustinoni, S; Gabbanelli, V; Gaikwad, S; Gall, ET; Galli, A; Gancedo, MA; Gandhi, MM; Gao, D; Gao, K; Gao, M; Gao, Q; Gao, X; Gao, Y; Gaponenko, V; Garber, A; Garcia, EM; García-Campos, C; García-Donas, J; García-Pérez, AL; Gasparri, F; Ge, C; Ge, D; Ge, JB; Ge, X; George, I; George, LA; Germani, G; Ghassemi Tabrizi, S; Gibon, Y; Gillent, E; Gillies, RS; Gilmour, MI; Goble, S; Goh, JC; Goiri, F; Goldfinger, LE; Golian, M; Gómez, MA; Gonçalves, J; Góngora-García, OR; Gonul, I; González, MA; Govers, TM; Grant, PC; Gray, EH; Gray, JE; Green, MS; Greenwald, I; Gregory, MJ; Gretzke, D; Griffin-Nolan, RJ; Griffith, DC; Gruppen, EG; Guaita, A; Guan, P; Guan, X; Guerci, P; Guerrero, DT; Guo, M; Guo, P; Guo, R; Guo, X; Gupta, J; Guz, G; Hajizadeh, N; Hamada, H; Haman-Wabi, AB; Han, TT; Hannan, N; Hao, S; Harjola, VP; Harmon, M; Hartmann, MSM; Hartwig, JF; Hasani, M; Hawthorne, WJ; Haykal-Coates, N; Hazari, MS; He, DL; He, P; He, SG; Héau, C; Hebbar Kannur, K; Helvaci, O; Heuberger, DM; Hidalgo, F; Hilty, MP; Hirata, K; Hirsch, A; Hoffman, AM; Hoffmann, JF; Holloway, RW; Holmes, RK; Hong, S; Hongisto, M; Hopf, NB; Hörlein, R; Hoshino, N; Hou, Y; Hoven, NF; Hsieh, YY; Hsu, CT; Hu, CW; Hu, JH; Hu, MY; Hu, Y; Hu, Z; Huang, C; Huang, D; Huang, DQ; Huang, L; Huang, Q; Huang, R; Huang, S; Huang, SC; Huang, W; Huang, Y; Huffman, KM; Hung, CH; Hung, CT; Huurman, R; Hwang, SM; Hyun, S; Ibrahim, AM; Iddi-Faical, A; Immordino, P; Isla, MI; Jacquemond, V; Jacques, T; Jankowska, E; Jansen, JA; Jäntti, T; Jaque-Fernandez, F; Jarvis, GA; Jatt, LP; Jeon, JW; Jeong, SH; Jhunjhunwala, R; Ji, F; Jia, X; Jia, Y; Jian-Bo, Z; Jiang, GD; Jiang, L; Jiang, W; Jiang, WD; Jiang, Z; Jiménez-Hoyos, CA; Jin, S; Jobling, MG; John, CM; John, T; Johnson, CB; Jones, KI; Jones, WS; Joseph, OO; Ju, C; Judeinstein, P; Junges, A; Junnarkar, M; Jurkko, R; Kaleka, CC; Kamath, AV; Kang, X; Kantsadi, AL; Kapoor, M; Karim, Z; Kashuba, ADM; Kassa, E; Kasztura, M; Kataja, A; Katoh, T; Kaufman, JS; Kaupp, M; Kehinde, O; Kehrenberg, C; Kemper, N; Kerr, CW; Khan, AU; Khan, MF; Khan, ZUH; Khojasteh, SC; Kilburn, S; Kim, CG; Kim, DU; Kim, DY; Kim, HJ; Kim, J; Kim, OH; Kim, YH; King, C; Klein, A; Klingler, L; Knapp, AK; Ko, TK; Kodavanti, UP; Kolla, V; Kong, L; Kong, RY; Kong, X; Kore, S; Kortz, U; Korucu, B; Kovacs, A; Krahnert, I; Kraus, WE; Kuang, SY; Kuehn-Hajder, JE; Kurz, M; Kuśtrowski, P; Kwak, YD; Kyttaris, VC; Laga, SM; Laguerre, A; Laloo, A; Langaro, MC; Langham, MC; Lao, X; Larocca, MC; Lassus, J; Lattimer, TA; Lazar, S; Le, MH; Leal, DB; Leal, M; Leary, A; Ledermann, JA; Lee, JF; Lee, MV; Lee, NH; Leeds, CM; Leeds, JS; Lefrandt, JD; Leicht, AS; Leonard, M; Lev, S; Levy, K; Li, B; Li, C; Li, CM; Li, DH; Li, H; Li, J; Li, L; Li, LJ; Li, N; Li, P; Li, T; Li, X; Li, XH; Li, XQ; Li, XX; Li, Y; Li, Z; Li, ZY; Liao, YF; Lin, CC; Lin, MH; Lin, Y; Ling, Y; Links, TP; Lira-Romero, E; Liu, C; Liu, D; Liu, H; Liu, J; Liu, L; Liu, LP; Liu, M; Liu, T; Liu, W; Liu, X; Liu, XH; Liu, Y; Liuwantara, D; Ljumanovic, N; Lobo, L; Lokhande, K; Lopes, A; Lopes, RMRM; López-Gutiérrez, JC; López-Muñoz, MJ; López-Santamaría, M; Lorenzo, C; Lorusso, D; Losito, I; Lu, C; Lu, H; Lu, HZ; Lu, SH; Lu, SN; Lu, Y; Lu, ZY; Luboga, F; Luo, JJ; Luo, KL; Luo, Y; Lutomski, CA; Lv, W; M Piedade, MF; Ma, J; Ma, JQ; Ma, JX; Ma, N; Ma, P; Ma, S; Maciel, M; Madureira, M; Maganaris, C; Maginn, EJ; Mahnashi, MH; Maierhofer, M; Majetschak, M; Malla, TR; Maloney, L; Mann, DL; Mansuri, A; Marelli, E; Margulis, CJ; Marrella, A; Martin, BL; Martín-Francés, L; Martínez de Pinillos, M; Martínez-Navarro, EM; Martinez-Quintanilla Jimenez, D; Martínez-Velasco, A; Martínez-Villaseñor, L; Martinón-Torres, M; Martins, BA; Massongo, M; Mathew, AP; Mathews, D; Matsui, J; Matsumoto, KI; Mau, T; Maves, RC; Mayclin, SJ; Mayer, JM; Maynard, ND; Mayr, T; Mboowa, MG; McEvoy, MP; McIntyre, RC; McKay, JA; McPhail, MJW; McVeigh, AL; Mebazaa, A; Medici, V; Medina, DN; Mehmood, T; Mei-Li, C; Melku, M; Meloncelli, S; Mendes, GC; Mendoza-Velásquez, C; Mercadante, R; Mercado, MI; Merenda, MEZ; Meunier, J; Mi, SL; Michels, M; Mijatovic, V; Mikhailov, V; Milheiro, SA; Miller, DC; Ming, F; Mitsuishi, M; Miyashita, T; Mo, J; Mo, S; Modesto-Mata, M; Moeller, S; Monte, A; Monteiro, L; Montomoli, J; Moore, EE; Moore, HB; Moore, PK; Mor, MK; Moratalla-López, N; Moratilla Lapeña, L; Moreira, R; Moreno, MA; Mörk, AC; Morton, M; Mosier, JM; Mou, LH; Mougharbel, AS; Muccillo-Baisch, AL; Muñoz-Serrano, AJ; Mustafa, B; Nair, GM; Nakanishi, I; Nakanjako, D; Naraparaju, K; Nawani, N; Neffati, R; Neil, EC; Neilipovitz, D; Neira-Borrajo, I; Nelson, MT; Nery, PB; Nese, M; Nguyen, F; Nguyen, MH; Niazy, AA; Nicolaï, J; Nogueira, F; Norbäck, D; Novaretti, JV; O'Donnell, T; O'Dowd, A; O'Malley, DM; Oaknin, A; Ogata, K; Ohkubo, K; Ojha, M; Olaleye, MT; Olawande, B; Olomo, EJ; Ong, EWY; Ono, A; Onwumere, J; Ortiz Bibriesca, DM; Ou, X; Oza, AM; Ozturk, K; Özütemiz, C; Palacio-Pastrana, C; Palaparthi, A; Palevsky, PM; Pan, K; Pantanetti, S; Papachristou, DJ; Pariani, A; Parikh, CR; Parissis, J; Paroul, N; Parry, S; Patel, N; Patel, SM; Patel, VC; Pawar, S; Pefura-Yone, EW; Peixoto Andrade, BCO; Pelepenko, LE; Peña-Lora, D; Peng, S; Pérez-Moro, OS; Perez-Ortiz, AC; Perry, LM; Peter, CM; Phillips, NJ; Phillips, P; Pia Tek, J; Piner, LW; Pinto, EA; Pinto, SN; Piyachaturawat, P; Poka-Mayap, V; Polledri, E; Poloni, TE; Ponessa, G; Poole, ST; Post, AK; Potter, TM; Pressly, BB; Prouty, MG; Prudêncio, M; Pulkki, K; Pupier, C; Qian, H; Qian, ZP; Qiu, Y; Qu, G; Rahimi, S; Rahman, AU; Ramadan, H; Ramanna, S; Ramirez, I; Randolph, GJ; Rasheed, A; Rault, J; Raviprakash, V; Reale, E; Redpath, C; Rema, V; Remucal, CK; Remy, D; Ren, T; Ribeiro, LB; Riboli, G; Richards, J; Rieger, V; Rieusset, J; Riva, A; Rivabella Maknis, T; Robbins, JL; Robinson, CV; Roche-Campo, F; Rodriguez, R; Rodríguez-de-Cía, J; Rollenhagen, JE; Rosen, EP; Rub, D; Rubin, N; Rubin, NT; Ruurda, JP; Saad, O; Sabell, T; Saber, SE; Sabet, M; Sadek, MM; Saejio, A; Salinas, RM; Saliu, IO; Sande, D; Sang, D; Sangenito, LS; Santos, ALSD; Sarmiento Caldas, MC; Sassaroli, S; Sassi, V; Sato, J; Sauaia, A; Saunders, K; Saunders, PR; Savarino, SJ; Scambia, G; Scanlon, N; Schetinger, MR; Schinkel, AFL; Schladweiler, MC; Schofield, CJ; Schuepbach, RA; Schulz, J; Schwartz, N; Scorcella, C; Seeley, J; Seemann, F; Seinige, D; Sengoku, T; Seravalli, J; Sgromo, B; Shaheen, MY; Shan, L; Shanmugam, S; Shao, H; Sharma, S; Shaw, KJ; Shen, BQ; Shen, CH; Shen, P; Shen, S; Shen, Y; Shen, Z; Shi, J; Shi-Li, L; Shimoda, K; Shoji, Y; Shun, C; Silva, MA; Silva-Cardoso, J; Simas, NK; Simirgiotis, MJ; Sincock, SA; Singh, MP; Sionis, A; Siu, J; Sivieri, EM; Sjerps, MJ; Skoczen, SL; Slabon, A; Slette, IJ; Smith, MD; Smith, S; Smith, TG; Snapp, KS; Snow, SJ; Soares, MCF; Soberman, D; Solares, MD; Soliman, I; Song, J; Sorooshian, A; Sorrell, TC; Spinar, J; Staudt, A; Steinhart, C; Stern, ST; Stevens, DM; Stiers, KM; Stimming, U; Su, YG; Subbian, V; Suga, H; Sukhija-Cohen, A; Suksamrarn, A; Suksen, K; Sun, J; Sun, M; Sun, P; Sun, W; Sun, XF; Sun, Y; Sundell, J; Susan, LF; Sutjarit, N; Swamy, KV; Swisher, EM; Sykes, C; Takahashi, JA; Talmor, DS; Tan, B; Tan, ZK; Tang, L; Tang, S; Tanner, JJ; Tanwar, M; Tarazi, Z; Tarvasmäki, T; Tay, FR; Teketel, A; Temitayo, GI; Thersleff, T; Thiessen Philbrook, H; Thompson, LC; Thongon, N; Tian, B; Tian, F; Tian, Q; Timothy, AT; Tingle, MD; Titze, IR; Tolppanen, H; Tong, W; Toyoda, H; Tronconi, L; Tseng, CH; Tu, H; Tu, YJ; Tung, SY; Turpault, S; Tuynman, JB; Uemoto, AT; Ugurlu, M; Ullah, S; Underwood, RS; Ungell, AL; Usandizaga-Elio, I; Vakonakis, I; van Boxel, GI; van den Beucken, JJJP; van der Boom, T; van Slegtenhorst, MA; Vanni, JR; Vaquera, A; Vasconcellos, RS; Velayos, M; Vena, R; Ventura, G; Verso, MG; Vincent, RP; Vitale, F; Vitali, S; Vlek, SL; Vleugels, MPH; Volkmann, N; Vukelic, M; Wagner Mackenzie, B; Wairagala, P; Waller, SB; Wan, J; Wan, MT; Wan, Y; Wang, CC; Wang, H; Wang, J; Wang, JF; Wang, K; Wang, L; Wang, M; Wang, S; Wang, WM; Wang, X; Wang, Y; Wang, YD; Wang, YF; Wang, Z; Wang, ZG; Warriner, K; Weberpals, JI; Weerachayaphorn, J; Wehrli, FW; Wei, J; Wei, KL; Weinheimer, CJ; Weisbord, SD; Wen, S; Wendel Garcia, PD; Williams, JW; Williams, R; Winkler, C; Wirman, AP; Wong, S; Woods, CM; Wu, B; Wu, C; Wu, F; Wu, P; Wu, S; Wu, Y; Wu, YN; Wu, ZH; Wurtzel, JGT; Xia, L; Xia, Z; Xia, ZZ; Xiao, H; Xie, C; Xin, ZM; Xing, Y; Xing, Z; Xu, S; Xu, SB; Xu, T; Xu, X; Xu, Y; Xue, L; Xun, J; Yaffe, MB; Yalew, A; Yamamoto, S; Yan, D; Yan, H; Yan, S; Yan, X; Yang, AD; Yang, E; Yang, H; Yang, J; Yang, JL; Yang, K; Yang, M; Yang, P; Yang, Q; Yang, S; Yang, W; Yang, X; Yang, Y; Yao, JC; Yao, WL; Yao, Y; Yaqub, TB; Ye, J; Ye, W; Yen, CW; Yeter, HH; Yin, C; Yip, V; Yong-Yi, J; Yu, HJ; Yu, MF; Yu, S; Yu, W; Yu, WW; Yu, X; Yuan, P; Yuan, Q; Yue, XY; Zaia, AA; Zakhary, SY; Zalwango, F; Zamalloa, A; Zamparo, P; Zampini, IC; Zani, JL; Zeitoun, R; Zeng, N; Zenteno, JC; Zepeda-Palacio, C; Zhai, C; Zhang, B; Zhang, G; Zhang, J; Zhang, K; Zhang, Q; Zhang, R; Zhang, T; Zhang, X; Zhang, Y; Zhang, YY; Zhao, B; Zhao, D; Zhao, G; Zhao, H; Zhao, Q; Zhao, R; Zhao, S; Zhao, T; Zhao, X; Zhao, XA; Zhao, Y; Zhao, Z; Zheng, Z; Zhi-Min, G; Zhou, CL; Zhou, HD; Zhou, J; Zhou, W; Zhou, XQ; Zhou, Z; Zhu, C; Zhu, H; Zhu, L; Zhu, Y; Zitzmann, N; Zou, L; Zou, Y, 2022
)
0.72
[information is derived through text-mining from research data collected from National Library of Medicine (NLM), extracted Dec-2023]

Roles (1)

RoleDescription
fundamental metaboliteAny metabolite produced by all living cells.
[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 (1)

ClassDescription
NADPAbbreviation for nicotinamide-adenine dinucleotide phosphate when its oxidation state is unknown or unspecified.
[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 (31)

PathwayProteinsCompounds
RuMP cycle, oxidative branch of the pentose phosphate pathway and formaldehyde assimilation112
Oxidative stress and redox pathway019
Mitochondrial fatty acid synthesis pathway08
Metabolic Epileptic Disorders2589
NAD salvage pathway II011
Folic acid network070
Colanic acid building blocks biosynthesis014
Valine biosynthesis010
Glucose-1-phosphate metabolism010
Threonine biosynthesis07
Sphingolipid metabolism07
Pentose pathway, non-oxidative branch07
Sulfate assimilation and copper detoxification020
Tryptophan degradation via kynurenine08
Phosphatidic acid and phospholipid biosynthesis08
Tyrosine biosynthesis08
Pentose phosphate pathway 2011
Photosynthetic carbon reduction014
Glutathione and one-carbon metabolism010
NAD biosynthesis II from tryptophan024
Catalytic cycle of mammalian FMOs07
Glutathione metabolism013
Selenium micronutrient network095
Vitamin B12 metabolism050
Folate metabolism156
NAD biosynthesis II (from tryptophan)024
NAD+ metabolism014
Amino acid metabolism094
Catalytic cycle of mammalian flavin-containing monooxygenases (FMOs)08
Sulfation biotransformation reaction010
TCA cycle (aka Krebs or citric acid cycle)024

Protein Targets (2)

Activation Measurements

ProteinTaxonomyMeasurementAverageMin (ref.)Avg (ref.)Max (ref.)Bioassay(s)
2-dehydropantoate 2-reductaseEscherichia coli K-12Kd0.26000.26000.26000.2600AID269136
[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)
Squalene synthaseHomo sapiens (human)Km430.00002.30002.30002.3000AID326563
[prepared from compound, protein, and bioassay information from National Library of Medicine (NLM), extracted Dec-2023]

Biological Processes (4)

Processvia Protein(s)Taxonomy
pantothenate biosynthetic process2-dehydropantoate 2-reductaseEscherichia coli K-12
pantothenate biosynthetic process2-dehydropantoate 2-reductaseEscherichia coli K-12
steroid biosynthetic processSqualene synthaseHomo sapiens (human)
farnesyl diphosphate metabolic processSqualene synthaseHomo sapiens (human)
cholesterol biosynthetic processSqualene synthaseHomo sapiens (human)
[Information is prepared from geneontology information from the June-17-2024 release]

Molecular Functions (9)

Processvia Protein(s)Taxonomy
2-dehydropantoate 2-reductase activity2-dehydropantoate 2-reductaseEscherichia coli K-12
oxidoreductase activity2-dehydropantoate 2-reductaseEscherichia coli K-12
oxidoreductase activity, acting on the CH-OH group of donors, NAD or NADP as acceptor2-dehydropantoate 2-reductaseEscherichia coli K-12
NADP binding2-dehydropantoate 2-reductaseEscherichia coli K-12
farnesyltranstransferase activitySqualene synthaseHomo sapiens (human)
protein bindingSqualene synthaseHomo sapiens (human)
metal ion bindingSqualene synthaseHomo sapiens (human)
farnesyl-diphosphate farnesyltransferase activitySqualene synthaseHomo sapiens (human)
squalene synthase activitySqualene synthaseHomo sapiens (human)
[Information is prepared from geneontology information from the June-17-2024 release]

Ceullar Components (4)

Processvia Protein(s)Taxonomy
cytoplasm2-dehydropantoate 2-reductaseEscherichia coli K-12
cytoplasm2-dehydropantoate 2-reductaseEscherichia coli K-12
endoplasmic reticulumSqualene synthaseHomo sapiens (human)
endoplasmic reticulum membraneSqualene synthaseHomo sapiens (human)
membraneSqualene synthaseHomo sapiens (human)
endoplasmic reticulum membraneSqualene synthaseHomo sapiens (human)
[Information is prepared from geneontology information from the June-17-2024 release]

Bioassays (29)

Assay IDTitleYearJournalArticle
AID326562Activity of Leishmania mexicana microsomal or mitochondrial squalene synthase2007Antimicrobial agents and chemotherapy, Jun, Volume: 51, Issue:6
Kinetic characterization of squalene synthase from Trypanosoma cruzi: selective inhibition by quinuclidine derivatives.
AID326561Activity of Leishmania mexicana glycosomal squalene synthase2007Antimicrobial agents and chemotherapy, Jun, Volume: 51, Issue:6
Kinetic characterization of squalene synthase from Trypanosoma cruzi: selective inhibition by quinuclidine derivatives.
AID613065Activity of Staphylococcus aureus HMGR class II expressed in Escherichia coli BL21(DE3) using NADPH as substrate after 5 min by microplate reader2011Bioorganic & medicinal chemistry, Jun-01, Volume: 19, Issue:11
Specific inhibitions of annonaceous acetogenins on class II 3-hydroxy-3-methylglutaryl coenzyme A reductase from Streptococcus pneumoniae.
AID613064Activity of Listeria monocytogenes HMGR class II expressed in Escherichia coli BL21(DE3) using NADPH as substrate after 5 min by microplate reader2011Bioorganic & medicinal chemistry, Jun-01, Volume: 19, Issue:11
Specific inhibitions of annonaceous acetogenins on class II 3-hydroxy-3-methylglutaryl coenzyme A reductase from Streptococcus pneumoniae.
AID613063Activity of Streptococcus pneumoniae recombinant HMGR class II expressed in Escherichia coli BL21(DE3) using NADPH as substrate after 5 min by microplate reader2011Bioorganic & medicinal chemistry, Jun-01, Volume: 19, Issue:11
Specific inhibitions of annonaceous acetogenins on class II 3-hydroxy-3-methylglutaryl coenzyme A reductase from Streptococcus pneumoniae.
AID57087Dissociation rate constant of compound for mutant T46S Escherichia coli dihydrofolate reductase1992Journal of medicinal chemistry, Jul-24, Volume: 35, Issue:15
Probing the molecular basis of resistance to pyrimethamine by site-directed mutagenesis.
AID134197Dissociation constant towards mouse wild type DHFR1996Journal of medicinal chemistry, Apr-26, Volume: 39, Issue:9
Methotrexate resistance of mouse dihydrofolate reductase: effect of substitution of phenylalanine-31 by serine or tryptophan.
AID57086Dissociation rate constant of compound for mutant T46N Escherichia coli dihydrofolate reductase1992Journal of medicinal chemistry, Jul-24, Volume: 35, Issue:15
Probing the molecular basis of resistance to pyrimethamine by site-directed mutagenesis.
AID326564Activity of Saccharomyces cerevisiae C-terminal truncated squalene synthase2007Antimicrobial agents and chemotherapy, Jun, Volume: 51, Issue:6
Kinetic characterization of squalene synthase from Trypanosoma cruzi: selective inhibition by quinuclidine derivatives.
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.
AID613068Ratio of Kcat to Km for Streptococcus pneumoniae HMGR class II using NADPH substrate2011Bioorganic & medicinal chemistry, Jun-01, Volume: 19, Issue:11
Specific inhibitions of annonaceous acetogenins on class II 3-hydroxy-3-methylglutaryl coenzyme A reductase from Streptococcus pneumoniae.
AID227964Dissociation constant towards DHFR mutant hF31S; no data1996Journal of medicinal chemistry, Apr-26, Volume: 39, Issue:9
Methotrexate resistance of mouse dihydrofolate reductase: effect of substitution of phenylalanine-31 by serine or tryptophan.
AID326563Activity of human full length squalene synthase expressed in baculovirus2007Antimicrobial agents and chemotherapy, Jun, Volume: 51, Issue:6
Kinetic characterization of squalene synthase from Trypanosoma cruzi: selective inhibition by quinuclidine derivatives.
AID89924Dissociation constant towards human wild type DHFR1996Journal of medicinal chemistry, Apr-26, Volume: 39, Issue:9
Methotrexate resistance of mouse dihydrofolate reductase: effect of substitution of phenylalanine-31 by serine or tryptophan.
AID613069Ratio of Kcat to Km for Listeria monocytogenes HMGR class II using NADPH substrate2011Bioorganic & medicinal chemistry, Jun-01, Volume: 19, Issue:11
Specific inhibitions of annonaceous acetogenins on class II 3-hydroxy-3-methylglutaryl coenzyme A reductase from Streptococcus pneumoniae.
AID326557Activity of Trypanosoma cruzi truncated squalene synthase 24/362007Antimicrobial agents and chemotherapy, Jun, Volume: 51, Issue:6
Kinetic characterization of squalene synthase from Trypanosoma cruzi: selective inhibition by quinuclidine derivatives.
AID57088Dissociation rate constant of compound for wild type Escherichia coli dihydrofolate reductase1992Journal of medicinal chemistry, Jul-24, Volume: 35, Issue:15
Probing the molecular basis of resistance to pyrimethamine by site-directed mutagenesis.
AID613066Activity of Haloferax volcanii HMGR class I expressed in Escherichia coli BL21(DE3) using NADPH as substrate after 5 min by microplate reader2011Bioorganic & medicinal chemistry, Jun-01, Volume: 19, Issue:11
Specific inhibitions of annonaceous acetogenins on class II 3-hydroxy-3-methylglutaryl coenzyme A reductase from Streptococcus pneumoniae.
AID227965Dissociation constant towards wild type DHFR1996Journal of medicinal chemistry, Apr-26, Volume: 39, Issue:9
Methotrexate resistance of mouse dihydrofolate reductase: effect of substitution of phenylalanine-31 by serine or tryptophan.
AID613067Activity of syrian hamsters HMGR class I expressed in Escherichia coli BL21(DE3) using NADPH as substrate after 5 min by microplate reader2011Bioorganic & medicinal chemistry, Jun-01, Volume: 19, Issue:11
Specific inhibitions of annonaceous acetogenins on class II 3-hydroxy-3-methylglutaryl coenzyme A reductase from Streptococcus pneumoniae.
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.
AID89920Dissociation constant towards DHFR mutant F31W1996Journal of medicinal chemistry, Apr-26, Volume: 39, Issue:9
Methotrexate resistance of mouse dihydrofolate reductase: effect of substitution of phenylalanine-31 by serine or tryptophan.
AID89922Dissociation constant towards human DHFR mutant hF31S1996Journal of medicinal chemistry, Apr-26, Volume: 39, Issue:9
Methotrexate resistance of mouse dihydrofolate reductase: effect of substitution of phenylalanine-31 by serine or tryptophan.
AID134195Dissociation constant towards mouse DHFR mutant hF31S1996Journal of medicinal chemistry, Apr-26, Volume: 39, Issue:9
Methotrexate resistance of mouse dihydrofolate reductase: effect of substitution of phenylalanine-31 by serine or tryptophan.
AID269136Binding affinity to Escherichia coli KPR2006Journal of medicinal chemistry, Aug-10, Volume: 49, Issue:16
Probing hot spots at protein-ligand binding sites: a fragment-based approach using biophysical methods.
AID326560Activity of Trypanosoma cruzi microsomal or mitochondrial squalene synthase2007Antimicrobial agents and chemotherapy, Jun, Volume: 51, Issue:6
Kinetic characterization of squalene synthase from Trypanosoma cruzi: selective inhibition by quinuclidine derivatives.
AID326559Activity of Trypanosoma cruzi glycosomal squalene synthase2007Antimicrobial agents and chemotherapy, Jun, Volume: 51, Issue:6
Kinetic characterization of squalene synthase from Trypanosoma cruzi: selective inhibition by quinuclidine derivatives.
AID57085Dissociation rate constant of compound for mutant T46A Escherichia coli dihydrofolate reductase1992Journal of medicinal chemistry, Jul-24, Volume: 35, Issue:15
Probing the molecular basis of resistance to pyrimethamine by site-directed mutagenesis.
AID52125Compound was tested for inhibition of choline acetyltransferase isolated from squid head ganglia; No inhibition at 10e-4 M1981Journal of medicinal chemistry, Dec, Volume: 24, Issue:12
Interaction of aromatic dyes with the coenzyme A binding site of choline acetyltransferase.
[information is prepared from bioassay data collected from National Library of Medicine (NLM), extracted Dec-2023]

Research

Studies (20,680)

TimeframeStudies, This Drug (%)All Drugs %
pre-199010469 (50.62)18.7374
1990's3159 (15.28)18.2507
2000's3259 (15.76)29.6817
2010's2911 (14.08)24.3611
2020's882 (4.26)2.80
[information is prepared from research data collected from National Library of Medicine (NLM), extracted Dec-2023]

Market Indicators

Research Demand Index: 72.94

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 Index72.94 (24.57)
Research Supply Index2.08 (2.92)
Research Growth Index4.66 (4.65)
Search Engine Demand Index119.39 (26.88)
Search Engine Supply Index2.00 (0.95)

This Compound (72.94)

All Compounds (24.57)

Study Types

Publication TypeThis drug (%)All Drugs (%)
Trials25 (0.12%)5.53%
Trials0 (0.00%)5.53%
Reviews960 (4.44%)6.00%
Reviews0 (0.00%)6.00%
Case Studies44 (0.20%)4.05%
Case Studies0 (0.00%)4.05%
Observational1 (0.00%)0.25%
Observational0 (0.00%)0.25%
Other20,578 (95.23%)84.16%
Other7 (100.00%)84.16%
[information is prepared from research data collected from National Library of Medicine (NLM), extracted Dec-2023]