Page last updated: 2024-11-05

hesperidin

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Description

Hesperidin is a flavonoid glycoside found primarily in citrus fruits, particularly oranges and lemons. It is a natural antioxidant with a range of potential health benefits. Hesperidin is synthesized in plants through a complex pathway involving multiple enzymes and precursors. Studies have shown that hesperidin may exhibit anti-inflammatory, anti-allergic, and anticancer effects. It is also believed to improve cardiovascular health by reducing blood pressure and cholesterol levels. Hesperidin's potential therapeutic properties have led to its widespread study in the fields of nutrition, medicine, and pharmaceuticals. Its bioactivity and abundance in citrus fruits make it a valuable compound for research and potential therapeutic applications.'

Hesperidin: A flavanone glycoside found in CITRUS fruit peels. [Medical Subject Headings (MeSH), National Library of Medicine, extracted Dec-2023]

hesperidin : A disaccharide derivative that consists of hesperetin substituted by a 6-O-(alpha-L-rhamnopyranosyl)-beta-D-glucopyranosyl moiety at position 7 via a glycosidic linkage. [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]

FloraRankFlora DefinitionFamilyFamily Definition
CitrusgenusA plant genus of the family RUTACEAE. They bear the familiar citrus fruits including oranges, grapefruit, lemons, and limes. There are many hybrids which makes the nomenclature confusing.[MeSH]RutaceaeA plant family in the order Sapindales that grows in warmer regions and has conspicuous flowers.[MeSH]
CitrusgenusA plant genus of the family RUTACEAE. They bear the familiar citrus fruits including oranges, grapefruit, lemons, and limes. There are many hybrids which makes the nomenclature confusing.[MeSH]RutaceaeA plant family in the order Sapindales that grows in warmer regions and has conspicuous flowers.[MeSH]

Cross-References

ID SourceID
PubMed CID6419939
CHEMBL ID1574000
CHEBI ID95114
SCHEMBL ID14567211
MeSH IDM0010288
PubMed CID10621
CHEMBL ID449317
CHEBI ID28775
SCHEMBL ID94586
MeSH IDM0010288

Synonyms (144)

Synonym
PRESTWICK_258
PRESTWICK2_000400
MLS001335942
MLS001335941
smr000857364
520-26-3
SPBIO_002540
PRESTWICK0_000400
PRESTWICK1_000400
HMS1569O21
A828892
(2s)-2-(4-methoxy-3-oxidanyl-phenyl)-7-[(2s,4r,5s)-6-[[(2r,4s,5r)-6-methyl-3,4,5-tris(oxidanyl)oxan-2-yl]oxymethyl]-3,4,5-tris(oxidanyl)oxan-2-yl]oxy-5-oxidanyl-2,3-dihydrochromen-4-one
(2s)-5-hydroxy-2-(3-hydroxy-4-methoxyphenyl)-7-[[(2s,4r,5s)-3,4,5-trihydroxy-6-[[(2r,4s,5r)-3,4,5-trihydroxy-6-methyl-2-oxanyl]oxymethyl]-2-oxanyl]oxy]-3,4-dihydro-2h-1-benzopyran-4-one
HMS2231O14
CHEMBL1574000
SCHEMBL14567211
CHEBI:95114
Q27166892
hesperidin 2s
hesperetin 7 rhamnoglucoside
hesperetin 7 rutinoside
2s, hesperidin
7-rhamnoglucoside, hesperetin
BRD-K38903228-001-02-8
4h-1-benzopyran-4-one, 7-((6-o-(6-deoxy-alpha-l-mannopyranosyl)-beta-d-glucopyranosyl)oxy)-2,3-dihydro-5-hydroxy-2-(3-hydroxy-4-methoxyphenyl)-, (s)-
SMP1_000149
hesperidin, (s)-(-)-
hesperetin 7-rutinoside
nsc-44184
usaf cf-3
hesperidin, (2s)-
hesperetin 7-rhamnoglucoside
hesperidoside
PRESTWICK3_000400
BCBCMAP01_000136
ccris 3940
brn 0075140
5-hydroxy-2-(3-hydroxy-4-methoxyphenyl)-7-((6-o-alpha-l-rhamnopyranosyl-beta-d-glucopyranosyl)oxy)-4-chromanon
glucopyranoside, hesperetin-7 6-o-(6-deoxy-alpha-l-mannopyranosyl)-, beta-d-
hesperetin, 7-(6-o-(6-deoxy-alpha-l-mannopyranosyl)-beta-d-glucopyranoside)
hesper bitabs
3',5'-dihydroxy-4'-methoxy-7-rutinosyloxyflavan-4-on
nsc 44184
hesperetin-rutinosid
7-((6-o-(6-deoxy-alpha-l-mannopyranosyl)-beta-d-glucopyranosyl)oxy)-2,3-dihydro-5-hydroxy-2-(3-hydroxy-4-methoxyphenyl)-4h-1-benzopyran-4-one, (s)-
4h-1-benzopyran-4-one, 7-((6-o-(6-deoxy-alpha-l-mannopyranosyl)-beta-d-glucopyranosyl)oxy)-2,3-dihydo-5-hydroxy-2-(3-hydroxy-4-methoxyphenyl)-, (s)-
4h-1-benzopyran-4-one, 7-((6-o-(6-deoxy-alpha-l-mannopyranosyl)-beta-d-glucopyranosyl)oxy)-2,3-dihydro-5-hydroxy-2-(3-hydroxy-4-methoxyphenyl)-, (2s)-
7-(6-o-desoxy-alpha-l-mannopyranosyl)-beta-d-glucopyranosyloxy)-5-hydroxy-2-(3-hydroxy-4-methoxyphenyl)-4-chromanon
einecs 208-288-1
NCGC00016481-01
cas-520-26-3
NCGC00179501-01
BSPBIO_000619
(s)-7-[[6-o-(6-deoxy-.alpha.-l-mannopyranosyl)-.beta.-d-glucopyranosyl]oxy]-2,3-dihydro-5-hydroxy-2-(3-hydroxy-4-methoxyphenyl)-4h-1-benzopyran-4-one
(2s)-5-hydroxy-2-(3-hydroxy-4-methoxy-phenyl)-7-[(2s,3r,4s,5s,6r)-3,4,5-trihydroxy-6-[[(2r,3r,4r,5r,6s)-3,4,5-trihydroxy-6-methyl-tetrahydropyran-2-yl]oxymethyl]tetrahydropyran-2-yl]oxy-chroman-4-one
NSC44184 ,
cirantin
AB00513829
hesperidin
ciratin
hesperetin 7-o-rutinoside
C09755
hesperidin, >=80%
DB04703
hesperidin (jan)
D01038
BPBIO1_000681
CHEBI:28775 ,
(2s)-5-hydroxy-2-(3-hydroxy-4-methoxyphenyl)-4-oxo-3,4-dihydro-2h-chromen-7-yl 6-o-(6-deoxy-alpha-l-mannopyranosyl)-beta-d-glucopyranoside
(2s)-hesperidin
(s)-(-)-hesperidin
smr000718775
MLS001304066 ,
hesperetin 7-(6-o-alpha-l-rhamnopyranosyl)-beta-d-glucopyranoside
(2s)-5-hydroxy-2-(3-hydroxy-4-methoxyphenyl)-7-[(2s,3r,4s,5s,6r)-3,4,5-trihydroxy-6-[[(2r,3r,4r,5r,6s)-3,4,5-trihydroxy-6-methyloxan-2-yl]oxymethyl]oxan-2-yl]oxy-2,3-dihydrochromen-4-one
CHEMBL449317
H0049
HMS2096O21
tox21_110448
dtxcid7024328
dtxsid9044328 ,
HMS2233I03
5-18-05-00218 (beilstein handbook reference)
ec 208-288-1
e750o06y6o ,
unii-e750o06y6o
hesperetin-7-o-rhamnoglucoside
hesperidin [inci]
hesperidin [mi]
diosvein
hesperidin [jan]
hesperidin [mart.]
4h-1-benzopyran-4-one, 7-((6-o-(6-deoxy-.alpha.-l-mannopyranosyl)-.beta.-d-glucopyranosyl)oxy)-2,3-dihydo-5-hydroxy-2-(3-hydroxy-4-methoxyphenyl)-, (s)-
hesperidin [vandf]
hesperidin [usp-rs]
(2s)-7-((6-o-(6-deoxy-.alpha.-l-mannopyranosyl)-.beta.-d-glucopyranosyl)oxy)-2,3-dihydro-5-hydroxy-2-(3-hydroxy-4-methoxyphenyl)-4h-1-benzopyran-4-one
ndi 590 [fdms]
diosmin [ndi]
5-hydroxy-2-(3-hydroxy-4-methoxyphenyl)-7-((6-o-.alpha.-l-rhamnopyranosyl-.beta.-d-glucopyranosyl)oxy)-4-chromanon
hesperidin [who-dd]
3',5'-dihydroxy-4'-methoxy-7-rutinosyloxyflavan-4-one
AKOS015895450
hesperitin-7-rutinoside
S2309
CCG-208580
SCHEMBL94586
KS-5308
QUQPHWDTPGMPEX-QJBIFVCTSA-N
(s)-7-[[6-o-(6-deoxy-alpha-l-mannopyranosyl)-beta-d-glucopyranosyl]oxy]-2,3-dihydro-5-hydroxy-2-(3-hydroxy-4-methoxyphenyl)-4h-1-benzopyran-4-one
(2s)-2-(4-methoxy-3-oxidanyl-phenyl)-7-[(2s,3r,4s,5s,6r)-6-[[(2r,3r,4r,5r,6s)-6-methyl-3,4,5-tris(oxidanyl)oxan-2-yl]oxymethyl]-3,4,5-tris(oxidanyl)oxan-2-yl]oxy-5-oxidanyl-2,3-dihydrochromen-4-one
bdbm61776
(2s)-5-hydroxy-2-(3-hydroxy-4-methoxyphenyl)-7-[[(2s,3r,4s,5s,6r)-3,4,5-trihydroxy-6-[[(2r,3r,4r,5r,6s)-3,4,5-trihydroxy-6-methyl-2-oxanyl]oxymethyl]-2-oxanyl]oxy]-3,4-dihydro-2h-1-benzopyran-4-one
cid_10621
flavanone, 3',5,7-trihydroxy-4'-methoxy-, 7-(6-o-alpha-l-rhamnosyl-d-glucoside)
HY-15337
SR-01000799145-7
SR-01000799145-5
CS-5631
SR-01000799145-4
sr-01000799145
(s)-5-hydroxy-2-(3-hydroxy-4-methoxyphenyl)-7-(((2s,3r,4s,5s,6r)-3,4,5-trihydroxy-6-((((2r,3r,4r,5r,6s)-3,4,5-trihydroxy-6-methyltetrahydro-2h-pyran-2-yl)oxy)methyl)tetrahydro-2h-pyran-2-yl)oxy)chroman-4-one
hesperidin, analytical standard
hesperidin, primary pharmaceutical reference standard
hesperidin, pharmaceutical secondary standard; certified reference material
hesperidin, european pharmacopoeia (ep) reference standard
(2s)-7-[[6-o-(6-deoxy-alpha-l-mannopyranosyl)-beta-d-glucopyranosyl]oxy]-5-hydroxy-2-(3-hydroxy-4-methoxyphenyl)-2,3-dihydro-4h-1-benzopyran-4-one (hesperidin)
HMS3713O21
(s)-5-hydroxy-2-(3-hydroxy-4-methoxyphenyl)-7-((2s,3r,4s,5s,6r)-3,4,5-trihydroxy-6-(((2r,3r,4r,5r,6s)-3,4,5-trihydroxy-6-methyltetrahydro-2h-pyran-2-yloxy)methyl)tetrahydro-2h-pyran-2-yloxy)chroman-4-one
(2s)-5-hydroxy-2-(3-hydroxy-4-methoxyphenyl)-7-{[(2s,3r,4s,5s,6r)-3,4,5-trihydroxy-6-({[(2r,3r,4r,5r,6s)-3,4,5-trihydroxy-6-methyloxan-2-yl]oxy}methyl)oxan-2-yl]oxy}-3,4-dihydro-2h-1-benzopyran-4-one
7-((2s,3r,4s,5s,6r)-3,4,5-trihydroxy-6-
methyltetrahydro-2h-pyran-2-yloxy)methyl)tetrahydro-
(s)-5-hydroxy-2-(3-hydroxy-4-methoxyphenyl)-
hesperidin,(s)
2h-pyran-2-yloxy)chroman-4-one
Q385937
BRD-K38903228-001-13-5
aurantiamarin (methyl hesperidin)
EN300-7419024
(2s)-7-((6-o-(6-deoxy-alpha-l-mannopyranosyl)-beta-d-glucopyranosyl)oxy)-2,3-dihydro-5-hydroxy-2-(3-hydroxy-4-methoxyphenyl)-4h-1-benzopyran-4-one
hesperidina
hesperidin (usp-rs)
hesperetin glycoside
ndi 590
hesperidin (mart.)

Research Excerpts

Overview

Hesperidin is a citrus flavanone glycoside with potent anti-inflammatory effects. It interferes with UVB-stimulated angiogenesis in skin. Its molecular mechanisms of action remain unclear.

ExcerptReferenceRelevance
"Hesperidin is a high affinity BACE1 inhibitor and only 500 nM of the compound shows complete inhibition of the enzyme activity."( Multi-target screening mines hesperidin as a multi-potent inhibitor: Implication in Alzheimer's disease therapeutics.
Bandyopadhyay, J; Basu, S; Chakraborty, S, 2016
)
1.45
"Hesperidin is a citrus flavanone glycoside with potent anti-inflammatory effects that interferes with UVB-stimulated angiogenesis in skin, but its molecular mechanisms of action remain unclear. "( Hesperidin Inhibits UVB-Induced VEGF Production and Angiogenesis via the Inhibition of PI3K/Akt Pathway in HR-1 Hairless Mice.
Chae, S; Im, AR; Ji, KY; Kim, KM; Kim, T; Lee, JY; Park, DH, 2021
)
3.51
"Neohesperidin (Neo) is a major active component of flavonoid compounds with anti-inflammation and anti-oxidant properties."( Therapeutic effect of neohesperidin on TNF-α-stimulated human rheumatoid arthritis fibroblast-like synoviocytes.
Dai, C; Li, L; Liu, R; Wang, J; Wang, XH; Yin, ZS, 2021
)
1.44
"Hesperidin (HSD) is a natural compound with antioxidant potential. "( Hesperidin Preserves Cognitive Functions and Hippocampus Histological Architecture in Albino Wistar Rats Subjected to Stress Through Enhancement of Brain-Derived Neurotrophic Factor.
Ahmed, AS; Elsisy, RA; Hantash, EM; Mona, MM, 2022
)
3.61
"Hesperidin (Hsd) is a plant-based bioflavonoid that can augment learning and memory."( Hesperidin Reduces Memory Impairment Associated with Adult Rat Hippocampal Neurogenesis Triggered by Valproic Acid.
Anosri, T; Aranarochana, A; Kaewngam, S; Pannangrong, W; Sirichoat, A; Welbat, JU; Wigmore, P, 2021
)
2.79
"Hesperidin is a flavanone glycoside commonly found in citrus fruit."( Hesperidin inhibits biofilm formation, virulence and staphyloxanthin synthesis in methicillin resistant Staphylococcus aureus by targeting SarA and CrtM: an in vitro and in silico approach.
Arun Vignesh, M; Muhilvannan, S; Vijayakumar, K, 2022
)
2.89
"Hesperidin is a flavonoid with antioxidant and anti-inflammatory properties in various diseases."( Effects in vitro and in vivo of hesperidin administration in an experimental model of acute lung inflammation.
Bezerra, FS; Cangussú, SD; Castro, TF; Costa, GP; de Matos, NA; de Menezes, RCA; de Souza, ABF; Nogueira, KOPC; Oliveira, LAM; Ribeiro, IML; Talvani, A, 2022
)
1.73
"Hesperidin (HDN) is a flavonoid found in high concentrations in citrus fruits."( Hesperidin attenuates hepatic lipid accumulation in mice fed high-fat diet and oleic acid induced HepG2 via AMPK activation.
Chen, H; Ma, J; Nie, T; Shan, A; Zhang, P, 2022
)
2.89
"Hesperidin (HSP) is an antioxidant, anti-adipogenic, anti-inflammatory, anti-hyperlipidemic, and anti-apoptotic agent."( The protective effect of hesperidin on the liver of hypothyroid rats mediated by nuclear factor erythroid 2-related factor 2-dependent activation of heme oxygenase 1.
Abdel-Moneim, A; Abdel-Rehiem, ES; Abdul-Hamid, M; Hegazy, W; Salah, M, 2022
)
1.75
"Hesperidin (HES) is an abundant and economical dietary bioflavonoid, and it has several pharmacological properties such as antioxidant activity and powerful cardiac protection. "( Hesperidin protects against cisplatin-induced cardiotoxicity in mice by regulating the p62-Keap1-Nrf2 pathway.
Cheng, X; Guo, H; Jia, Y; Ma, D; Shi, J; Si, M; Zhang, Y, 2022
)
3.61
"Hesperidin (HSP) is a citrus flavonoid that has a potent anti-inflammatory, antioxidant and free radical scavenging activities."( Alterations in reproductive parameters and steroid biosynthesis induced by nickel oxide nanoparticles in male rats: The ameliorative effect of hesperidin.
Abdelrahman, RE; Farghali, A; Ibrahim, MA; Khalaf, AAA; Mekkawy, AM; Noshy, PA; Tammam, AA; Zaki, AR, 2022
)
1.64
"Hesperidin (HSP) is an antioxidant that possesses anti-allergenic, anti-carcinogenic, anti-oxidant and anti-inflammatory activities."( Hesperidin Attenuates Oxidative Stress, Inflammation, Apoptosis, and Cardiac Dysfunction in Sodium Fluoride-Induced Cardiotoxicity in Rats.
Ayna, A; Caglayan, C; Darendelioğlu, E; Genç, A; Kandemir, FM; Kandemir, Ö; Varışlı, B, 2022
)
2.89
"Hesperidin is a bioflavonoid occurring in high concentrations in citrus fruits. "( Hesperidin: A Review on Extraction Methods, Stability and Biological Activities.
Pyrzynska, K, 2022
)
3.61
"Hesperidin is a flavanone abundantly found in citrus fruits for which health beneficial effects have been reported. "( Hesperidin Bioavailability Is Increased by the Presence of 2S-Diastereoisomer and Micronization-A Randomized, Crossover and Double-Blind Clinical Trial.
Alcaide-Hidalgo, JM; Arola, L; Caimari, A; Calderón-Pérez, L; Companys, J; Crescenti, A; Del Bas, JM; Delpino-Rius, A; Herrero, P; Mariné-Casadó, R; Pedret, A; Pla-Pagà, L; Salamanca, P; Samarra, I; Solà, R; Valls, RM, 2022
)
3.61
"Hesperidin is a polyphenol that is useful for improving exercise performance by activating energy generation through β-oxidation and oxidative phosphorylation in skeletal muscles."( Improvement of low-intensity long-time running performance in rats by intake of glucosyl hesperidin.
Aoki, K; Arai, N; Endo, S; Komine, S; Nagayama, S; Ohmori, H, 2023
)
1.85
"Hesperidin (HDN) is a flavonoid with a variety of biological activities found in high concentrations in citrus fruits."( The mitigation mechanism of hesperidin on deoxynivalenol toxicity in grass carp hepatocytes via decreasing ROS accumulation and inhibiting JNK phosphorylation.
Chen, H; Chen, X; Ma, J, 2023
)
1.93
"Hesperidin is a flavonoid commonly found in citrus fruits. "( Therapeutic potential of hesperidin: Apoptosis induction in breast cancer cell lines.
Aydın, F; Baran, M; Bitgen, N; Göktepe, Ö; Önder, GÖ; Yay, A, 2023
)
2.66
"Hesperidin is a polyphenol derived from citrus fruits that has a broad potential for biological activity and the ability to positively modify the intestinal microbiome. "( Zein as an Effective Carrier for Hesperidin Delivery Systems with Improved Prebiotic Potential.
Cielecka-Piontek, J; Miklaszewski, A; Sip, A; Sip, S; Żarowski, M, 2023
)
2.63
"Hesperidin is a bioflavonoid, having different pharmacological activities, but its poor water solubility and short plasma half-life restrict its applications in the clinical field."( Ameliorative and Neuroprotective Effect of Core-Shell Type Se@Au Conjugated Hesperidin Nanoparticles in Diabetes-Induced Cognitive Impairment.
Behera, A; Pattnaik, S; Pradhan, SP; Sa, N; Sahu, PK; Tejaswani, P, 2023
)
1.86
"Hesperidin (HES) is a well-known citrus bioflavonoid phyto-nutraceutical agent with polypharmacological properties. "( Hesperidin: Enrichment, forced degradation, and structural elucidation of potential degradation products using spectral techniques.
Agrawal, S; Bhatta, RS; Bisen, AC; Choudhury, AD; Kamboj, S; Kanojiya, S; Kumar, A; Kumar, S; Narender, T; Rawat, P; Sanap, SN; Sharma, G; Shukla, SK, 2023
)
3.8
"Hesperidin is a well-known flavanone glycoside copiously found in sweet orange and lemon, which was recently reported to possess significant anti-inflammatory, analgesic, antifungal, antiviral, antioxidant, and anticancer activities. "( Hesperidin Shows Protective Effects on Renal Function in Ischemia-induced Acute Kidney Injury (Sprague-Dawley Rats).
Hwang, J; Jeon, Y; Jin, SA; Kang, SW; Kim, SK; Park, MS; Park, WS, 2019
)
3.4
"Hesperidin (HSD) is a bi-flavonoid found in citrus fruits and has been reported to be a potent antioxidant and anti-inflammatory agent."( Rescue role of hesperidin in 4-vinylcyclohexene diepoxide-induced toxicity in the brain, ovary and uterus of wistar rats.
Abolaji, AO; Akintola, TE; Farombi, EO; Oluwamuyide, OJ; Omozokpia, MU, 2020
)
1.63
"Hesperidin (HSD) is a naturally occurring flavonoid shown to exert a variety of biological activities, including antioxidant, anti-inflammatory, and neuroprotective effects."( Antidepressant-Like Effects of Hesperidin in Animal Model of Post-Traumatic Stress Disorder.
Choi, GM; Lee, B; Sur, B, 2021
)
1.63
"Hesperidin is a flavonoid glycoside with proven therapeutic activities for various diseases, including cancer. "( Hesperidin Loaded on Gold Nanoparticles as a Drug Delivery System for a Successful Biocompatible, Anti-Cancer, Anti-Inflammatory and Phagocytosis Inducer Model.
Dewir, YH; Jabir, MS; Khazaal, SH; Naidoo, Y; Sulaiman, GM; Waheeb, HM, 2020
)
3.44
"Hesperidin (Hsd) is a major flavanoid with multiple beneficial pharmacological effects such as anti-oxidation, anti-inflammation, and neuroprotective effects."( Neuroprotective effects of hesperidin against methotrexate-induced changes in neurogenesis and oxidative stress in the adult rat.
Aranarochana, A; Naewla, S; Pannangrong, W; Sirichoat, A; Welbat, JU; Wigmore, P, 2020
)
1.58
"Hesperidin is a classical herbal medicine used worldwide for a long time with an excellent safety profile."( Is hesperidin essential for prophylaxis and treatment of COVID-19 Infection?
El-Ashmawy, NE; Haggag, YA; Okasha, KM, 2020
)
1.9
"Hesperidin is a flavonoid glycoside that is frequently found in citrus fruits. "( Hesperidin protects against behavioral alterations and loss of dopaminergic neurons in 6-OHDA-lesioned mice: the role of mitochondrial dysfunction and apoptosis.
Antunes, MS; Boeira, SP; Cattelan Souza, L; Ladd, AABL; Ladd, FVL; Moreira, AL, 2021
)
3.51
"Hesperidin (HES) is a flavanone glycoside that has multiple therapeutic benefits including neuroprotective effects."( Hesperidin downregulates kinases lrrk2 and gsk3β in a 6-OHDA induced Parkinson's disease model.
Balakrishnan, A; Kannan, RR; Kesh, S; Sivaji, K, 2021
)
2.79
"Hesperidin (HDN) is a bioflavonoid that serves a role as an antioxidant in biological systems. "( Hesperidin ameliorates liver ischemia/reperfusion injury via activation of the Akt pathway.
Li, S; Luo, D; Pan, W; Qin, Q; Shang, L; Wei, Y; Xu, Y; Zhu, J, 2020
)
3.44
"Hesperidin (HSP) is a flavanone glycoside predominantly found in citrus fruits and has various beneficial health effects."( Neuroprotective effect of hesperidin against emamectin benzoate-induced neurobehavioral toxicity in rats.
Azouz, RA; Noshy, PA,
)
1.15
"Hesperidin (HD) is a common flavanone glycoside isolated from citrus fruits and possesses great potential for cardiovascular protection. "( Hesperidin Is a Potential Inhibitor against SARS-CoV-2 Infection.
Chen, Y; Cheng, FJ; Ho, CY; Hu, DW; Huang, WC; Huynh, TK; Shen, YC; Tang, CH; Tu, CY; Wu, YC; Yang, CS, 2021
)
3.51
"Hesperidin is a flavonoid present in high concentration in citrus species and has numerous biological properties, principally antioxidant and anti-inflammatory. "( Potential Anti-inflammatory Effects of Hesperidin from the Genus Citrus.
Capó, X; Martorell, M; Pinya, S; Pons, A; Sureda, A; Tejada, S; Tur, JA, 2018
)
2.19
"Hesperidin (HP) is a natural product found in citrus fruits and reputed for its antitumor activity."( Hepatoprotective effect of hesperidin in hepatocellular carcinoma: Involvement of Wnt signaling pathways.
Eissa, LA; El-Karef, A; El-Shishtawy, MM; Elsherbiny, NM; Kenawy, HI; Zaghloul, RA, 2017
)
1.47
"Hesperidin is a natural product and a strong antioxidant with potential applications in various food and pharmaceutical products. "( Enhancement of the water solubility and antioxidant activity of hesperidin by chitooligosaccharide.
Cao, R; Zhao, X; Zhao, Y; Zhou, Z, 2018
)
2.16
"Hesperidin is a flavonoid with antioxidant, anti-inflammatory, and immune modulatory activities. "( The flavonoid hesperidin exerts anti-photoaging effect by downregulating matrix metalloproteinase (MMP)-9 expression via mitogen activated protein kinase (MAPK)-dependent signaling pathways.
Chae, S; Im, AR; Kang, HS; Kim, SM; Lee, HJ; Lee, JD, 2018
)
2.28
"Hesperidin is an agent belonging to the flavonoid family."( Evaluation of the effect of hesperidin on vascular endothelial growth factor gene expression in rat skin animal models following cobalt-60 gamma irradiation.
Abbaszadeh, A; Ghorbani, Z; Haddadi, G; Mosleh-Shirazi, MA; Okhovat, MA; Salajeghe, A, 2018
)
1.5
"Hesperidin (HES) is a flavanone glycoside found in citrus peel that contributes to its bitter taste. "( α-Monoglucosyl Hesperidin but Not Hesperidin Induces Brown-Like Adipocyte Formation and Suppresses White Adipose Tissue Accumulation in Mice.
Hyodo, T; Nagao, T; Nakanishi, A; Nishikawa, S; Tandia, M; Tsuda, T, 2019
)
2.31
"Hesperidin is a flavanone glycoside that is found in the Citrus species and showed antioxidant, hepatoprotective as well as anticancer activity. "( Involvement of PI3K/Akt pathway in the protective effect of hesperidin against a chemically induced liver cancer in rats.
Hussein, RM; Kandeil, MA; Mo'men, YS, 2019
)
2.2
"Hesperidin is an important natural phenolic compound and is considered beneficial to health. "( Hesperidin Protects Against Intestinal Inflammation by Restoring Intestinal Barrier Function and Up-Regulating Treg Cells.
Gong, W; Gu, G; Guo, K; Hong, Z; Li, J; Ren, H; Ren, J; Wang, G; Wu, X, 2019
)
3.4
"Hesperidin is a flavonoid which occurs in citrus fruits. "( Hesperidin structurally modified by gamma irradiation induces apoptosis in murine melanoma B16BL6 cells and inhibits both subcutaneous tumor growth and metastasis in C57BL/6 mice.
Byun, EB; Kim, HM; Kim, WS; Song, HY, 2019
)
3.4
"Hesperidin (Hsd) is a flavonoid glycoside that promotes anti-inflammation, acts as an antioxidant, and has neuroprotective properties."( Hesperidin Alleviates Methotrexate-Induced Memory Deficits via Hippocampal Neurogenesis in Adult Rats.
Chaisawang, P; Naewla, S; Pannangrong, W; Sirichoat, A; Welbat, JU; Wigmore, P, 2019
)
2.68
"Neohesperidin is a novel flavonoid isolated from the leaves of C. aurantium."( Neohesperidin suppresses IgE-mediated anaphylactic reactions and mast cell activation via Lyn-PLC-Ca
An, H; Che, D; Ding, Y; Fu, J; Gao, Z; Hu, S; Li, C; Liu, R; Ma, P; Wang, J; Zhang, T; Zhang, Y; Zhao, T, 2019
)
1.65
"Hesperidin (HDN) is a citrus bioflavonoid, which widely exists in many plants. "( Protective effects of hesperidin on concanavalin A-induced hepatic injury in mice.
Chen, MJ; Gong, Q; Huang, WJ; Li, G; Nie, H; Shu, KG; Sun, T; Tang, SQ; Wang, C; Wang, CF; Yuan, TD, 2014
)
2.16
"Hesperidin (Hesp) acts as a powerful anti-oxidant agent against superoxide, singlet oxygen, and hydroxyl radicals."( Hesperidin potentiates the neuroprotective effects of diazepam and gabapentin against pentylenetetrazole-induced convulsions in mice: Possible behavioral, biochemical and mitochondrial alterations.
Kumar, A; Lalitha, S; Mishra, J,
)
2.3
"Hesperidin (HP) is a known cytoprotectant with comprehensive anti-oxidant and neuroprotective properties."( Hesperidin restores experimentally induced neurotoxicity in Wistar rats.
Naseem, M; Parvez, S, 2014
)
2.57
"Hesperidin is a naturally common flavonoid. "( Protective effect of hesperidin against lung injury induced by intestinal ischemia/reperfusion in adult albino rats: histological, immunohistochemical and biochemical study.
Abdelaziz, EZ; Bayomy, NA; ElBakary, RH; Elshafhey, SH, 2014
)
2.16
"Neohesperidin is an important natural flavanone glycoside distributed in several citrus species. "( Development of new reference material neohesperidin for quality control of dietary supplements.
Du, G; Gao, Z; Gong, N; Lu, Y; Yang, D; Zhang, B, 2015
)
1.3
"Hesperidin is a flavanone glycoside found abundantly in citrus fruits, has been reported to have antioxidant, hypolipidaemic, analgesic and anti-hypertensive activity."( Effect of hesperidin on neurobehavioral, neuroinflammation, oxidative stress and lipid alteration in intracerebroventricular streptozotocin induced cognitive impairment in mice.
Ahmed, ME; Islam, F; Javed, H; Khan, A; Safhi, MM; Tabassum, R; Vaibhav, K, 2015
)
1.54
"Hesperidin (HDN) is a naturally occurring flavanone glycoside, which is extracted from fruit peels of the genus citrus."( Hesperetin derivative-7 inhibits PDGF-BB-induced hepatic stellate cell activation and proliferation by targeting Wnt/β-catenin pathway.
He, Y; Huang, C; Kong, LN; Li, J; Lin, X; Ma, TT; Meng, XM; Wang, QQ, 2015
)
1.14
"Hesperidin is a flavonone glycoside, belonging to the flavonoid family, which is widely found in Citrus species and acts as a potent antioxidant and anticancer agent."( Oxidative stress and cancer; the role of hesperidin, a citrus natural bioflavonoid, as a cancer chemoprotective agent.
Ahmadi, A; Shadboorestan, A, 2016
)
1.42
"Neohesperidin (NE) is a flavonoid compound isolated from citrus fruits."( Neohesperidin suppresses osteoclast differentiation, bone resorption and ovariectomised-induced osteoporosis in mice.
Cheng, J; Hong, G; Kenny, J; Lin, X; Liu, Q; Qin, A; Quinn, JMW; Tan, Z; Tickner, J; Wang, T; Xu, J; Yuan, J; Zhao, J; Zhou, L, 2017
)
1.59
"Hesperidin which is a flavanone glycoside found in citrus fruit peels, have been intensively studied for their UVA-protective activity, but its effects and mechanisms on UVA irradiation-induced inflammation and oxidative stress have never been described."( Hesperidin ameliorates UV radiation-induced skin damage by abrogation of oxidative stress and inflammatory in HaCaT cells.
Li, M; Lin, XF; Lu, J; Luo, D; Zhou, BR, 2016
)
2.6
"Hesperidin is an abundant flavanone glycoside in citrus fruits and has been reported to possess a wide range of biological activities. "( In vivo pharmacokinetics of hesperidin are affected by treatment with glucosidase-like BglA protein isolated from yeasts.
Du, WC; Hu, M; Li, GM; Li, WX; Li, XM; Li, YM; Xu, J; Zhang, J; Zhu, Z, 2008
)
2.08
"Hesperidin is a naturally occurring flavonoid that has been reported to possess anticancer effects. "( Modulatory effect of hesperidin on benzo(a)pyrene induced experimental lung carcinogenesis with reference to COX-2, MMP-2 and MMP-9.
Anandakumar, P; Devaki, T; Jagan, S; Kamaraj, S; Ramakrishnan, G, 2010
)
2.12
"Hesperidin is a biologically active flavanone glycoside occurring abundantly in citrus fruits. "( Effects of gut microflora on pharmacokinetics of hesperidin: a study on non-antibiotic and pseudo-germ-free rats.
Han, SB; Jin, MJ; Kim, DH; Kim, IS; Kim, U; Kim, Y; Kwon, OS; Yoo, HH, 2010
)
2.06
"Hesperidin is a citrus bioflavonoid that possesses a potent antioxidant and NO modulating activities."( Hesperidin alleviates doxorubicin-induced cardiotoxicity in rats.
Abdel-Ghany, AA; Abdel-Raheem, IT, 2009
)
2.52
"Hesperidin is a flavonoid that has various pharmacological activities including anti-inflammatory, antimicrobial and antiviral activities."( Antioxidant capacity of hesperidin from citrus peel using electron spin resonance and cytotoxic activity against human carcinoma cell lines.
Al-Ashaal, HA; El-Sheltawy, ST, 2011
)
2.12
"Hesperidin is a flavonone glycoside found abundantly in citrus fruits that reportedly possesses anti-inflammatory, anticancer, and immune effects. "( Hesperidin partially restores impaired immune and nutritional function in irradiated mice.
Jung, JH; Kim, HS; Lee, YR, 2011
)
3.25
"Hesperidin (HN) is a flavanone glycoside abundantly found in citrus fruits. "( Chronic intraperitoneal and oral treatments with hesperidin induce central nervous system effects in mice.
Higgs, J; Loscalzo, LM; Marder, M; Wasowski, C, 2012
)
2.08
"Hesperidin is a flavanone glycoside widely available for dietary intake in citrus fruits or citrus fruit derived products; however, exhaustive and reliable data are scarcely available for biological activity when it exerts protective health effects in humans. "( Bioevaluation of human serum albumin-hesperidin bioconjugate: insight into protein vector function and conformation.
Diao, JX; Ding, F; Sun, Y, 2012
)
2.09
"Hesperidin is a natural compound that has chemoprotective effects in tumor cell lines and protective effects against hematotoxicity induced by cyclophosphamide. "( Hesperidin inhibits cyclophosphamide-induced tumor growth delay in mice.
Hosseinimehr, SJ; Jalayer, Z; Mahmoudzadeh, A; Naghshvar, F, 2012
)
3.26
"Hesperidin is a naturally occurring flavonone present in citrus fruits and has been shown to have many biological properties, including antioxidant activity."( Hesperidin-mediated expression of Nrf2 and upregulation of antioxidant status in senescent rat heart.
Elavarasan, J; Ganesan, T; Periandavan, K; Rajasekaran, D; Ramakrishnan, SK; Velusamy, P, 2012
)
2.54
"Hesperidin (HES) is a flavonoid contained in citrus fruit peel. "( Effects of long-term administration of hesperidin and glucosyl hesperidin to spontaneously hypertensive rats.
Abe, A; Iwasaki, Y; Kondo, M; Kondo, Y; Mitsuzuwi, H; Ohtsuki, K; Uemura, K, 2002
)
2.03
"Hesperidin is a biologically effective flavonoid. "( Identification and quantification of the conjugated metabolites derived from orally administered hesperidin in rat plasma.
Hasegawa, Y; Ikoma, Y; Matsumoto, H; Sugiura, M; Yano, M, 2004
)
1.98
"Hesperidin appeared to be a very weak scavenger of hydrogen peroxide."( Antiradical and anti-H2O2 properties of polyphenolic compounds from an aqueous peppermint extract.
Cisowski, W; Fecka, I; Sroka, Z,
)
0.85
"Hesperidin (HDN) is a flavanone glycoside abundantly found in citrus fruits. "( Beneficial effect of hesperidin on lipopolysaccharide-induced hepatotoxicity.
Chopra, K; Kaur, G; Tirkey, N, 2006
)
2.1
"Hesperidin (Hsp) is an abundant flavonoid in citrus fruits, and the oral administration of Hsp has been recently reported to suppress collagen-induced arthritis in mice. "( Effects of alpha-glucosylhesperidin, a bioactive food material, on collagen-induced arthritis in mice and rheumatoid arthritis in humans.
Fukuda, T; Kakuma, T; Kawaguchi, K; Kometani, T; Kumazawa, Y; Nagata, K; Tamura, W, 2008
)
2.09

Effects

Hesperidin (HES) has a wide range of biological and pharmacological properties, including anti-inflammatory and antioxidant abilities.

G-Hesperidin has been found to decrease an elevated serum apolipoprotein B (apo B) level in the hypertriglyceridemic subjects, suggesting a possibility that this compound suppresses excess VLDL secretion in the liver. HesperidIn function has been studied in preclinical models for CNS diseases, but little is known about its definite effect in humans.

ExcerptReferenceRelevance
"Hesperidin has an antioxidant effect and has a potential protective effect on reproductive toxicity in diabetic male rats."( Ameliorative effect of hesperidin on streptozotocin-diabetes mellitus-induced testicular DNA damage and sperm quality degradation in Sprague-Dawley rats.
Aksu, EH; Kandemir, FM; Küçükler, S, 2021
)
1.65
"Hesperidin (HES) has a wide range of biological and pharmacological properties, including anti-inflammatory and antioxidant abilities."( Hesperidin has a protective effect on paclitaxel-induced testicular toxicity through regulating oxidative stress, apoptosis, inflammation and endoplasmic reticulum stress.
Akaras, N; Genc, A; Ileriturk, M; Kandemir, FM; Kandemir, O; Simsek, H, 2023
)
3.07
"Hesperidin has an antioxidant effect and has a potential protective effect on reproductive toxicity in diabetic male rats."( Ameliorative effect of hesperidin on streptozotocin-diabetes mellitus-induced testicular DNA damage and sperm quality degradation in Sprague-Dawley rats.
Aksu, EH; Kandemir, FM; Küçükler, S, 2021
)
1.65
"Hesperidin has been shown to exhibits numerous pharmacological activities."( Hesperidin inhibits biofilm formation, virulence and staphyloxanthin synthesis in methicillin resistant Staphylococcus aureus by targeting SarA and CrtM: an in vitro and in silico approach.
Arun Vignesh, M; Muhilvannan, S; Vijayakumar, K, 2022
)
2.89
"Hesperidin intake has demonstrated ergogenic activity and is able to influence the intestinal ecosystem and immunity."( Rat Mucosal Immunity following an Intensive Chronic Training and an Exhausting Exercise: Effect of Hesperidin Supplementation.
Castell, M; Estruel-Amades, S; Franch, À; Massot-Cladera, M; Pérez-Cano, FJ; Ruiz-Iglesias, P, 2022
)
1.66
"Hesperidin function has been studied in preclinical models for CNS diseases, but little is known about its definite effect in humans."( The benefits of hesperidin in central nervous system disorders, based on the neuroprotective effect.
Cao, H; Chen, X; Cheng, Q; Huang, W; Li, S; Li, X; Liu, Y; Qiu, H; Tan, R; Xu, C, 2023
)
1.98
"Hesperidin (HES) has a wide range of biological and pharmacological properties, including anti-inflammatory and antioxidant abilities."( Hesperidin has a protective effect on paclitaxel-induced testicular toxicity through regulating oxidative stress, apoptosis, inflammation and endoplasmic reticulum stress.
Akaras, N; Genc, A; Ileriturk, M; Kandemir, FM; Kandemir, O; Simsek, H, 2023
)
3.07
"Hesperidin (HES) has many pharmacological activities, such as anti-inflammatory, anti-oxidation, promotion of osteoblast differentiation, but its effect on alveolar osteoblasts is rarely reported."( Hesperidin promotes differentiation of alveolar osteoblasts via Wnt/β-Catenin signaling pathway.
Hong, W; Zhang, W, 2020
)
2.72
"Hesperidin has been reported to have biological activities such as antihypertensive, hypoglycemic, and antioxidant effects. "( Hesperidin ameliorates signs of the metabolic syndrome and cardiac dysfunction via IRS/Akt/GLUT4 signaling pathway in a rat model of diet-induced metabolic syndrome.
Bunbupha, S; Maneesai, P; Meephat, S; Pakdeechote, P; Prachaney, P; Prasatthong, P; Rattanakanokchai, S, 2021
)
3.51
"Neohesperidin has anti-oxidative and anti-inflammatory properties and exerts extensive therapeutic effects on various cancers. "( Neohesperidin Induces Cell Cycle Arrest, Apoptosis, and Autophagy via the ROS/JNK Signaling Pathway in Human Osteosarcoma Cells.
Ji, G; Li, Z; Liu, W; Wang, S; Wei, G; Yu, N, 2021
)
1.86
"Hesperidin has been reported to alter several molecular targets related to carcinogenesis, such as reactive nitrogen species, cellular kinases, transcription factors, reactive oxygen species, drug transporters, cell cycle mediators and inflammatory cytokines."( A mechanistic review of the anticancer potential of hesperidin, a natural flavonoid from citrus fruits.
Khan, F; Pandey, P, 2021
)
1.59
"Hesperidin has been reported to attenuate myocardial ischemia/reperfusion (I/R) injury; however, its effect on autophagy during myocardial I/R and the underlying mechanism remains unknown. "( Inhibition of autophagy via activation of PI3K/Akt/mTOR pathway contributes to the protection of hesperidin against myocardial ischemia/reperfusion injury.
Hu, X; Jiang, H; Li, X; Ma, R; Wang, J; Xu, W; Yi, C, 2018
)
2.14
"Hesperidin has demonstrated its antioxidant activity, but few studies focus on its influence on intensive training."( Protective Effect of Hesperidin on the Oxidative Stress Induced by an Exhausting Exercise in Intensively Trained Rats.
Camps-Bossacoma, M; Castell, M; Estruel-Amades, S; Franch, À; Garcia-Cerdà, P; Massot-Cladera, M; Pérez-Cano, FJ, 2019
)
1.55
"Hesperidin has significantly reduced the proliferation of HepG2 and SH-SY5Y cells and induces apoptosis by activating the caspase-3-dependent intrinsic pathway through the upregulation of proapoptotic Bax protein."( Hesperidin-CAMKIV interaction and its impact on cell proliferation and apoptosis in the human hepatic carcinoma and neuroblastoma cells.
Ahamad, S; Alajmi, MF; Hassan, MI; Hussain, A; Luqman, S; Naz, H; Rehman, MT; Tarique, M, 2019
)
2.68
"Hesperidin has been reported to exert a wide range of pharmacological effects, including antifungal, antiviral, antioxidant, anti-inflammatory and anticarcinogenic activities. "( In vitro and in vivo effects of hesperidin treatment on adult worms of Schistosoma mansoni.
Abuelsaad, AS; Allam, G, 2014
)
2.13
"Hesperidin has been reported to have multiple biological properties."( Modulating effects of hesperidin on key carbohydrate-metabolizing enzymes, lipid profile, and membrane-bound adenosine triphosphatases against 7,12-dimethylbenz(a)anthracene-induced breast carcinogenesis.
Balamurugan, A; Balasubramanian, MP; Nandakumar, N; Rengarajan, T, 2014
)
1.44
"Hesperidin has antifungal, antiviral, antioxidant, anti-inflammatory, and anticarcinogenic properties."( Effects of hesperidin loaded poly(lactic-co-glycolic acid) scaffolds on growth behavior of costal cartilage cells in vitro and in vivo.
Cha, SR; Cho, SA; Khang, G; Kim, EY; Kim, KH; Lee, D; Lee, HG; Park, SM, 2014
)
1.51
"Hesperidin (HES) has been reported to exert antioxidant and anti-inflammatory activities."( Hesperidin inhibits inflammatory response induced by Aeromonas hydrophila infection and alters CD4+/CD8+ T cell ratio.
Abuelsaad, AS; Al-Solumani, AA; Allam, G, 2014
)
2.57
"Hesperidin has been shown to possess cardioprotective and anti-diabetic potential. "( Hesperidin blunts streptozotocin-isoproternol induced myocardial toxicity in rats by altering of PPAR-γ receptor.
Agrawal, YO; Arya, DS; Goyal, SN; Sharma, PK; Shrivastava, B, 2014
)
3.29
"Hesperidin (HP) has various pharmacological effects including anti-oxidative, anti-inflammatory and neuroprotective properties."( Hesperidin attenuates learning and memory deficits in APP/PS1 mice through activation of Akt/Nrf2 signaling and inhibition of RAGE/NF-κB signaling.
An, Z; Hong, Y, 2018
)
2.64
"Hesperidin pretreatment has been shown to protect against myocardial ischemia/reperfusion (I/R) injury, but the underlying mechanism is poorly understood. "( Short-Term Hesperidin Pretreatment Attenuates Rat Myocardial Ischemia/Reperfusion Injury by Inhibiting High Mobility Group Box 1 Protein Expression via the PI3K/Akt Pathway.
Hu, X; Jiang, H; Li, X; Ma, R; Wang, J; Xu, W; Yi, C, 2016
)
2.27
"Hesperidin (HES) has been reported to exhibit anti-invasive and antimetastatic activities by suppressing the enzymatic activity of matrix metalloproteinase-9 (MMP-9). "( The inhibitory effect of hesperidin on tumor cell invasiveness occurs via suppression of activator protein 1 and nuclear factor-kappaB in human hepatocellular carcinoma cells.
Huang, YY; Hung, CM; Kao, ST; Lee, KH; Liu, CJ; Yeh, CC; Yeh, MH, 2010
)
2.11
"Hesperidin has been reported to have an excellent and wide variety of biological activities. "( Hesperidin protects renal and hepatic tissues against free radical-mediated oxidative stress during DMBA-induced experimental breast cancer.
Balasubramanian, MP; Nandakumar, N, 2011
)
3.25
"Hesperidin treatment has significantly attenuated oxidative stress, monoamines alterations and mitochondrial damage in the cerebral hemispheres of irradiated rats."( Hesperidin attenuates brain biochemical changes of irradiated rats.
Abd-Alla, MS; Amin, AM; Elsayed, ME; Saada, HN; Said, UZ, 2012
)
2.54
"Hesperidin has sedative and sleep-enhancing properties but is not a ligand for the benzodiazepine binding site."( Synergistic interaction between hesperidin, a natural flavonoid, and diazepam.
Fernández, SP; Marder, M; Paladini, AC; Wasowski, C, 2005
)
1.33
"G-Hesperidin has also been found to decrease an elevated serum apolipoprotein B (apo B) level in the hypertriglyceridemic subjects, suggesting a possibility that this compound suppresses excess VLDL secretion in the liver."( Suppression of apolipoprotein B secretion from HepG2 cells by glucosyl hesperidin.
Arai, N; Chaen, H; Kibata, M; Kubota, M; Mitsuzumi, H; Miwa, Y; Okada, K; Sunayama, T; Tanabe, F; Yamada, M, 2006
)
1.12

Actions

Hesperidin can increase the proliferation of rabbit RPE cells, and inhibit the level of NO and iNOS expression. Neohes peridin plays an important role in influencing cell apoptosis, cell growth, tumorigenesis and tumor microenvironment.

ExcerptReferenceRelevance
"Hesperidin promotes osteogenesis and reduces oxidative stress in zebrafish."( Hesperidin Anti-Osteoporosis by Regulating Estrogen Signaling Pathways.
Duan, TH; Feng, W; Hu, HY; Jiang, XY; Wang, XG; Zhang, ZZ, 2023
)
3.07
"Neohesperidin plays an important role in influencing cell apoptosis, cell growth, tumorigenesis and tumor microenvironment, but the mechanism and role of Neohesperidin in cardiac hypertrophy and remodeling caused by Angiotensin II has not been fully elucidated."( Neohesperidin inhibits cardiac remodeling induced by Ang II in vivo and in vitro.
Ding, Y; Fu, X; Liu, F; Lou, Y; Wen, H; Yang, L; Yang, Q; Zhang, J; Zhang, L, 2020
)
1.69
"Neohesperidin (NHP) could lower blood glucose and prevent obesity in mice."( Neohesperidin enhances PGC-1α-mediated mitochondrial biogenesis and alleviates hepatic steatosis in high fat diet fed mice.
Bai, YF; Fan, XY; Lou, LJ; Sheng, H; Wang, SW; Weng, YY; Zhang, F, 2020
)
1.69
"Neohesperidin could inhibit proliferation and induce apoptosis in SJSA and HOS cells."( Neohesperidin Induces Cell Cycle Arrest, Apoptosis, and Autophagy via the ROS/JNK Signaling Pathway in Human Osteosarcoma Cells.
Ji, G; Li, Z; Liu, W; Wang, S; Wei, G; Yu, N, 2021
)
1.76
"Hesperidin prevented an increase in ROS production induced by the additional exhaustion test."( Protective Effect of Hesperidin on the Oxidative Stress Induced by an Exhausting Exercise in Intensively Trained Rats.
Camps-Bossacoma, M; Castell, M; Estruel-Amades, S; Franch, À; Garcia-Cerdà, P; Massot-Cladera, M; Pérez-Cano, FJ, 2019
)
1.55
"Hesperidin can increase the proliferation of rabbit RPE cells, and inhibit the level of NO and iNOS expression, so hesperidin can protect rabbit RPE cells."( Effect of hesperidin on expression of inducible nitric oxide synthase in cultured rabbit retinal pigment epithelial cells.
Liang, X; Minghua, D; Shumei, L; Xiangyun, Z; Xiaoting, L, 2010
)
2.21
"Hesperidin did not inhibit the histamine release from RBL-2H3 cells induced by IgE."( Antiallergic activity of hesperidin is activated by intestinal microflora.
Choi, SH; Kim, DH; Lee, NK; Park, EK; Park, SH, 2004
)
1.35

Treatment

Hesperidin treatment of HUVEC enhanced NO production, endothelial NO synthase (eNOS) activity and the phosphorylation of eNOS and Akt. Treatment with hesperid in attenuated the expression of caspase-3, Bcl-2, TLR4, Hsp70, and MyD88 protein in the lung tissue of CLP-induced lung injury mice.

ExcerptReferenceRelevance
"Hesperidin (Hes) pretreated groups were started with Hes (200 mg/kg) two weeks prior to DMBA induction."( Protective effects of hesperidin through attenuation of Ki67 expression against DMBA-induced breast cancer in female rats.
Patel, P; Shah, J, 2021
)
1.66
"Hesperidin treatment induced cell cycle arrest at G0/G1 phase, whereas it has no effect on cell apoptosis."( Hesperidin delays cell cycle progression into the G0/G1 phase via suspension of MAPK signaling pathway in intrahepatic cholangiocarcinoma.
Deng, J; Li, L; Liu, L; Sun, J; Yan, F, 2022
)
2.89
"hesperidin, and naringin treatment, recorded amelioration in most biochemical, genetic, and spermatogenesis disturbances Also, histological Investigations were improved."( Chromosomal aberrations, DNA damage, and biochemical disturbances induced by silver nanoparticles in mice: role of particle size and natural compounds treatment.
Aboul Naser, AF; Ahmed, YR; Ali, SA; Farghaly, AA; Gooda, SM; Hamed, MA; Khalil, WKB; Rizk, MZ; Younis, EA, 2022
)
2.16
"Hesperidin treatment partly alleviated PBDE-209-induced histopathological lesions and apoptosis in mice testis."( Hesperidin partly ameliorates the decabromodiphenyl ether-induced reproductive toxicity in pubertal mice.
Che, S; Chen, S; Li, S; Ruan, Z; Zhang, L, 2022
)
2.89
"The hesperidin-treated diabetic group showed a marked induction of SOD and GPx enzymes and moderated malondialdehyde level."( Protective role of hesperidin against diabetes induced spleen damage: Mechanism associated with oxidative stress and inflammation.
Hanchang, W; Rojanaverawong, W; Wongmanee, N; Yoopum, S, 2022
)
1.53
"Hesperidin-treated Caco-2 cell monolayers displayed enhanced intestinal barrier integrity, as indicated by an increase in transepithelial electrical resistance (TEER) and a decreased apparent permeability (P"( Hesperidin enhances intestinal barrier function in Caco-2 cell monolayers via AMPK-mediated tight junction-related proteins.
Park, HY; Yu, JH, 2023
)
3.07
"Hesperidin treatment restored these pathologies in Burn+Hesperidin group."( Investigation of the histopathological level of Ki-67, caspase-3 expressions of the effects of hesperidin on wound healing in the rat esophagus.
Deveci, E; Durgun, C; Kirman, G, 2023
)
1.85
"Hesperidin treatment in rats with SCI reduced the neuropathological changes (e.g., hemorrhage, inflammatory cell infiltration, and tissue loss) and pro-inflammatory cytokines including tumor necrotic factor-α and interleukin-1β."( Hesperidin improves motor disability in rat spinal cord injury through anti-inflammatory and antioxidant mechanism via Nrf-2/HO-1 pathway.
Ahn, M; Choi, Y; Ekanayake, P; Heo, SD; Kim, J; Shin, T, 2020
)
2.72
"Hesperidin treatment was also capable to increase striatal levels of dopamine and its metabolite 3,4-dihydroxyphenylacetic acid and protects against the impairment of dopaminergic neurons in the substantia nigra pars compacta (SNpc) (p < 0.05)."( Hesperidin Ameliorates Anxiety-Depressive-Like Behavior in 6-OHDA Model of Parkinson's Disease by Regulating Striatal Cytokine and Neurotrophic Factors Levels and Dopaminergic Innervation Loss in the Striatum of Mice.
Antunes, MS; Araújo, SM; Boeira, SP; Bortolotto, VC; Cattelan Souza, L; Ladd, AABL; Ladd, FVL; Moreira, AL; Nogueira, CW; Prigol, M; Silva, MRP, 2020
)
2.72
"Hesperidin treatment decreased inflammatory mediators and exerted significant antioxidant effects."( Potential Anti-inflammatory Effects of Hesperidin from the Genus Citrus.
Capó, X; Martorell, M; Pinya, S; Pons, A; Sureda, A; Tejada, S; Tur, JA, 2018
)
1.47
"Hesperidin treatment also reduced calpain activation, reactive oxygen species generation and TNF-α gene expression."( The neuroprotective effect of hesperidin in NMDA-induced retinal injury acts by suppressing oxidative stress and excessive calpain activation.
Daigaku, R; Fujita, K; Maekawa, S; Maruyama, K; Moritoh, S; Murayama, N; Nakazawa, T; Nishiguchi, KM; Omodaka, K; Sato, K; Shiga, Y; Tawarayama, H; Yabana, T, 2017
)
1.47
"Hesperidin treatment caused a significant decrease in the levels of TNF‑α, IL‑1β, IL‑6, MCP‑1, ICAM‑1, MDA, CAT, SOD and caspase‑3/9 in mice with AMI."( Preventive effect of hesperidin modulates inflammatory responses and antioxidant status following acute myocardial infarction through the expression of PPAR‑γ and Bcl‑2 in model mice.
Guo, Z; He, J; Li, D; Li, H; Luo, B; Meng, C; Wen, D, 2018
)
1.52
"Hesperidin and nerolidol treatment also improved histological parameters, such as hemorrhage, vascular congestion, necrosis, and inflammatory cell infiltration in the endometriotic foci."( The beneficial effects of nerolidol and hesperidin on surgically induced endometriosis in a rat model
Basak, N; Cetin, A; Ciftci, O; Eraslan, S; Melekoglu, R, 2018
)
1.47
"Hesperidin pretreatment significantly decreased the myocardial infarct size, myocardial damage and serum levels of CK‑MB and cTnI."( Inhibition of autophagy via activation of PI3K/Akt/mTOR pathway contributes to the protection of hesperidin against myocardial ischemia/reperfusion injury.
Hu, X; Jiang, H; Li, X; Ma, R; Wang, J; Xu, W; Yi, C, 2018
)
1.42
"Hesperidin pretreatment decreased the formation of MDA and intracellular ROS, including chondrocyte apoptosis."( Effects of Hesperidin on H₂O₂-Treated Chondrocytes and Cartilage in a Rat Osteoarthritis Model.
Ding, H; Fan, W; Gao, G; Zhuang, C, 2018
)
1.59
"Hesperidin and quercetin treatment resulted in decreased levels of TNF-alpha and increased levels of IL-10."( Flavonoids protect colon against radiation induced colitis.
Acikgoz, B; Aydin, BG; Can, M; Elmas, O; Guven, B; Karakaya, K; Piskin, O, 2019
)
1.24
"Hesperidin treatment reduces the mitochondrial membrane potential of HepG2 and SH-SY5Y cells."( Hesperidin-CAMKIV interaction and its impact on cell proliferation and apoptosis in the human hepatic carcinoma and neuroblastoma cells.
Ahamad, S; Alajmi, MF; Hassan, MI; Hussain, A; Luqman, S; Naz, H; Rehman, MT; Tarique, M, 2019
)
2.68
"Hesperidin pretreatment significantly reduced HI-induced brain tissue loss and improved neurological outcomes as shown in 2,3,5-triphenyltetrazolium chloride monohydrate staining and foot-fault results."( Hesperidin pretreatment protects hypoxia-ischemic brain injury in neonatal rat.
Cao, Y; Liu, D; Pan, R; Rong, Z; Xu, Y; Zhang, C, 2013
)
2.55
"Hesperidin treatment increased IL-12 levels by 72 % and strongly decreased the NO secretion."( Orange juice and hesperidin promote differential innate immune response in macrophages ex vivo.
Borges César, T; de Abreu Ribeiro, LC; Zanotti Simoes Dourado, GK; Zeppone Carlos, I, 2013
)
1.45
"Hesperidin treatment was provided either in initiation/post-initiation mode respectively."( Hesperidin induces apoptosis and triggers autophagic markers through inhibition of Aurora-A mediated phosphoinositide-3-kinase/Akt/mammalian target of rapamycin and glycogen synthase kinase-3 beta signalling cascades in experimental colon carcinogenesis.
Chitra, P; Manikandan, R; Saiprasad, G; Sudhandiran, G, 2014
)
2.57
"Hesperidin pretreatment significantly improved mean arterial pressure, reduced left ventricular end-diastolic pressure, and improved both inotropic and lusitropic function of the heart (+LVdP/dt and -LVdP/dt) as compared to IR-control."( Hesperidin produces cardioprotective activity via PPAR-γ pathway in ischemic heart disease model in diabetic rats.
Agrawal, YO; Arya, DS; Goyal, SN; Ojha, S; Sharma, PK; Shrivastava, B; Upadhya, HM, 2014
)
2.57
"Hesperidin pretreatment improved memory consolidation process as tested by Morris water maze possibly through modulation of acetylcholine esterase activity (AChE)."( Effect of hesperidin on neurobehavioral, neuroinflammation, oxidative stress and lipid alteration in intracerebroventricular streptozotocin induced cognitive impairment in mice.
Ahmed, ME; Islam, F; Javed, H; Khan, A; Safhi, MM; Tabassum, R; Vaibhav, K, 2015
)
1.54
"Hesperidin pretreatment significantly (p < 0.05) reduced circulating endotoxin, as well as the levels of bactericidal permeability increasing protein and procalcitonin, and the associated endothelial dysfunction by reducing the levels of plasma soluble intercellular adhesion molecules 1 and inducible nitric oxide (iNO) synthase. "( Hesperidin prevents lipopolysaccharide-induced endotoxicity in rats.
Adelani, IB; Bankole, GE; Rotimi, OA; Rotimi, SO, 2016
)
3.32
"Hesperidin pretreatment has been shown to protect against myocardial ischemia/reperfusion (I/R) injury, but the underlying mechanism is poorly understood. "( Short-Term Hesperidin Pretreatment Attenuates Rat Myocardial Ischemia/Reperfusion Injury by Inhibiting High Mobility Group Box 1 Protein Expression via the PI3K/Akt Pathway.
Hu, X; Jiang, H; Li, X; Ma, R; Wang, J; Xu, W; Yi, C, 2016
)
2.27
"Hesperidin treatment has significantly attenuated oxidative stress, monoamines alterations and mitochondrial damage in the cerebral hemispheres of irradiated rats."( Hesperidin attenuates brain biochemical changes of irradiated rats.
Abd-Alla, MS; Amin, AM; Elsayed, ME; Saada, HN; Said, UZ, 2012
)
2.54
"Hesperidin treatment effectively protected aged rat heart by increasing the activity of enzymic antioxidants. "( Hesperidin-mediated expression of Nrf2 and upregulation of antioxidant status in senescent rat heart.
Elavarasan, J; Ganesan, T; Periandavan, K; Rajasekaran, D; Ramakrishnan, SK; Velusamy, P, 2012
)
3.26
"Hesperidin treatment significantly suppressed BRB breakdown and increased retina thickness, reduced blood glucose, AR activity and retinal TNF-α, ICAM-1, VEGF, IL-1β and AGEs levels."( Hesperidin prevents retinal and plasma abnormalities in streptozotocin-induced diabetic rats.
Guo, C; Li, F; Liao, S; Mi, H; Qi, D; Shi, X; Yang, Z; Zhang, C, 2012
)
2.54
"Hesperidin treatment significantly attenuated the cisplatin-induced oxidative stress/lipid peroxidation, inflammation (infiltration of leukocytes and pro-inflammatory cytokine), apoptosis/necrosis (caspase-3 activity with DNA damage) as well as increased expression of nitric oxide in the kidney and improved renal function."( Hesperidin attenuates cisplatin-induced acute renal injury by decreasing oxidative stress, inflammation and DNA damage.
Kuncha, M; Sahu, BD; Sindhura, GJ; Sistla, R, 2013
)
2.55
"Hesperidin treatments were provided in the initiation or post-initiation phases."( Hesperidin alleviates oxidative stress and downregulates the expressions of proliferative and inflammatory markers in azoxymethane-induced experimental colon carcinogenesis in mice.
Chitra, P; Manikandan, R; Saiprasad, G; Sudhandiran, G, 2013
)
2.55
"Hesperidin treatments significantly inhibited the number and multiplicities of AOM-induced ACF and tumor incidence. "( Hesperidin alleviates oxidative stress and downregulates the expressions of proliferative and inflammatory markers in azoxymethane-induced experimental colon carcinogenesis in mice.
Chitra, P; Manikandan, R; Saiprasad, G; Sudhandiran, G, 2013
)
3.28
"Hesperidin treatment resulted in a decreased level of all the marker enzymes and the antioxidant status was brought back to near normal."( Antioxidant properties of hesperidin in nicotine-induced lung toxicity.
Balakrishnan, A; Menon, VP, 2007
)
1.36
"4. Hesperidin treatment of HUVEC enhanced NO production, endothelial NO synthase (eNOS) activity and the phosphorylation of eNOS and Akt."( Effects of hesperidin on cyclic strain-induced endothelin-1 release in human umbilical vein endothelial cells.
Chan, P; Cheng, TH; Chiou, CS; Kao, PF; Lin, JW; Liu, JC, 2008
)
1.25
"Pretreatment with hesperidin resulted in less recruitment of inflammatory cells to the airways and less oxidative damage."( Effects in vitro and in vivo of hesperidin administration in an experimental model of acute lung inflammation.
Bezerra, FS; Cangussú, SD; Castro, TF; Costa, GP; de Matos, NA; de Menezes, RCA; de Souza, ABF; Nogueira, KOPC; Oliveira, LAM; Ribeiro, IML; Talvani, A, 2022
)
1.33
"Treatment with hesperidin also ameliorated the altered level of inflammatory mediators and oxidative stress in I/R-induced renal-injured rats."( The protective effect of hesperidin against renal ischemia-reperfusion injury involves the TLR-4/NF-κB/iNOS pathway in rats.
Li, X; Meng, X; Qu, X; Wang, D; Wei, M; Zhang, K; Zhang, N, 2020
)
1.2
"Treatment with hesperidin showed significant upregulation of osteogenic markers, particularly with lower doses."( Hesperidin Promotes Osteogenesis and Modulates Collagen Matrix Organization and Mineralization In Vitro and In Vivo.
Barton, ER; Belcher, J; de Paiva Gonҫalves, V; Hanifi, A; Jongwattanapisan, P; Miguez, PA; Perley, K; Pleshko, N; Robinson, AG; Tuin, SA, 2021
)
2.4
"Pretreatment with hesperidin at a dose of 80 mg/kg orally per day for 21 days, minimized the increase in pleural exudate volume and leucocyte count and modulated the activities of MPO, SOD and CAT, as well as the levels of ROS, NPSH and TBARS in carrageenan-induced rats."( Hesperidin attenuates inflammation and oxidative damage in pleural exudates and liver of rat model of pleurisy.
Adefegha, SA; Castilhos, LG; Oboh, G; Olabiyi, AA; Rosa Leal, DB, 2017
)
2.23
"Treating with hesperidin, whether in low or high dose, attenuated these changes (P<0.05), especially in high dose group(P<0.05)."( [Protection mechanisms of hesperidin on mouse with insulin resistance].
Pu, P, 2016
)
1.08
"Treated with hesperidin, high glucose-induced increase in ROS, malondialdehyde, and protein carbonyl levels were blocked in RGC-5 cells."( Protective Effects of Hesperidin (Citrus Flavonone) on High Glucose Induced Oxidative Stress and Apoptosis in a Cellular Model for Diabetic Retinopathy.
Hong, TY; Liou, SS; Liu, IM; Liu, WY, 2017
)
1.12
"Treatment with hesperidin attenuated the expression of caspase-3, Bcl-2, TLR4, Hsp70, and MyD88 protein in the lung tissue of CLP-induced lung injury mice."( Protective Effect of Hesperidin Against Sepsis-Induced Lung Injury by Inducing the Heat-Stable Protein 70 (Hsp70)/Toll-Like Receptor 4 (TLR4)/ Myeloid Differentiation Primary Response 88 (MyD88) Pathway.
Guo, D; He, X; Kang, Q; Yuan, X; Zhu, J, 2019
)
1.17
"The treatment with hesperidin at 3 and 10 mg/kg, once a day, by seven days, accelerated by 34 and 62%, respectively, the ulcer healing process when compared to vehicle-treated group (99.1 ± 6.4 mm"( Hesperidin, a citrus flavanone glycoside, accelerates the gastric healing process of acetic acid-induced ulcer in rats.
Boeing, T; Bolda Mariano, LN; Cechinel-Filho, V; da Silva, LM; de Andrade, SF; de Souza, P; Dos Santos, AC; Longo, B; Mariott, M; Pezzini, BC; Somensi, LB, 2019
)
2.28
"Treatment with hesperidin enhanced the serum levels of glutathione peroxidase (GPx) and superoxide dismutase (SOD) enzymes and decreased the heightened concentrations of malondialdehyde (MDA) in testicular tissue (p < 0.001)."( Hesperidin attenuated apoptotic-related genes in testicle of a male rat model of varicocoele.
Abtahi-Eivary, SH; Khaki, A; Khaki, AA; Moghimian, M; Shokoohi, M; Shoorei, H, 2020
)
2.34
"Rats treated with hesperidin (50 and 100 mg/kg, p.o., 4 weeks) significantly reduced (p < 0.05) hyperglycemia and its metabolic abnormalities induced by intraperitoneal administration of STZ. "( Hesperidin, a flavanoglycone attenuates experimental diabetic neuropathy via modulation of cellular and biochemical marker to improve nerve functions.
Bodhankar, SL; Chakravarty, S; Ghosh, P; Kandhare, AD; Visnagri, A, 2014
)
2.18
"Treatment with hesperidin (100 or 200 mg/kg) successfully ameliorated the deleterious effects of dimethylnitrosamine on all tested parameters."( Antifibrotic activity of hesperidin against dimethylnitrosamine-induced liver fibrosis in rats.
Elshazly, SM; Mahmoud, AA, 2014
)
1.05
"Pretreatment with hesperidin (in group III) alleviated lung morphological changes noticed in I/R group and the levels of MDA and MPO were significantly decreased whereas those of GSH were significantly increased."( Protective effect of hesperidin against lung injury induced by intestinal ischemia/reperfusion in adult albino rats: histological, immunohistochemical and biochemical study.
Abdelaziz, EZ; Bayomy, NA; ElBakary, RH; Elshafhey, SH, 2014
)
1.04
"Pretreatment of hesperidin (100 and 200mg/kg body weight orally once daily for 15 days) to Swiss male albino mice has prevented the cognitive impairment."( Effect of hesperidin on neurobehavioral, neuroinflammation, oxidative stress and lipid alteration in intracerebroventricular streptozotocin induced cognitive impairment in mice.
Ahmed, ME; Islam, F; Javed, H; Khan, A; Safhi, MM; Tabassum, R; Vaibhav, K, 2015
)
1.15
"Pre-treatment with hesperidin (25, 50, 100 mg/kg) for 7 days prevented these abnormalities induced by LPS injection."( Hesperidin Alleviates Lipopolysaccharide-Induced Neuroinflammation in Mice by Promoting the miRNA-132 Pathway.
Li, M; Qin, B; Shao, H; Zhang, X, 2016
)
2.2
"Treatment with hesperidin, similar to imipramine, was effective in preventing these behavioral and neurochemical alterations."( Hesperidin reverses cognitive and depressive disturbances induced by olfactory bulbectomy in mice by modulating hippocampal neurotrophins and cytokine levels and acetylcholinesterase activity.
Altvater, EET; Antunes, MS; Boeira, SP; de Oliveira Espinosa, D; Donato, F; Giacomeli, R; Gomes, NS; Jesse, CR; Ruff, JR, 2016
)
2.22
"Treatment with hesperidin showed a significant increase in tissue nitrite, antioxidant level and reduction in inflammation, arrhythmias and apoptosis."( Protection against in vivo focal myocardial ischemia/reperfusion injury-induced arrhythmias and apoptosis by hesperidin.
Balaraman, R; Gandhi, C; Upaganalawar, A, 2009
)
0.9
"Treatment with hesperidin (50 and 100 mg/kg, p.o.) for 7 days was found to offer significant protection against γ-radiation-induced toxicity in the tissues, which was evident by the improved status of most of the parameters investigated."( Protective effect of hesperidin, a citrus flavanoglycone, against γ-radiation-induced tissue damage in Sprague-Dawley rats.
Choi, MH; Chung, YJ; Kang, JA; Ko, KC; Park, SH; Pradeep, K, 2012
)
1.04
"Pretreatment with hesperidin (100 mg/kg) ahead of 3-NP prevented any changes of locomotor activity or PPI response, slightly increased cortical, striatal and hippocampal MDA levels by 10% and reduced respective catalase activity by 22%, 20% and 5%."( Potential neuroprotective effects of hesperidin on 3-nitropropionic acid-induced neurotoxicity in rats.
Abdel-Tawab, AM; Khalifa, AE; Menze, ET; Tadros, MG, 2012
)
0.98
"Treatment with hesperidin suppressed production of PGE2, nitrogen dioxide (NO2), and expression of iNOS protein."( Inhibition of inducible isoforms of cyclooxygenase and nitric oxide synthase by flavonoid hesperidin in mouse macrophage cell line.
Hirose, Y; Mori, H; Qiao, Z; Sakata, K; Tanaka, T, 2003
)
0.88
"On treatment with hesperidin we found the down regulation of expression of MMPs and enhancement in antioxidant status."( Effect of hesperidin on matrix metalloproteinases and antioxidant status during nicotine-induced toxicity.
Balakrishnan, A; Menon, VP, 2007
)
1.07

Toxicity

Methyl hesperidin exerts no obvious toxic effects in mice of either sex when administered at a level as high as 5. Albiflorin, aloeemodin and neohes peridin reduced the toxicity and ROS induced by both monomeric and oligomeric Aβ species.

ExcerptReferenceRelevance
" In animal studies, the safety of Daflon 500 mg is shown by an LD50 (lethal dose 50) of more than 3 g/kg, ie, 180 times the daily therapeutic dose, as well as by the absence of any toxic effect after repeated oral dosing for thirteen and twenty-six weeks, using a dose representing 35 times the daily dosage, in the rate and primate."( Safety and security of Daflon 500 mg in venous insufficiency and in hemorrhoidal disease.
Meyer, OC, 1994
)
0.29
"The objective of the present work was to evaluate the toxic effects of sodium arsenite, As(III), in mice and the protective effect of 2 antioxidants, hesperidin and lipoic acid, against the observed As(III)-induced toxicity."( Protective activity of hesperidin and lipoic acid against sodium arsenite acute toxicity in mice.
Carvalho, F; Carvalho, M; das Neves, RN; de Bastos, ML; de Pereira, ML; Fernandes, E; Soares, E,
)
0.64
"Our results suggested that HDN acts as a potent scavenger of free radicals in the kidney to prevent the toxic effects of GEN both at the biochemical and histopathological levels."( Renal protective effect of hesperidin on gentamicin-induced acute nephrotoxicity in male Wistar albino rats.
Anandan, R; Subramanian, P, 2012
)
0.68
" In conclusion, it was shown that TCDD caused adverse effects as regards cytokine levels, histological alterations and oxidative stress in rats."( Oral administration of hesperidin, a citrus flavonone, in rats counteracts the oxidative stress, the inflammatory cytokine production, and the hepatotoxicity induced by the ingestion of 2,3,7,8-tetrachlorodibenzo-p-dioxin (TCDD).
Basak, N; Bentli, R; Cay, M; Cetin, A; Ciftci, O; Unlu, M, 2013
)
0.7
" Further, a parallel increase in abnormal sperm morphology and adverse histopathological changes in testis was also associated with vanadium administration when compared to normal control."( Protective effect of alpha glucosyl hesperidin (G-hesperidin) on chronic vanadium induced testicular toxicity and sperm nuclear DNA damage in male Sprague Dawley rats.
Annapurna, A; Jaya Prakash, G; Krishna, KM; Madan, K; Rama Raju, GA; Ravi Krishna, CH; Sivanarayana, T; Vijaya Bharathi, B, 2015
)
0.69
"Carbon tetrachloride (CCl4) is a highly toxic industrial solvent with pronounced systemic toxicity including brain."( Hesperidin restores experimentally induced neurotoxicity in Wistar rats.
Naseem, M; Parvez, S, 2014
)
1.85
"CP had severe dose-limiting toxic effects and HP treatment can be beneficial against the toxic ocular effects of CP."( Toxic effects of systemic cisplatin on rat eyes and the protective effect of hesperidin against this toxicity.
Cetin, A; Ciftci, O; Polat, N; Yılmaz, T, 2016
)
0.66
" It was interesting to find that physcion was rather toxic to neuronal cells while albiflorin, aloeemodin and neohesperidin reduced the toxicity and ROS induced by both monomeric and oligomeric Aβ species."( Inhibition of β-amyloid Aggregation By Albiflorin, Aloeemodin And Neohesperidin And Their Neuroprotective Effect On Primary Hippocampal Cells Against β-amyloid Induced Toxicity.
Bian, Z; Ho, SL; Kwong, DW; Li, HW; Lin, C; Poon, CY; Wong, MS; Yan, T; Yung, KK, 2015
)
0.86
"Mounting evidence suggests that long-term aluminum exposure results in severe toxic effects, including neurobehavioral and neurochemical anomalies."( Hesperidin and Silibinin Ameliorate Aluminum-Induced Neurotoxicity: Modulation of Antioxidants and Inflammatory Cytokines Level in Mice Hippocampus.
Bezbaruah, BK; Dwivedi, S; Gogoi, R; Gurjar, SS; Jangra, A; Kasbe, P; Kwatra, M; Lahkar, M; Mishra, M; Pandey, SN; Sarma, N; Sulakhiya, K; Venu, AK, 2015
)
1.86
" On the basis of these experimental findings our present study postulate that co-administration of hesperetin with cisplatin chemotherapy may be promising preventive approach to limit the major mortal side effect of cisplatin."( The renoprotective activity of hesperetin in cisplatin induced nephrotoxicity in rats: Molecular and biochemical evidence.
Bodduluru, LN; Dahiya, V; Kasala, ER; Kumar, M; Lahkar, M, 2017
)
0.46
" Any substances that can mitigate the toxic effects of BV are of great importance in surgical procedures and pain management."( Hesperidin alleviates bupivacaine anesthesia-induced neurotoxicity in SH-SY5Y cells by regulating apoptosis and oxidative damage.
Wang, T; Zhang, W; Zheng, L, 2021
)
2.06
" The current research was conducted to study the neurobehavioral toxic effects of EMB in rats and also to evaluate the protective effect of HSP against these toxic effects."( Neuroprotective effect of hesperidin against emamectin benzoate-induced neurobehavioral toxicity in rats.
Azouz, RA; Noshy, PA,
)
0.43
"High dose of fluoride intake is associated with toxic effects on liver and kidney tissues."( Hesperidin protects liver and kidney against sodium fluoride-induced toxicity through anti-apoptotic and anti-autophagic mechanisms.
Ayna, A; Caglayan, C; Darendelioğlu, E; Kandemir, FM; Küçükler, S, 2021
)
2.06
" EMPA and NHD can constrain oxidative stress liberation, inflammatory mediators proliferation, and apoptotic reactions in the renal tissue, which may be promising for further clinical applications to protect against MTX-induced renal injury or at least to reduce its adverse effects."( Empagliflozin and neohesperidin protect against methotrexate-induced renal toxicity via suppression of oxidative stress and inflammation in male rats.
Abo-Youssef, AM; Hassan, MIA; Hemeida, RAM; Osman, AT; Sharkawi, SMZ, 2021
)
0.94
"Clinical utilization of doxorubicin (DOX), which is a commonly used chemotherapeutic, is restricted due to toxic effects on various tissues."( The therapeutic effect of hesperetin on doxorubicin-induced testicular toxicity: Potential roles of the mechanistic target of rapamycin kinase (mTOR) and dynamin-related protein 1 (DRP1).
Güzel, EE; Tektemur, A; Tektemur, NK, 2022
)
0.72
"Fluoride is an element with toxic properties and has been proven to have some adverse effects on many soft tissues, including brain tissue."( Neuromodulatory effects of hesperidin against sodium fluoride-induced neurotoxicity in rats: Involvement of neuroinflammation, endoplasmic reticulum stress, apoptosis and autophagy.
Bayav, İ; Caglayan, C; Çelik, H; Genç, A; Gür, C; Kandemir, FM; Kandemir, Ö; Yıldız, MO, 2022
)
1.02
" Presently, the studies focusing on the toxic effects of sodium fluoride (NaF) on heart tissue at biochemical and molecular level are limited."( Hesperidin Attenuates Oxidative Stress, Inflammation, Apoptosis, and Cardiac Dysfunction in Sodium Fluoride-Induced Cardiotoxicity in Rats.
Ayna, A; Caglayan, C; Darendelioğlu, E; Genç, A; Kandemir, FM; Kandemir, Ö; Varışlı, B, 2022
)
2.16
" We determined that BPA administration causes apoptosis, histological damage, inflammation, oxidative stress and toxic effects on spermatogenesis and steroidogenic enzymes in testicles."( Investigation of the effect of hesperidin on some reproductive parameters in testicular toxicity induced by Bisphenol A.
Çelebi, F; Tekin, S, 2022
)
1.01
" 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
" Previous studies have shown the promising role of hesperidin (HSP) as an antioxidant agent against various models of toxic agents."( Protective effects of hesperidin in cyclophosphamide-induced parotid toxicity in rats.
Borai, E; Ibrahim, F; Mostafa, OAA, 2023
)
1.48
" However, its therapeutic application is restricted by its adverse effects, particularly hepatotoxicity."( Combination of metformin and hesperidin mitigates cyclophosphamide-induced hepatotoxicity. Emerging role of PPAR-γ/Nrf-2/NF-κB signaling pathway.
El-Beheiry, KM; El-Masry, TA; El-Sayed El-Sayad, M; Elsisi, AE, 2023
)
1.2
"Paclitaxel (PTX) is widely used to treat a number of malignancies, although it has toxic side effects."( Hesperidin has a protective effect on paclitaxel-induced testicular toxicity through regulating oxidative stress, apoptosis, inflammation and endoplasmic reticulum stress.
Akaras, N; Genc, A; Ileriturk, M; Kandemir, FM; Kandemir, O; Simsek, H, 2023
)
2.35
" The addition of dietary polyphenols did not increase adverse events."( Efficacy and safety of dietary polyphenols in rheumatoid arthritis: A systematic review and meta-analysis of 47 randomized controlled trials.
Chen, Y; Deng, Y; Guo, H; He, Q; Huang, Z; Li, H; Long, Z; Wei, H; Xiang, W; Xiao, W; Yang, K; Yuan, M; Yuan, X; Zeng, L, 2023
)
0.91

Pharmacokinetics

The levels of aloe-emodin, rhein and emodin in rat serum were quantified using a liquid chromatography tandem mass spectrometry (LC-MS/MS) method. The results showed that pharmacokinetic differences between non-antibiotic-exposed and pseudo-germ-free rats may be attributed to differing hesperidin uptake.

ExcerptReferenceRelevance
" Therefore, the objective of the present investigation was the evaluation of the pharmacokinetic parameters of hesperetin and naringenin in plasma and urine, after their single oral administration in humans in the form of solid dispersion capsules, and also to improve the absorption rate of flavanones by using aglycones rather than the naturally occurring glycosides."( Pharmacokinetics of the citrus flavanone aglycones hesperetin and naringenin after single oral administration in human subjects.
Bounartzi, MI; Georgarakis, M; Kanaze, FI; Niopas, I, 2007
)
0.34
" Pharmacokinetic parameters for hesperetin and naringenin, such as C(max), T(max), AUC(0-t), AUC(0-infinity), CL/F, V/F, t(1/2), MRT, A(e), A(e)((0-24)), and R(max) were calculated from their plasma or urine concentrations."( Pharmacokinetics of the citrus flavanone aglycones hesperetin and naringenin after single oral administration in human subjects.
Bounartzi, MI; Georgarakis, M; Kanaze, FI; Niopas, I, 2007
)
0.34
"A simple and specific high-performance liquid chromatographic (HPLC) method was developed for the pharmacokinetic study of vitexin-2''-O-rhamnoside (VOR) in rat after intravenous administration."( High-performance liquid chromatographic determination and pharmacokinetic study of vitexin-2''-O-rhamnoside in rat plasma after intravenous administration.
Bi, Y; Gao, S; Li, F; Li, X; Qin, F; Ying, X; Zhu, W, 2007
)
0.34
"The majority of pharmacokinetic studies of individual flavonoids or after ingestion of foodstuffs have overlooked the chirality of some of these xenobiotics."( Pharmacokinetics of selected chiral flavonoids: hesperetin, naringenin and eriodictyol in rats and their content in fruit juices.
Andrews, PK; Davies, NM; Miranda, ND; Remsberg, CM; Vega-Villa, KR; Yáñez, JA, 2008
)
0.35
"Compared with the control group (given diltiazem alone), hesperidin (5 or 15 mg/kg) significantly altered the pharmacokinetic parameters of diltiazem, except for 1 mg/kg hesperidin."( Effect of hesperidin on the oral pharmacokinetics of diltiazem and its main metabolite, desacetyldiltiazem, in rats.
Cho, YA; Choi, DH; Choi, JS, 2009
)
1
" To overcome this limitation, a phospholipid complex of hesperetin was prepared and evaluated for antioxidant activity and pharmacokinetic profile."( Exploring the effect of Hesperetin-HSPC complex--a novel drug delivery system on the in vitro release, therapeutic efficacy and pharmacokinetics.
Maiti, K; Mukherjee, K; Mukherjee, PK; Murugan, V; Saha, BP, 2009
)
0.35
"SAP can significantly impact the absorption of DCQD components in rats and their pharmacokinetic parameters."( Effect of severe acute pancreatitis on pharmacokinetics of Da-Cheng-Qi Decoction components.
Chen, GY; Gong, HL; Huang, X; Liang, MZ; Tang, WF; Xia, Q; Xiang, J; Yu, Q, 2009
)
0.35
" Naringenin and hesperetin were detected in plasma by RP-HPLC, pharmacokinetic parameters were processed using mode-independent methods with WINNONLIN."( Pharmacokinetics-based elucidation on disparity in clinical effectiveness between varieties of Zhi Zhu Wan, a Traditional Chinese Medical formula.
Cao, H; Chen, X; Lv, H; Sakurai, T; Sun, H; Sun, W; Wang, X; Zhou, J, 2010
)
0.36
"After oral administration of BZZW, both naringenin and hesperetin were detected in plasma, and demonstrated similar pharmacokinetic parameters."( Pharmacokinetics-based elucidation on disparity in clinical effectiveness between varieties of Zhi Zhu Wan, a Traditional Chinese Medical formula.
Cao, H; Chen, X; Lv, H; Sakurai, T; Sun, H; Sun, W; Wang, X; Zhou, J, 2010
)
0.36
"The distinct therapeutic orientations of the Chinese medical formula ZZWs with different Fructus Citrus Immaturus could be elucidated based on the pharmacokinetic parameters of constituents after oral administration."( Pharmacokinetics-based elucidation on disparity in clinical effectiveness between varieties of Zhi Zhu Wan, a Traditional Chinese Medical formula.
Cao, H; Chen, X; Lv, H; Sakurai, T; Sun, H; Sun, W; Wang, X; Zhou, J, 2010
)
0.36
" Taken together, these results showed that pharmacokinetic differences between non-antibiotic-exposed and pseudo-germ-free rats may be attributed to differing hesperidin uptake, as well as alterations in metabolic activities of intestinal flora."( Effects of gut microflora on pharmacokinetics of hesperidin: a study on non-antibiotic and pseudo-germ-free rats.
Han, SB; Jin, MJ; Kim, DH; Kim, IS; Kim, U; Kim, Y; Kwon, OS; Yoo, HH, 2010
)
0.81
" Additionally, α half-life, β half-life, (a)CL, MRT(0→t ), MRT(0→∞ ), and terminal half-life of VOG in rats showed significant differences between 20 mg/kg and other doses."( Pharmacokinetics of vitexin-4″-O-glucoside in rats after intravenous application.
Cheng, ZZ; Du, Y; Kang, TG; Li, HB; Liu, X; Wang, F; Wang, SY; Ying, XX; Zhang, WJ, 2012
)
0.38
" The validated method was suitable to the pharmacokinetic study of HP, FA and CA in rats after oral administration at a single dose of POE."( LC determination and pharmacokinetic study of the main phenolic components of Portulaca oleracea L. extract in rat plasma after oral administration.
Cheng, Z; Du, Y; Kang, T; Wang, D; Wang, Y; Ying, X; Zhai, Y; Zhang, W, 2012
)
0.38
" The levels of aloe-emodin, rhein, emodin, chrysophanol, honokiol, magnolol, hesperidin, and naringin in rat serum were quantified using a liquid chromatography tandem mass spectrometry (LC-MS/MS) method for pharmacokinetic study."( Effect of formula compatibility on the pharmacokinetics of components from Dachengqi Decoction [See Text] in rats.
Chen, GY; Gong, HL; Huang, X; Tang, WF; Wang, J, 2012
)
0.61
"The area under the curve (AUC), mean retention time (MRT), the peak concentration (C(max)) of aloe-emodin, rhein, emodin, and chrysophanol in the DCQD group were significantly different compared with the Dahuang group (P <0."( Effect of formula compatibility on the pharmacokinetics of components from Dachengqi Decoction [See Text] in rats.
Chen, GY; Gong, HL; Huang, X; Tang, WF; Wang, J, 2012
)
0.38
"The compatibility in Chinese medicine could affect the drug's pharmacokinetics in DCQD, which proves that the prescription compatibility principle of Chinese medicine formulations has its own pharmacokinetic basis."( Effect of formula compatibility on the pharmacokinetics of components from Dachengqi Decoction [See Text] in rats.
Chen, GY; Gong, HL; Huang, X; Tang, WF; Wang, J, 2012
)
0.38
" With pharmacokinetic analysis, the estimated pharmacokinetic parameters (i."( Pharmacokinetics of hesperetin and naringenin in the Zhi Zhu Wan, a traditional Chinese medicinal formulae, and its pharmacodynamics study.
Dong, T; Han, Y; Sakurai, T; Sun, H; Wang, X; Wu, X; Yan, G; Yang, J; Zhang, A, 2013
)
0.39
" Here we determine the pharmacokinetic characteristics of the four most abundant compounds in DCQD using a rat model of severe acute pancreatitis."( Pharmacokinetic and pharmacodynamic studies of four major phytochemical components of Da-Cheng-Qi decoction to treat acute pancreatitis.
Chen, G; Gong, H; Tang, W; Wang, J; Xiang, J; Zhao, J, 2013
)
0.39
" This developed method is successfully used in the pharmacokinetic and tissue distribution study of NHDC in rats."( Application of a liquid chromatography-tandem mass spectrometry method to the pharmacokinetics, bioavailability and tissue distribution of neohesperidin dihydrochalcone in rats.
Jianshe, M; Pan, Y; Shi, S; Wang, X; Xiang, Z; Zheng, X, 2014
)
0.6
"0 software was applied to calculate the pharmacokinetic parameters while the SPSS 16."( [Effect of different compatibility of zhizi dahuang decoction on pharmacokinetics of naringenin and hesperetin].
Feng, F; Liu, XY, 2014
)
0.4
" Furthermore, a randomized, open-label, three-arm, three-period, crossover study using 21 subjects was conducted to determine the amounts of exposure and pharmacokinetic parameters of nine ingredients derived from rikkunshito (atractylodin, atractylodin carboxylic acid, pachymic acid, 3,3',4',5,6,7,8-heptamethoxyflavone, naringenin, nobiletin, liquiritigenin, isoliquiritigenin, and 18β-glycyrrhetinic acid) after oral administration of rikkunshito at three different doses (2."( Pharmacokinetic Profiles of Active Ingredients and Its Metabolites Derived from Rikkunshito, a Ghrelin Enhancer, in Healthy Japanese Volunteers: A Cross-Over, Randomized Study.
Aoki, K; Fukutake, M; Hanazaki, K; Hattori, T; Inui, A; Kase, Y; Kitagawa, H; Maemura, K; Matsumoto, T; Munekage, M; Sadakane, C; Uezono, Y; Watanabe, J, 2015
)
0.42
" This method has been successfully applied to the pharmacokinetic study following oral doses of 25, 50 and 100mg/kg and intravenous dose of 25mg/kg, and tissue distribution study following oral dose of 50mg/kg."( A HPLC-MS/MS method for the quantitation of free, conjugated, and total HDND-7, a novel hesperetin derivative, in rat plasma and tissues: Application to the pharmacokinetic and tissue distribution study.
Chen, R; Chen, Z; Huang, C; Huang, X; Li, J; Li, L; Ma, T; Meng, X; Qian, Z; Shen, C; Zang, H, 2016
)
0.43
" To reveal the interactions of Saposhnikoviae Radix with other herbs, we conducted this study on the pharmacokinetic profile and tissue distribution of active ingredients of TXYF in rats."( [Effect of Saposhnikoviae Radix on pharmacokinetics and tissue distributions of active components in Tongxie Yaofang in rats].
Cui, WF; Ge, WJ; Li, GS; Liang, RF; Liu, X; Wei, Z; Zhang, XX, 2017
)
0.46
" In the present study efforts were given to develop and validate a bioanalytical method for simultaneous estimation of diosmetin and hesperitin in human plasma by liquid chromatography electron spray ionization mass spectrometry with an application to the analysis of plasma samples obtained from the comparative pharmacokinetic studies on healthy human volunteers under the framework of bioequivalence study."( Simultaneous Determination and Quantitation of Diosmetin and Hesperetin in Human Plasma by Liquid Chromatographic Mass Spectrometry With an Application to Pharmacokinetic Studies.
Chakraborty, S; Dan, S; Ghosh, B; Khanam, J; Mandal, P; Pal, TK; Saha, C, 2019
)
0.51
"Hesperetin has antihyperuricemia activity, and the pharmacokinetic profiles of hesperetin may be altered by hyperuricemia."( Comparative Pharmacokinetic Study of Hesperetin after Oral Administration in Normal and Hyperuricemia Rats by UPLC-MS/MS.
Han, W; Han, Z; Li, K; Liu, X; Pan, Y; Wei, L; Xiong, H; Zhang, F; Zhao, D, 2021
)
0.62
"57% decreases in Cmax and CL/F, and resulted in 58."( Comparative Pharmacokinetic Study of Hesperetin after Oral Administration in Normal and Hyperuricemia Rats by UPLC-MS/MS.
Han, W; Han, Z; Li, K; Liu, X; Pan, Y; Wei, L; Xiong, H; Zhang, F; Zhao, D, 2021
)
0.62
"The pharmacokinetic parameters of hesperetin in hyperuricemia rats were reported for the first time."( Comparative Pharmacokinetic Study of Hesperetin after Oral Administration in Normal and Hyperuricemia Rats by UPLC-MS/MS.
Han, W; Han, Z; Li, K; Liu, X; Pan, Y; Wei, L; Xiong, H; Zhang, F; Zhao, D, 2021
)
0.62
" This methodology was applied to compare the pharmacokinetic parameters for the administration of hesperidin and naringenin in individual form or in the form of a mixture."( Development and Optimization of a High Sensitivity LC-MS/MS Method for the Determination of Hesperidin and Naringenin in Rat Plasma: Pharmacokinetic Approach.
Araujo-León, JA; Cantillo-Ciau, Z; Coral-Martínez, TI; Oney-Montalvo, JE; Ortiz-Andrade, R; Vera-Sánchez, RA, 2020
)
1

Compound-Compound Interactions

ExcerptReferenceRelevance
" In this study, we established a melanogenesis regulation assay system using a fluorescent protein reporter combined with the promoters for the microphthalmia-associated transcription factor (MITF), tyrosinase (Tyr) and dopachrome tautomerase (Dct) genes in MeWo human melanoma cells."( Establishment of a melanogenesis regulation assay system using a fluorescent protein reporter combined with the promoters for the melanogenesis-related genes in human melanoma cells.
Chen, CY; Chiu, YW; Lin, CC; Lin, YJ; Yang, CH, 2015
)
0.42
"A flow-injection mass spectrometric metabolic fingerprinting method in combination with chemometrics was used to differentiate Aurantii Fructus Immaturus from its counterfeit Poniciri Trifoliatae Fructus Immaturus."( Differentiation of Aurantii Fructus Immaturus from Poniciri Trifoliatae Fructus Immaturus using flow-injection mass spectrometric (FIMS) metabolic fingerprinting method combined with chemometrics.
Chang, YS; Chen, P; Zhao, Y, 2015
)
0.42
" The present study was designed to investigate the possible protective effects of diethylcarbamazine (DEC) (50mg/kg, acting as an anti-inflammatory drug, interferes with the arachidonic acid metabolism) when administrated in combination with hesperidin (HDN) (200mg/kg, a flavanone glycoside with potent antioxidant and anti-inflammatory activities) against alcoholic liver fibrosis in wistar rats compared to silymarin (Sil) (100mg/kg)."( Antifibrotic effect of diethylcarbamazine combined with hesperidin against ethanol induced liver fibrosis in rats.
El-Sisi, AEE; Mohamed, DZ; Shebl, AM; Sokar, SS, 2017
)
0.88
"The present study aimed to develop a strategy involving quantitative analysis of multicomponents by single marker in combination with high-performance liquid chromatography fingerprint qualitative analysis for performing the quality control of Aurantii Fructus."( Quantitative analysis of multicomponents by single marker combined with HPLC fingerprint qualitative analyses for comprehensive evaluation of Aurantii Fructus.
Cai, X; Huang, D; Lei, Y; Lin, M; Luo, K; Sun, Z; Tan, S; Wang, Y; Xia, X; Yan, J; Zhang, Y, 2020
)
0.56
" The purpose of this study is to investigate the effects of phytochemicals combined with diet types on breast cancer metastasis."( Effects of dietary patterns combined with dietary phytochemicals on breast cancer metastasis.
Gao, J; Guo, W; Jia, M; Liu, X; Pang, S; Zhang, H, 2021
)
0.62

Bioavailability

Hesperidin is proposed to have limited bioavailability due to the rutinoside moiety attached to the flavonoid. This is a response to the circumvention of restrictions in the use of hesperidins due to its poor bioavailability.

ExcerptReferenceRelevance
" The blood profiles for both administration routes, demonstrated that the bioavailability of the active principle was good."( Absorption and elimination of (14C) hesperidin methylchalcone in the rat.
Bonnaud, B; Chanal, JL; Cousse, H; Marignan, R; Sicart, MT, 1981
)
0.54
" Cumulative urinary recovery indicated low bioavailability ( < 25%) of naringin and hesperidin."( Flavanone absorption after naringin, hesperidin, and citrus administration.
Ameer, B; Johnson, JV; Rouseff, RL; Weintraub, RA; Yost, RA, 1996
)
0.79
" Naringenin and hesperetin were bioavailable from the studied juices, but interindividual variation in bioavailability was remarkable."( Plasma kinetics and urinary excretion of the flavanones naringenin and hesperetin in humans after ingestion of orange juice and grapefruit juice.
Alfthan, G; Aro, A; Erlund, I; Meririnne, E, 2001
)
0.31
" Although citrus fruits and juices are widely consumed in the world, little information has been published on flavanone bioavailability in humans."( Bioavailability in humans of the flavanones hesperidin and narirutin after the ingestion of two doses of orange juice.
Bouteloup-Demange, C; Gil-Izquierdo, A; Manach, C; Morand, C; Rémésy, C, 2003
)
0.58
" Moreover, data suggest that a high polyphenol intake may improve their bioavailability due to saturation of the intestinal secretion of conjugates."( The bioavailability of polyphenols is highly governed by the capacity of the intestine and of the liver to secrete conjugated metabolites.
Besson, C; Manach, C; Mathevon, T; Morand, C; Remesy, C; Scalbert, A; Silberberg, M, 2006
)
0.33
" However, hesperidin is proposed to have limited bioavailability due to the rutinoside moiety attached to the flavonoid."( Bioavailability is improved by enzymatic modification of the citrus flavonoid hesperidin in humans: a randomized, double-blind, crossover trial.
Barron, D; Chee, WS; Enslen, M; Frederiksen, H; Horcajada, MN; Nielsen, IL; Offord-Cavin, E; Poulsen, L; Rasmussen, SE; Williamson, G, 2006
)
0.96
" Therefore, the objective of the present investigation was the evaluation of the pharmacokinetic parameters of hesperetin and naringenin in plasma and urine, after their single oral administration in humans in the form of solid dispersion capsules, and also to improve the absorption rate of flavanones by using aglycones rather than the naturally occurring glycosides."( Pharmacokinetics of the citrus flavanone aglycones hesperetin and naringenin after single oral administration in human subjects.
Bounartzi, MI; Georgarakis, M; Kanaze, FI; Niopas, I, 2007
)
0.34
" The cumulative urinary recovery data indicated low bioavailability for both flavanone aglycones, owing to extensive first-pass metabolism partly by cleavage of the C-ring by the enzymes of intestinal bacteria leading to degradation products such as phenolic acids."( Pharmacokinetics of the citrus flavanone aglycones hesperetin and naringenin after single oral administration in human subjects.
Bounartzi, MI; Georgarakis, M; Kanaze, FI; Niopas, I, 2007
)
0.34
"We showed previously that grapefruit and orange juices inhibited human enteric organic anion-transporting polypeptide (OATP)1A2 in vitro and lowered oral fexofenadine bioavailability clinically."( Naringin is a major and selective clinical inhibitor of organic anion-transporting polypeptide 1A2 (OATP1A2) in grapefruit juice.
Bailey, DG; Dresser, GK; Kim, RB; Leake, BF, 2007
)
0.34
" Consequently hesperidin significantly enhanced bioavailability of verapamil in rats."( Enhanced bioavailability of verapamil after oral administration with hesperidin in rats.
Choi, JS; Piao, YJ, 2008
)
0.94
"Metabolism and transport from intestinal cells back into the lumen by ATP-binding cassette (ABC) transporters is believed to limit the bioavailability of flavonoids."( Metabolism and transport of the citrus flavonoid hesperetin in Caco-2 cell monolayers.
Barron, D; Brand, W; Rein, MJ; Rietjens, IM; van Bladeren, PJ; van der Wel, PA; Williamson, G, 2008
)
0.35
" Here, we tested the hypothesis that hesperetin found in chenpi will have a better bioavailability than hesperidin and that treatment of hesperidin with the glucosidase-like yeast Bg1A protein will increase its bioavailability."( In vivo pharmacokinetics of hesperidin are affected by treatment with glucosidase-like BglA protein isolated from yeasts.
Du, WC; Hu, M; Li, GM; Li, WX; Li, XM; Li, YM; Xu, J; Zhang, J; Zhu, Z, 2008
)
0.85
"The bioavailability of dietary phytochemicals may be influenced by the food matrix in which they are consumed."( Bioavailability and metabolism of orange juice flavanones in humans: impact of a full-fat yogurt.
Archeveque, MA; Crozier, A; Edwards, CA; Matsumoto, H; Mullen, W, 2008
)
0.35
" In human subjects, the bioavailability of Hp can be improved by the removal of the rhamnose group to yield hesperetin-7-glucoside (H-7-glc)."( Increased bioavailability of hesperetin-7-glucoside compared with hesperidin results in more efficient prevention of bone loss in adult ovariectomised rats.
Barron, D; Chee, W; Coxam, V; Davicco, MJ; Gil-Izquierdo, A; Habauzit, V; Horcajada, MN; Lebecque, P; Morand, C; Nielsen, IL; Offord, E; Trzeciakiewicz, A; Williamson, G, 2009
)
0.59
" plantarum NCC245 and its two alpha-l-rhamnosidase enzymes, which might be applied for improvement of bioavailability of health-beneficial polyphenols, such as hesperidin, in humans."( Physiological and biochemical characterization of the two alpha-L-rhamnosidases of Lactobacillus plantarum NCC245.
Arigoni, F; Ávila, M; Jankovic, I; Jaquet, M; Moine, D; Peláez, C; Requena, T, 2009
)
0.55
" However, hesperidin is not water-soluble and is not well absorbed from the intestine."( Effect of 4G-alpha-glucopyranosyl hesperidin on brown fat adipose tissue- and cutaneous-sympathetic nerve activity and peripheral body temperature.
Fujisaki, Y; Fuyuki, R; Horii, Y; Kometani, T; Nagai, K; Nakamura, H; Shen, J; Shiraishi, K; Takumi, H; Tanida, M, 2009
)
1.03
"This study was to investigate the effect of hesperidin, an antioxidant, on the bioavailability and pharmacokinetics of diltiazem and its active major metabolite, desacetyldiltiazem, in rats."( Effect of hesperidin on the oral pharmacokinetics of diltiazem and its main metabolite, desacetyldiltiazem, in rats.
Cho, YA; Choi, DH; Choi, JS, 2009
)
1.02
"Hesperidin significantly enhanced the oral bioavailability of diltiazem in rats."( Effect of hesperidin on the oral pharmacokinetics of diltiazem and its main metabolite, desacetyldiltiazem, in rats.
Cho, YA; Choi, DH; Choi, JS, 2009
)
2.2
" Although it shows appreciable bioavailability when administered orally, its faster elimination from body creates the need of frequent administration to maintain effective plasma concentration."( Exploring the effect of Hesperetin-HSPC complex--a novel drug delivery system on the in vitro release, therapeutic efficacy and pharmacokinetics.
Maiti, K; Mukherjee, K; Mukherjee, PK; Murugan, V; Saha, BP, 2009
)
0.35
" The present data show that bioavailability of naringenin is increased by conversion from rutinoside to glucoside, but the profile of the conjugates of flavanones formed and excreted in urine is neither affected by the absorption site nor by a 3-fold change in dose."( Absorption, conjugation and excretion of the flavanones, naringenin and hesperetin from alpha-rhamnosidase-treated orange juice in human subjects.
Barron, D; Bouisset, F; Bredsdorff, L; Cornett, C; Nielsen, IL; Offord, E; Rasmussen, SE; Williamson, G, 2010
)
0.36
"Metabolism by phase II enzymes and transport from intestinal cells back into the lumen by ATP binding cassette (ABC) transporters limits the bioavailability of the flavanone hesperetin, the aglycone of hesperidin."( The effect of co-administered flavonoids on the metabolism of hesperetin and the disposition of its metabolites in Caco-2 cell monolayers.
Brand, W; Padilla, B; Rietjens, IM; van Bladeren, PJ; Williamson, G, 2010
)
0.55
"The bioavailability and urinary excretion of three dietary flavonoids, quercetin, hesperetin and naringenin, were investigated."( Relative bioavailability of the flavonoids quercetin, hesperetin and naringenin given simultaneously through diet.
Bredsdorff, L; Haraldsdóttir, J; Knuthsen, P; Krogholm, KS; Rasmussen, SE, 2010
)
0.36
"The feasibility of alpha-glucosyl hesperidin (Hsp-G) to improve the dissolution and bioavailability of poorly water-soluble drug was investigated."( Improvement of dissolution and absorption properties of poorly water-soluble drug by preparing spray-dried powders with alpha-glucosyl hesperidin.
Imono, M; Takeuchi, H; Tozuka, Y; Uchiyama, H, 2010
)
0.84
" The effect of flavanone concentration and solubility of orange beverages on their bioavailability has been studied in a crossover study with 10 healthy volunteers."( Concentration and solubility of flavanones in orange beverages affect their bioavailability in humans.
Boza, J; Cerdá, B; Escudero, E; Espín, JC; García-Conesa, MT; Larrosa, M; Tomás-Barberán, FA; Vallejo, F; Zafrilla, MP, 2010
)
0.36
" However, absorption and metabolism of flavonoids are complex processes that determine its bioavailability which remain not clear until now."( Hesperidin and hesperetin membrane interaction: understanding the role of 7-O-glycoside moiety in flavonoids.
Creczynski-Pasa, T; Jaramillo, C; Lima, VR; Londoño-Londoño, J, 2010
)
1.8
"The capability of transglycosylated materials, α-glycosyltransferase-treated stevia (Stevia-G) and α-glycosyl hesperidin (Hsp-G), to enhance the bioavailability of poorly water-soluble drugs was investigated."( Transglycosylated stevia and hesperidin as pharmaceutical excipients: dramatic improvement in drug dissolution and bioavailability.
Imono, M; Takeuchi, H; Tozuka, Y; Uchiyama, H, 2010
)
0.86
"α-Glucosylhesperidin (Hsp-G), a functional food additive, significantly enhances the solubility and bioavailability of poorly water-soluble drugs despite little surface activity."( NMR investigation of a novel excipient, α-glucosylhesperidin, as a suitable solubilizing agent for poorly water-soluble drugs.
Higashi, K; Moribe, K; Takeuchi, H; Tozuka, Y; Uchiyama, H; Yamamoto, K; Zhang, J, 2011
)
1.02
"1 %) from citrus extract or with highly bioavailable curcumin from Curcuma longa extract (0."( Effect of citrus polyphenol- and curcumin-supplemented diet on inflammatory state in obese cats.
Freuchet, B; Jeusette, I; Le Bloc'h, J; Leray, V; Nguyen, P; Torre, C, 2011
)
0.37
" In this study, their interaction with specific ABC transporters, believed to play a role in the disposition and bioavailability of hesperetin, was studied using Sf9 membranes from cells overexpressing human BCRP (ABCG2), MRP2 (ABCC2) and MRP3 (ABCC3)."( Interaction of hesperetin glucuronide conjugates with human BCRP, MRP2 and MRP3 as detected in membrane vesicles of overexpressing baculovirus-infected Sf9 cells.
Barron, D; Brand, W; Dionisi, F; Krajcsi, P; Oosterhuis, B; Rietjens, IM; van Bladeren, PJ; Williamson, G, 2011
)
0.37
" In this manner, the flavonoids could contribute beneficial effects on the mechanisms of hypertension and thrombosis by increasing the bioavailability of NO."( Preventive effects of hesperidin, glucosyl hesperidin and naringin on hypertension and cerebral thrombosis in stroke-prone spontaneously hypertensive rats.
Giddings, JC; Ikemura, M; Sasaki, Y; Yamamoto, J, 2012
)
0.69
" We developed water-dispersible hesperetin by the process of micronization to enhance the bioavailability of hesperetin."( Bioavailability of orally administered water-dispersible hesperetin and its effect on peripheral vasodilatation in human subjects: implication of endothelial functions of plasma conjugated metabolites.
Harada, R; Kawai, Y; Kometani, T; Mukai, R; Murota, K; Nadamoto, T; Nakamura, H; Simizu, T; Takumi, H; Terao, J, 2012
)
0.38
" We anticipate that this study can provide better knowledge of bioavailability such as absorption, biodistribution, and elimination, of hesperidin in vivo, to facilitate the comprehension of the biological responses to physiologically relevant flavanones."( Bioevaluation of human serum albumin-hesperidin bioconjugate: insight into protein vector function and conformation.
Diao, JX; Ding, F; Sun, Y, 2012
)
0.85
"The objective of this study was to determine the ocular bioavailability of hesperidin and hesperetin, especially with respect to their distribution into the posterior segment of the eye, following systemic and topical administration in rabbits."( Evaluation of the intravenous and topical routes for ocular delivery of hesperidin and hesperetin.
Avula, B; Hippalgaonkar, K; Khan, IA; Majumdar, S; Srirangam, R, 2012
)
0.84
" However, hesperidin has a low bioavailability compared to hesperitin due to the rutinoside moiety attached to the flavonoid."( Hesperidinase encapsulation towards hesperitin production targeting improved bioavailability.
Furtado, AF; Nunes, MA; Ribeiro, MH, 2012
)
2.22
" This study was aimed at developing a high sensitive and selective liquid chromatography-tandem mass spectrometry method to quantify neohesperidin dihydrochalcone (NHDC) in rat plasma and tissues for pharmacokinetic, bioavailability and tissue distribution studies."( Application of a liquid chromatography-tandem mass spectrometry method to the pharmacokinetics, bioavailability and tissue distribution of neohesperidin dihydrochalcone in rats.
Jianshe, M; Pan, Y; Shi, S; Wang, X; Xiang, Z; Zheng, X, 2014
)
0.81
" 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
" These results suggested that vanadium exposure caused reduced bioavailability of androgens to the tissue and increased free radical formation, thereby causing structural and functional changes in spermatozoa."( Protective effect of alpha glucosyl hesperidin (G-hesperidin) on chronic vanadium induced testicular toxicity and sperm nuclear DNA damage in male Sprague Dawley rats.
Annapurna, A; Jaya Prakash, G; Krishna, KM; Madan, K; Rama Raju, GA; Ravi Krishna, CH; Sivanarayana, T; Vijaya Bharathi, B, 2015
)
0.69
"The effect of hesperidin encapsulation and particle size reduction on hesperetin bioavailability was assessed after the intake of orange flavanone beverages."( Encapsulation and micronization effectively improve orange beverage flavanone bioavailability in humans.
Borrego, F; Tomás-Barberán, FA; Tomás-Navarro, M; Vallejo, F, 2014
)
0.76
"We assessed the bioavailability of orange juice (poly)phenols by monitoring urinary flavanone metabolites and ring fission catabolites produced by the action of the colonic microbiota."( Orange juice (poly)phenols are highly bioavailable in humans.
Borges, G; Clifford, MN; Crozier, A; Del Rio, D; Kellerhals, MB; Lean, ME; Pereira-Caro, G; Roberts, SA; van der Hooft, J, 2014
)
0.4
"The study provides novel information on the potential involvement of the colonic microbiota in the overall bioavailability of orange juice (poly)phenols through the production of phenylpropionic acids and subsequent hepatic conversions that lead to hippuric acid and its hydroxylated analogues."( In vitro colonic catabolism of orange juice (poly)phenols.
Borges, G; Calani, L; Clifford, MN; Crozier, A; Del Rio, D; Ky, I; Pereira-Caro, G; Ribas, A; Roberts, SA, 2015
)
0.42
"In the present study, nanocrystalline solid dispersion (NSD) was developed to enhance the release rate and oral bioavailability of hesperetin (HRN)."( Oral bioavailability and pharmacodynamic activity of hesperetin nanocrystals generated using a novel bottom-up technology.
Bansal, AK; Jain, S; Pawar, YB; Shete, G; Thanki, K, 2015
)
0.42
" pseudocatenulatum may contribute to the release of the aglycone from certain rutinose-conjugated polyphenols, such as hesperidin, it remains to be clarified whether this species may exert a role in affecting the bioavailability of the rutinoside in vivo."( Hydrolysis of the rutinose-conjugates flavonoids rutin and hesperidin by the gut microbiota and bifidobacteria.
Amaretti, A; Leonardi, A; Quartieri, A; Raimondi, S; Rossi, M, 2015
)
0.87
" However, hesperetin's poor solubility and low bioavailability limit its wide application."( Intestinal absorption mechanisms of MTBH, a novel hesperetin derivative, in Caco-2 cells, and potential involvement of monocarboxylate transporter 1 and multidrug resistance protein 2.
Chen, R; Chen, Z; Hu, C; Hu, T; Huang, C; Li, J; Li, Y; Meng, X; Qian, Z; Shen, C, 2015
)
0.42
"46 % of the amount of glucuronides/sulfates, the absolute bioavailability of MTBH was approximately 31."( Single Dose Oral and Intravenous Pharmacokinetics and Tissue Distribution of a Novel Hesperetin Derivative MTBH in Rats.
Chen, R; Chen, Z; Hu, C; Hu, T; Huang, C; Li, J; Li, Y; Meng, X; Qian, Z; Shen, C, 2016
)
0.43
"Cytochrome P-450 (CYP) enzymes and P-glycoprotein (P-gp) play an important role in the oral bioavailability and first-pass-metabolism (FPM) of many drugs."( Pharmacokinetic interaction study between flavanones (hesperetin, naringenin) and rasagiline mesylate in wistar rats.
Kilaru, N; Mullapudi, SS; Nuthakki, S; Pendyala, S; Pingili, R; Vemulapalli, S, 2016
)
0.43
" Hesperetin (HDND) possesses extensive bioactivities, however, its poor solubility and low bioavailability limit its application."( Intestinal transport of HDND-7, a novel hesperetin derivative, in in vitro MDCK cell and in situ single-pass intestinal perfusion models.
Chen, R; Huang, C; Li, J; Li, L; Li, Y; Ma, T; Meng, X; Qian, Z; Shen, C, 2017
)
0.46
"4 aqueous buffer was coupled with the in vitro (1,1-diphenyl-2-picryl hydroxyl free radical antioxidant assay and RBC antihemolytic assay) studies to present a complete preliminary data on the improved bioavailability of hesperetin eutectics."( Is Failure of Cocrystallization Actually a Failure? Eutectic Formation in Cocrystal Screening of Hesperetin.
Bhalla, Y; Chadha, K; Chadha, R; Karan, M; Vasisht, K, 2017
)
0.46
" Moreover, we also discuss the chemistry, bioavailability and proposed mechanisms of action of hesperidin."( Potential Anti-inflammatory Effects of Hesperidin from the Genus Citrus.
Capó, X; Martorell, M; Pinya, S; Pons, A; Sureda, A; Tejada, S; Tur, JA, 2018
)
0.97
"Drug nanosuspension is one of the established methods to improve the bioavailability of poorly soluble drugs."( Production of drug nanosuspensions: effect of drug physical properties on nanosizing efficiency.
Liu, T; Möschwitzer, JP; Müller, RH, 2018
)
0.48
" Thus, the formation of solid dispersions of ART with transglycosylated food additives is a potentially safe and effective approach to enhance the bioavailability of poorly water-soluble ART."( Application of transglycosylated stevia and hesperidin as drug carriers to enhance biopharmaceutical properties of poorly-soluble artemisinin.
Letchmanan, K; Ng, WK; Shen, SC; Tan, RBH, 2018
)
0.74
" Nevertheless, their predictive value for bioavailability can be questioned."( A Critical Evaluation of In Vitro Hesperidin 2S Bioavailability in a Model Combining Luminal (Microbial) Digestion and Caco-2 Cell Absorption in Comparison to a Randomized Controlled Human Trial.
Grootaert, C; Jacobs, G; Noten, B; Pitart, J; Possemiers, S; Salden, B; Smagghe, G; Van Camp, J; Van Rymenant, E; Voorspoels, S, 2018
)
0.76
" Nanocrystals can be used to improve the bioavailability of poorly soluble actives not only for oral, but also for topical application."( Nanocrystals for improved dermal drug delivery.
Dietrich, H; Geisel, N; Gerst, M; Huang, J; Keck, CM; Pelikh, O; Scholz, P; Stahr, PL, 2018
)
0.48
" The present study aimed to develop nanocrystalline solid dispersions (NSD) of HRN and evaluating the oral bioavailability in rats."( Nanocrystalline solid dispersions (NSD) of hesperetin (HRN) for prevention of 7, 12-dimethylbenz[a]anthracene (DMBA)-induced breast cancer in Sprague-Dawley (SD) rats.
Bansal, AK; Navik, U; Sheokand, S, 2019
)
0.51
" Its poor bioavailability is crucial bottleneck for therapeutic efficacy."( Fabrication of hesperidin nanoparticles loaded by poly lactic co-Glycolic acid for improved therapeutic efficiency and cytotoxicity.
Al-Halbosiy, MMF; Ali, SH; Hameed, AH; Jabir, MS; Sulaiman, GM, 2019
)
0.87
" On the basis of comparison of the AUC0-t, the relative bioavailability of the test preparation was found 100."( Simultaneous Determination and Quantitation of Diosmetin and Hesperetin in Human Plasma by Liquid Chromatographic Mass Spectrometry With an Application to Pharmacokinetic Studies.
Chakraborty, S; Dan, S; Ghosh, B; Khanam, J; Mandal, P; Pal, TK; Saha, C, 2019
)
0.51
"Dietary constituents can influence the bioavailability of carotenoids."( Hesperetin and Hesperidin Improved β-Carotene Incorporation Efficiency, Intestinal Cell Uptake, and Retinoid Concentrations in Tissues.
Huang, W; Jiang, N; Li, D; Liu, C; Nie, M; Zhang, Z, 2019
)
0.87
"The ATP-binding cassette transporter P-glycoprotein (P-gp) is known to limit both brain penetration and oral bioavailability of many chemotherapy drugs."( A High-Throughput Screen of a Library of Therapeutics Identifies Cytotoxic Substrates of P-glycoprotein.
Ambudkar, SV; Brimacombe, KR; Chen, L; Gottesman, MM; Guha, R; Hall, MD; Klumpp-Thomas, C; Lee, OW; Lee, TD; Lusvarghi, S; Robey, RW; Shen, M; Tebase, BG, 2019
)
0.51
" In this study, we used glucosyl hesperidin (GH), which has greater bioavailability than hesperidin, to clarify comprehensive mechanisms underlying the hypouricemic effects of hesperidin in vivo."( Comprehensive analysis of mechanism underlying hypouricemic effect of glucosyl hesperidin.
Harada-Shiba, M; Hirata, H; Ogura, M; Ota-Kontani, A; Tsuchiya, Y, 2020
)
1.07
"5-fold higher bioavailability of HES from SLN formulation compared to HES suspension."( Improved cardioprotective effects of hesperidin solid lipid nanoparticles prepared by supercritical antisolvent technology.
Ahmad, FJ; Ahmad, I; Ali, A; Jain, GK; Kawish, SM; Khan, UA; Saad, S, 2020
)
0.83
" However, an important consideration regarding hesperetin consumption is the limited bioavailability due to its poor solubility."( Oral intake of α‑glucosyl‑hesperidin ameliorates selenite‑induced cataract formation.
Aoki, M; Endo, S; Funakoshi-Tago, M; Ishiwa, S; Morishita, N; Nagai, N; Nakazawa, Y; Tamura, H; Yamamoto, N, 2020
)
0.86
" However, its poor solubility and bioavailability render it only slightly absorbed, requiring a delivery system to reach its therapeutic target."( Hesperidin Loaded on Gold Nanoparticles as a Drug Delivery System for a Successful Biocompatible, Anti-Cancer, Anti-Inflammatory and Phagocytosis Inducer Model.
Dewir, YH; Jabir, MS; Khazaal, SH; Naidoo, Y; Sulaiman, GM; Waheeb, HM, 2020
)
2
" acidophilus LA85 may potentially contribute to the bioavailability of citrus flavanones, and to be applied as functional cultures to obtain more bioavailable and bioactive metabolites in food products or in the human gastrointestinal tract."( Biotransformation of two citrus flavanones by lactic acid bacteria in chemical defined medium.
Guo, A; Guo, X; Li, E, 2021
)
0.62
" DG-Hes significantly improved the in vitro passive permeation, ex vivo corneal permeation, and in vivo ocular bioavailability of Hes."( Preparation and in vitro/in vivo evaluations of novel ocular micelle formulations of hesperetin with glycyrrhizin as a nanocarrier.
Chen, H; Lan, J; Song, K; Wu, X; Zhang, F, 2021
)
0.62
"Poor aqueous solubility of drug substances is associated with poor bioavailability and thus hampers the effective use of many potent active pharmaceutical ingredients."( Investigating hesperetin nanocrystals with tailor-made sizes for the prevention and treatment of Alzheimer's disease.
Eckert, GP; Grewal, R; Keck, CM; Stahr, PL, 2021
)
0.62
"This study aimed to prepare a nanoemulsion vehicle to improve the oral bioavailability of hesperetin."( Nanoemulsion for Improving the Oral Bioavailability of Hesperetin: Formulation Optimization and Absorption Mechanism.
Huang, Y; Liu, R; Tian, Y; Wang, D; Wang, M; Xia, Z; Zeng, F, 2021
)
0.62
"The present study aimed to develop novel hesperetin-loaded on multiple wall carbon nanotubes (Hst-MWCNTs) to resolve the restricted bioavailability of hesperetin (Hst) and to enhance its preventive effect on cerebral ischemia-reperfusion (I/R)."( Evaluation of hesperetin-loaded on multiple wall carbon nanotubes on cerebral ischemia/reperfusion injury in rats.
Hajizadeh Moghaddam, A; Hasantabar, V; Mokhtari Sangdehi, SR; Shirej Pour, Y, 2021
)
0.62
" In this study, we successfully prepared a novel, self-assembled micelle based on Rebaudioside A (RA) for oral delivery of HSP with improved bioavailability and therapeutic effects."( Improved bioavailability and anticancer efficacy of Hesperetin on breast cancer via a self-assembled rebaudioside A nanomicelles system.
Chen, Z; Di, G; Fan, J; Guo, C; Li, Q; Qi, X; Wang, J; Wu, X, 2021
)
0.62
" However, in the future, newer natural binding agents with higher binding capacity might accelerate the encapsulating potential, controlled release, and enhanced bioavailability of citrus bioflavonoids."( Recent developments in citrus bioflavonoid encapsulation to reinforce controlled antioxidant delivery and generate therapeutic uses: Review.
Dadwal, V; Gupta, M, 2023
)
0.91
"Hesperidin, a ubiquitous plant-based flavanone, was encapsulated into nanoemulsions (HP-NEM) using a spontaneous emulsification method to improve its solubility and enhance bioavailability and efficacy in breast cancer treatment using MCF-7 cell lines."( Hesperidin-loaded nanoemulsions improve cytotoxicity, induce apoptosis, and downregulate miR-21 and miR-155 expression in MCF-7.
Hassan, D; Mackraj, I; Magura, J; Moodley, R,
)
3.02
" The secondary outcomes include bioavailability and metabolism of flavanones, changes in other markers of vascular function, systemic biomarkers of cardiovascular risk, endothelial dysfunction and inflammation, vitamin C and carotenoids status, anthropometry and body composition, gut microbiota composition, nutrigenomic response and in oxylipin profiling."( Evaluating the role of orange juice, HESPERidin in vascular HEALTH benefits (HESPER-HEALTH study): protocol for a randomised controlled trial.
Evrard, R; Gilcher, C; Gladine, C; Macian, N; Milenkovic, D; Monfoulet, LE; Morand, C; Mosoni, P; Pereira, B; Pickering, G; Schweiggert, R; Steingass, CB; Verny, MA, 2021
)
0.89
"The impact of β-glucan on the bioavailability of orange juice (OJ) flavanones was investigated in a randomised controlled trial."( Acute effect of oat β-glucan on the bioavailability of orange juice flavanones.
Almutairi, TM; Crozier, A; García, AL; Lazarova, S; Malkova, D; Moreno-Rojas, JM; Morillo-Santander, G; Ordoñez-Díaz, JL; Ortiz-Somovilla, V; Pereira-Caro, G, 2022
)
0.72
"This study examined the effects of phase II metabolism and efflux transportation on the bioavailability of naringin, hesperidin, and their aglycones (naringenin and hesperetin) in rats."( Involvement of phase II enzymes and efflux transporters in the metabolism and absorption of naringin, hesperidin and their aglycones in rats.
Cao, X; Fang, X; Guo, A; Guo, X; Li, E, 2022
)
1.15
" To conclude the use of HP-β-CD as a carrier in the formation of an amorphous inclusion complex seems to be a promising approach to improve the biological activity and bioavailability of Hed and Het."( Amorphous Inclusion Complexes: Molecular Interactions of Hesperidin and Hesperetin with HP-Β-CD and Their Biological Effects.
Cielecka-Piontek, J; Płazińska, A; Płaziński, W; Rosiak, N; Tykarska, E; Wdowiak, K; Żarowski, M, 2022
)
0.97
"The aim of my study was to find the effect of co-administrating orange juice and hesperidin on the bioavailability of metoprolol tartrate in rabbits."( Role of hesperidin and fresh orange juice in altering the bioavailability of beta-blocker, metoprolol tartrate. An
Batool Rizvi, SN; Firdous, S; Hussain, N; Naeem, M; Salam, R; Zaheer, M, 2022
)
1.38
" A hesperetin derivative (HD) was synthesized in our laboratory to increase the bioavailability and the water solubility of hesperetin."( Hesperetin derivative decreases CCl
Chen, SY; Chen, X; Cheng, M; Huang, C; Li, J; Li, XF; Wang, A; Wu, S; Wu, YY; Xu, JJ; Zhu, S, 2022
)
0.72
" However, hesperidin shows a low bioavailability among individuals."( Hesperidin Bioavailability Is Increased by the Presence of 2S-Diastereoisomer and Micronization-A Randomized, Crossover and Double-Blind Clinical Trial.
Alcaide-Hidalgo, JM; Arola, L; Caimari, A; Calderón-Pérez, L; Companys, J; Crescenti, A; Del Bas, JM; Delpino-Rius, A; Herrero, P; Mariné-Casadó, R; Pedret, A; Pla-Pagà, L; Salamanca, P; Samarra, I; Solà, R; Valls, RM, 2022
)
2.57
" However, the bioavailability of these compounds is limited due to low solubility and restricts their use as pro-healthy agents."( Bioavailability of Hesperidin and Its Aglycone Hesperetin-Compounds Found in Citrus Fruits as a Parameter Conditioning the Pro-Health Potential (Neuroprotective and Antidiabetic Activity)-Mini-Review.
Bazan-Woźniak, A; Cielecka-Piontek, J; Pietrzak, R; Walkowiak, J; Wdowiak, K, 2022
)
1.05
" Despite their various benefits, they have poor solubility, which reduces their bioavailability and absorption."( Nanophytosomes of hesperidin and of hesperetin: Preparation, characterization, and in vivo evaluation.
Amirinejad, M; Badiee, A; Davoodi, J; Gheybi, F; Omidfar, F, 2023
)
1.24
" However, the biological benefits depend on the bioavailability of these compounds, and previous studies have reported a large interindividual variability in the absorption and excretion of these compounds."( Association between Single Nucleotide Polymorphisms of SULT1A1, SULT1C4, ABCC2 and Phase II Flavanone Metabolites Excretion after Orange Juice Intake.
Fraga, LN; Hassimotto, NMA; Lajolo, FM; Milenkovic, D, 2022
)
0.72
"7× higher bioavailability than hesperidin."( Improvement of low-intensity long-time running performance in rats by intake of glucosyl hesperidin.
Aoki, K; Arai, N; Endo, S; Komine, S; Nagayama, S; Ohmori, H, 2023
)
1.42
" This is a response to the circumvention of restrictions in the use of hesperidin due to its poor bioavailability resulting from low solubility and permeability."( Improving Solubility and Permeability of Hesperidin through Electrospun Orange-Peel-Extract-Loaded Nanofibers.
Cielecka-Piontek, J; Miklaszewski, A; Paczkowska-Walendowska, M, 2023
)
1.41

Dosage Studied

The altered levels of the above-mentioned biochemical parameters in cancer-bearing animals were significantly ameliorated by the administration of hesperidin at the dosage of 30 mg/kg bw for 45 days. It has been found that n-6 (linoleic acid) and n-3 (docosahexaenoic acid), fatty acid values increased significantly according to hes peridin dosage.

ExcerptRelevanceReference
" The dosage was 3 X 2 capsules per day."( [Experiences in the use of Essaven capsules in the treatment of venous leg diseases. Results of a double-blind study].
Neumann-Mangoldt, P, 1979
)
0.26
" Daflon 500 mg was administered at the dosage of three tablets bid the first four days and two tablets bid the following three days."( Double-blind, placebo-controlled evaluation of clinical activity and safety of Daflon 500 mg in the treatment of acute hemorrhoids.
Cospite, M, 1994
)
0.29
" In animal studies, the safety of Daflon 500 mg is shown by an LD50 (lethal dose 50) of more than 3 g/kg, ie, 180 times the daily therapeutic dose, as well as by the absence of any toxic effect after repeated oral dosing for thirteen and twenty-six weeks, using a dose representing 35 times the daily dosage, in the rate and primate."( Safety and security of Daflon 500 mg in venous insufficiency and in hemorrhoidal disease.
Meyer, OC, 1994
)
0.29
" Further studies with a higher dosage could confirm the beneficial activity of this drug in secondary lymphedema."( Efficacy of Daflon 500 mg in the treatment of lymphedema (secondary to conventional therapy of breast cancer).
Février, B; Pecking, AP; Pillion, G; Wargon, C, 1997
)
0.3
" For examining the modifying effects of 'initiation' treatment of test compounds, groups of animals were fed the diets containing 1000 ppm diosmin and 1000 ppm hesperidin, and the diet containing both compounds (900 ppm diosmin and 100 ppm hesperidin) for 13 weeks, starting 7 days before the MNAN dosing and then switched to the basal diet."( Modulation of N-methyl-N-amylnitrosamine-induced rat oesophageal tumourigenesis by dietary feeding of diosmin and hesperidin, both alone and in combination.
Fukutani, K; Hara, A; Kakumoto, M; Kawabata, K; Makita, H; Mori, H; Ogawa, H; Satoh, K; Sumida, T; Tanaka, T, 1997
)
0.7
" They also received MJ, MJ2, or MJ5 as a drinking water at night for 36 weeks, starting 1 week after the last dosing of AOM."( Suppression of azoxymethane-induced colon carcinogenesis in male F344 rats by mandarin juices rich in beta-cryptoxanthin and hesperidin.
Azuma, Y; Kagami, S; Kohno, H; Murakami, M; Ogawa, H; Shimada, R; Sumida, T; Tanaka, T, 2000
)
0.51
" The methods were applied for determination of the diosmin and/or hesperidin in Buchu leaves and pharmaceutical dosage forms (three tablets)."( Improved LC methods for the determination of diosmin and/or hesperidin in plant extracts and pharmaceutical formulations.
El-Domiaty, MM; El-Shafae, AM, 2001
)
0.79
" When a solution containing Hsp is dosed with NaOCl at pH 7, chlorine substitution into Hsp occurs exclusively into the meta-dihydroxy substituted ring."( Reactions of the flavonoid hesperetin with chlorine: a spectroscopic study of the reaction pathways.
Benjamin, MM; Gallard, H; Korshin, GV; Lu, J, 2004
)
0.32
" There was a drug dose-response effect of HES in reducing MnPCE and increasing the PCE/PCE+NCE ratio in bone marrow cells."( Radioprotective effects of hesperidin against gamma irradiation in mouse bone marrow cells.
Hosseinimehr, SJ; Nemati, A, 2006
)
0.63
" On the basis of results it seems that high dosage of the diosmin-hesperidin mixture induces slight changes in the Cu, Zn, Mn and Fe content of the liver, however it may decrease the scavenger capacity and the activity of SOD when applied either alone or together with thioacetamide."( Effects of citrus flavonoids on redox homeostasis of toxin-injured liver in rat.
Blázovics, A; Fehér, E; Kurucz, T; Lugasi, A; Pallai, Z; Rapavi, E; Székely, E; Szentmihályi, K, 2006
)
0.57
" Permeation issues for topical delivery systems of such effects are occasionally problematic, and in view of the fact that microemulsions are potential carriers for transdermal delivery system, the objective of this study was to design an optimal microemulsion formulation by in vitro permeation study for hesperetin topical dosage form and determine its topical photoprotective effect and skin irritation by in vivo study."( In vitro permeation and in vivo whitening effect of topical hesperetin microemulsion delivery system.
Huang, CT; Huang, YB; Lee, KF; Tsai, YH; Wu, PC, 2010
)
0.36
" Conversely, chromosomal aberration test showed that the PWS extract at a dosage of 4500 μg/mL induced an increase in the number of chromosomal aberrations in the 6 h group with metabolic activation compared with the vehicle control."( Genotoxicity assessment of Pyungwi-san (PWS), a traditional herbal prescription.
Ha, HK; Huang, DS; Huh, JI; Lee, MY; Seo, CS; Shin, HK; Shin, IS, 2011
)
0.37
" Doxorubicin was administered at the dosage of 4 mg/kg bw/week, ip for a period of 5 consecutive weeks."( Cardioprotective effects of hesperetin against doxorubicin-induced oxidative stress and DNA damage in rat.
Jena, GB; Kushwaha, S; Tripathi, DN; Trivedi, PP, 2011
)
0.37
" The blood samples were collected before dosing and subsequently at 10, 15, 20, 30, 45 min, 1, 2, 4, 8, and 12 h following gavage."( Effect of formula compatibility on the pharmacokinetics of components from Dachengqi Decoction [See Text] in rats.
Chen, GY; Gong, HL; Huang, X; Tang, WF; Wang, J, 2012
)
0.38
" Three hundred sixty 1-d-old broilers were divided into 6 treatment groups: control (basal diet), G5 (5 mg of genistein per kg of feed), and H20 (20 mg hesperidin per kg of feed), whereas the other 3 groups were supplemented with a mixture of genistein and hesperidin (20% genistein + 80% hesperidin) having a dosage of 5 mg•kg(-1) (GH5), 10 mg•kg(-1) (GH10), and 20 mg•kg(-1) (GH20), respectively."( Effect of increasing levels of bioflavonoids in broiler feed on plasma anti-oxidative potential, lipid metabolites, and fatty acid composition of meat.
Kamboh, AA; Zhu, WY, 2013
)
0.59
" The altered levels of the above-mentioned biochemical parameters in cancer-bearing animals were significantly ameliorated by the administration of hesperidin at the dosage of 30 mg/kg bw for 45 days."( Modulating effects of hesperidin on key carbohydrate-metabolizing enzymes, lipid profile, and membrane-bound adenosine triphosphatases against 7,12-dimethylbenz(a)anthracene-induced breast carcinogenesis.
Balamurugan, A; Balasubramanian, MP; Nandakumar, N; Rengarajan, T, 2014
)
0.92
" A total of 360 one-day-old, mixed-sex broiler chickens were divided into 6 treatment groups: control or supplemented with 5 mg of genistein•kg of feed(-1), 20 mg of hesperidin•kg of feed(-1), or a mixture of genistein and hesperidin (1:4) at a dosage of 5 mg•kg(-1), 10 mg•kg(-1), and 20 mg•kg(-1) of feed."( Effects of genistein and hesperidin on biomarkers of heat stress in broilers under persistent summer stress.
Bakhetgul, M; Hang, SQ; Kamboh, AA; Zhu, WY, 2013
)
0.89
" Unfortunately, DOX is not sufficiently effective in many cases, and increasing the dosage of it is limited due to its systemic toxicity."( Effect of hesperidin on mice bearing Ehrlich solid carcinoma maintained on doxorubicin.
Khalil, RM; Khedr, NF, 2015
)
0.82
"For final solid dosage forms, aqueous liquid nanosuspensions need to be solidified, whereas spray drying is a large-scale cost-effective industrial process."( Solidification of hesperidin nanosuspension by spray drying optimized by design of experiment (DoE).
Keck, CM; Müller, RH; Wei, Q, 2018
)
0.81
" Steady and prolonged drug release behavior with zero order kinetics displayed by prepared carrier system established its prospect to increase efficiency and decrease dosing of hesperidin."( Prevention of rat liver fibrosis by selective targeting of hepatic stellate cells using hesperidin carriers.
Morsy, MA; Nair, AB, 2018
)
0.9
" A dose-response curve of HMC (10, 30, or 100 mg/kg) was performed to determine the most effective analgesic dose after intra-articular zymosan stimuli."( Hesperidin methyl chalcone interacts with NFκB Ser276 and inhibits zymosan-induced joint pain and inflammation, and RAW 264.7 macrophage activation.
Artero, NA; Badaro-Garcia, S; Casagrande, R; de Freitas, A; Fattori, V; Ferraz, CR; Manchope, MF; Rasquel-Oliveira, FS; Saraiva-Santos, T; Staurengo-Ferrari, L; Verri, WA; Zaninelli, TH, 2020
)
2
" Two dose-response studies were performed at baseline and after 12 weeks."( Effects of hesperidin in orange juice on blood and pulse pressures in mildly hypertensive individuals: a randomized controlled trial (Citrus study).
Arola, L; Caimari, A; Calderón-Pérez, L; Canela, N; Companys, J; Del Bas, JM; Giralt, M; Llauradó, E; Martín-Luján, F; Mayneris-Perxachs, J; Moragas, A; Ortega, Y; Pedret, A; Pla-Pagà, L; Puiggrós, F; Romeu, M; Rubió, L; Solà, R; Valls, RM, 2021
)
1.01
"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
" It has been found that n-6 (linoleic acid) and n-3 (docosahexaenoic acid) fatty acid values increased significantly according to hesperidin dosage (P < 0."( Fatty acid compositions and quality of egg and performance in laying quails fed diet with hesperidin.
Gümüş, R; Kara, K; Özbilgin, A; Tekçe, E, 2021
)
1.05
" We conclude that more work needs to be done to explore the appropriate dosage of hesperidin or find other drugs to protect against the reproductive toxicity of PBDEs."( Hesperidin partly ameliorates the decabromodiphenyl ether-induced reproductive toxicity in pubertal mice.
Che, S; Chen, S; Li, S; Ruan, Z; Zhang, L, 2022
)
2.39
" We selected in vivo RCTs, animal studies, and in vitro studies in which hesperidin, its aglycone form hesperetin, hesperetin-metabolites, or orange juice are supplemented at any dosage and where the parameters related to endothelial function, oxidative stress, and/or inflammation have been measured."( Hesperidin Functions as an Ergogenic Aid by Increasing Endothelial Function and Decreasing Exercise-Induced Oxidative Stress and Inflammation, Thereby Contributing to Improved Exercise Performance.
Cuijpers, I; Imperatrice, M; Sthijns, MMJPE; Troost, FJ, 2022
)
2.4
" This was followed by 4 weeks of continuous daily dosage of hesperidin treatment at 100 mg/kg body weight."( Protective role of hesperidin against diabetes induced spleen damage: Mechanism associated with oxidative stress and inflammation.
Hanchang, W; Rojanaverawong, W; Wongmanee, N; Yoopum, S, 2022
)
1.29
"Hesperidin dosage and application methods can be developed as an alternative treatment for burn healing and treatment."( Investigation of the histopathological level of Ki-67, caspase-3 expressions of the effects of hesperidin on wound healing in the rat esophagus.
Deveci, E; Durgun, C; Kirman, G, 2023
)
2.57
[information is derived through text-mining from research data collected from National Library of Medicine (NLM), extracted Dec-2023]

Occurs in Manufacturing (1 Items)

ItemProcessFrequency
Dietary supplementscore-ingredient2

Roles (1)

RoleDescription
mutagenAn agent that increases the frequency of mutations above the normal background level, usually by interacting directly with DNA and causing it damage, including base substitution.
[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 (9)

ClassDescription
glycosideA glycosyl compound resulting from the attachment of a glycosyl group to a non-acyl group RO-, RS-, RSe-, etc. The bond between the glycosyl group and the non-acyl group is called a glycosidic bond. By extension, the terms N-glycosides and C-glycosides are used as class names for glycosylamines and for compounds having a glycosyl group attached to a hydrocarbyl group respectively. These terms are misnomers and should not be used. The preferred terms are glycosylamines and C-glycosyl compounds, respectively.
flavonoidsAny organic molecular entity whose stucture is based on derivatives of a phenyl-substituted 1-phenylpropane possessing a C15 or C16 skeleton, or such a structure which is condensed with a C6-C3 lignan precursors. The term is a 'superclass' comprising all members of the classes of flavonoid, isoflavonoid, neoflavonoid, chalcones, dihydrochalcones, aurones, pterocarpan, coumestans, rotenoid, flavonolignan, homoflavonoid and flavonoid oligomers. Originally restricted to natural products, the term is also applied to synthetic compounds related to them.
rutinoside
disaccharide derivativeA carbohydrate derivative that is formally obtained from a disaccharide.
3'-hydroxyflavanonesAny hydroxyflavanone with a hydroxy substituent at position 3' of the phenyl ring.
dihydroxyflavanoneAny hydroxyflavanone carrying two hydroxy substituents.
monomethoxyflavanoneAny methoxyflavanone that is flavanone substituted by a methoxy group.
flavanone glycosideA member of the class of flavanones having one or more glycosyl residues attached at unspecified positions.
4'-methoxyflavanonesAny methoxyflavanone having a methoxy substituent located at position 4'.
[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 (1)

PathwayProteinsCompounds
hesperitin glycoside biosynthesis011

Protein Targets (29)

Potency Measurements

ProteinTaxonomyMeasurementAverage (µ)Min (ref.)Avg (ref.)Max (ref.)Bioassay(s)
Chain A, MAJOR APURINIC/APYRIMIDINIC ENDONUCLEASEHomo sapiens (human)Potency75.19300.003245.467312,589.2998AID2517
USP1 protein, partialHomo sapiens (human)Potency1,995.26000.031637.5844354.8130AID743255
chromobox protein homolog 1Homo sapiens (human)Potency112.20200.006026.168889.1251AID540317
transcriptional regulator ERG isoform 3Homo sapiens (human)Potency11.22020.794321.275750.1187AID624246
Rap guanine nucleotide exchange factor 3Homo sapiens (human)Potency125.89206.309660.2008112.2020AID720707
Rap guanine nucleotide exchange factor 4Homo sapiens (human)Potency3.16233.981146.7448112.2020AID720708
ATP-dependent phosphofructokinaseTrypanosoma brucei brucei TREU927Potency0.75690.060110.745337.9330AID485367
Chain A, JmjC domain-containing histone demethylation protein 3AHomo sapiens (human)Potency79.43280.631035.7641100.0000AID504339
GLS proteinHomo sapiens (human)Potency22.38720.35487.935539.8107AID624170
TDP1 proteinHomo sapiens (human)Potency2.02270.000811.382244.6684AID686979
estrogen nuclear receptor alphaHomo sapiens (human)Potency4.56050.000229.305416,493.5996AID743069
bromodomain adjacent to zinc finger domain 2BHomo sapiens (human)Potency50.11870.707936.904389.1251AID504333
DNA polymerase betaHomo sapiens (human)Potency44.66840.022421.010289.1251AID485314
peptidyl-prolyl cis-trans isomerase NIMA-interacting 1Homo sapiens (human)Potency79.43280.425612.059128.1838AID504891
DNA polymerase eta isoform 1Homo sapiens (human)Potency89.12510.100028.9256213.3130AID588591
DNA polymerase iota isoform a (long)Homo sapiens (human)Potency79.43280.050127.073689.1251AID588590
ATP-dependent phosphofructokinaseTrypanosoma brucei brucei TREU927Potency37.93300.060110.745337.9330AID485367
[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
carboxy-terminal domain RNA polymerase II polypeptide A small phosphatase 1 isoform 1Homo sapiens (human)IC50 (µMol)20.73302.05808.205241.3880AID540297
Lysine-specific histone demethylase 1AHomo sapiens (human)IC50 (µMol)19.16000.00312.16029.6000AID1515260
Calmodulin-1Homo sapiens (human)IC50 (µMol)72.00005.17006.81008.0000AID550028; AID550029
Alpha-2B adrenergic receptorRattus norvegicus (Norway rat)IC50 (µMol)74.00000.00031.09147.7625AID550028
Alpha-2C adrenergic receptorRattus norvegicus (Norway rat)IC50 (µMol)74.00000.00031.09147.7625AID550028
Alpha-2A adrenergic receptorRattus norvegicus (Norway rat)IC50 (µMol)74.00000.00031.06917.7625AID550028
3-oxo-5-alpha-steroid 4-dehydrogenase 1 Rattus norvegicus (Norway rat)IC50 (µMol)9.50000.00427.468021.1000AID2073
Substance-P receptorCavia porcellus (domestic guinea pig)IC50 (µMol)100.00000.00002.751810.0000AID366285
3-oxo-5-alpha-steroid 4-dehydrogenase 2Rattus norvegicus (Norway rat)IC50 (µMol)9.50000.00037.329421.1000AID2073
NischarinRattus norvegicus (Norway rat)IC50 (µMol)70.00000.36620.36620.3662AID550029
Substance-K receptorCavia porcellus (domestic guinea pig)IC50 (µMol)100.00000.01500.01500.0150AID366285
[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)
HeparanaseHomo sapiens (human)Kd1,000.00000.24000.24000.2400AID738328
[prepared from compound, protein, and bioassay information from National Library of Medicine (NLM), extracted Dec-2023]

Biological Processes (101)

Processvia Protein(s)Taxonomy
angiogenesisRap guanine nucleotide exchange factor 3Homo sapiens (human)
adaptive immune responseRap guanine nucleotide exchange factor 3Homo sapiens (human)
signal transductionRap guanine nucleotide exchange factor 3Homo sapiens (human)
adenylate cyclase-activating G protein-coupled receptor signaling pathwayRap guanine nucleotide exchange factor 3Homo sapiens (human)
associative learningRap guanine nucleotide exchange factor 3Homo sapiens (human)
Rap protein signal transductionRap guanine nucleotide exchange factor 3Homo sapiens (human)
regulation of actin cytoskeleton organizationRap guanine nucleotide exchange factor 3Homo sapiens (human)
negative regulation of syncytium formation by plasma membrane fusionRap guanine nucleotide exchange factor 3Homo sapiens (human)
intracellular signal transductionRap guanine nucleotide exchange factor 3Homo sapiens (human)
positive regulation of GTPase activityRap guanine nucleotide exchange factor 3Homo sapiens (human)
regulation of angiogenesisRap guanine nucleotide exchange factor 3Homo sapiens (human)
positive regulation of angiogenesisRap guanine nucleotide exchange factor 3Homo sapiens (human)
positive regulation of protein export from nucleusRap guanine nucleotide exchange factor 3Homo sapiens (human)
positive regulation of stress fiber assemblyRap guanine nucleotide exchange factor 3Homo sapiens (human)
regulation of phosphatidylinositol 3-kinase/protein kinase B signal transductionRap guanine nucleotide exchange factor 3Homo sapiens (human)
positive regulation of syncytium formation by plasma membrane fusionRap guanine nucleotide exchange factor 3Homo sapiens (human)
establishment of endothelial barrierRap guanine nucleotide exchange factor 3Homo sapiens (human)
cellular response to cAMPRap guanine nucleotide exchange factor 3Homo sapiens (human)
Ras protein signal transductionRap guanine nucleotide exchange factor 3Homo sapiens (human)
regulation of insulin secretionRap guanine nucleotide exchange factor 3Homo sapiens (human)
adaptive immune responseRap guanine nucleotide exchange factor 4Homo sapiens (human)
G protein-coupled receptor signaling pathwayRap guanine nucleotide exchange factor 4Homo sapiens (human)
adenylate cyclase-activating G protein-coupled receptor signaling pathwayRap guanine nucleotide exchange factor 4Homo sapiens (human)
calcium-ion regulated exocytosisRap guanine nucleotide exchange factor 4Homo sapiens (human)
regulation of exocytosisRap guanine nucleotide exchange factor 4Homo sapiens (human)
insulin secretionRap guanine nucleotide exchange factor 4Homo sapiens (human)
positive regulation of insulin secretionRap guanine nucleotide exchange factor 4Homo sapiens (human)
regulation of synaptic vesicle cycleRap guanine nucleotide exchange factor 4Homo sapiens (human)
Ras protein signal transductionRap guanine nucleotide exchange factor 4Homo sapiens (human)
regulation of insulin secretionRap guanine nucleotide exchange factor 4Homo sapiens (human)
regulation of double-strand break repair via homologous recombinationLysine-specific histone demethylase 1AHomo sapiens (human)
positive regulation of protein ubiquitinationLysine-specific histone demethylase 1AHomo sapiens (human)
regulation of protein localizationLysine-specific histone demethylase 1AHomo sapiens (human)
cellular response to UVLysine-specific histone demethylase 1AHomo sapiens (human)
cellular response to gamma radiationLysine-specific histone demethylase 1AHomo sapiens (human)
DNA repair-dependent chromatin remodelingLysine-specific histone demethylase 1AHomo sapiens (human)
negative regulation of transcription by RNA polymerase IILysine-specific histone demethylase 1AHomo sapiens (human)
positive regulation of neuroblast proliferationLysine-specific histone demethylase 1AHomo sapiens (human)
regulation of transcription by RNA polymerase IILysine-specific histone demethylase 1AHomo sapiens (human)
protein demethylationLysine-specific histone demethylase 1AHomo sapiens (human)
positive regulation of epithelial to mesenchymal transitionLysine-specific histone demethylase 1AHomo sapiens (human)
positive regulation of neuron projection developmentLysine-specific histone demethylase 1AHomo sapiens (human)
cerebral cortex developmentLysine-specific histone demethylase 1AHomo sapiens (human)
negative regulation of protein bindingLysine-specific histone demethylase 1AHomo sapiens (human)
neuron maturationLysine-specific histone demethylase 1AHomo sapiens (human)
negative regulation of DNA bindingLysine-specific histone demethylase 1AHomo sapiens (human)
negative regulation of DNA-binding transcription factor activityLysine-specific histone demethylase 1AHomo sapiens (human)
negative regulation of DNA damage response, signal transduction by p53 class mediatorLysine-specific histone demethylase 1AHomo sapiens (human)
positive regulation of cell sizeLysine-specific histone demethylase 1AHomo sapiens (human)
negative regulation of DNA-templated transcriptionLysine-specific histone demethylase 1AHomo sapiens (human)
positive regulation of transcription by RNA polymerase IILysine-specific histone demethylase 1AHomo sapiens (human)
guanine metabolic processLysine-specific histone demethylase 1AHomo sapiens (human)
muscle cell developmentLysine-specific histone demethylase 1AHomo sapiens (human)
regulation of androgen receptor signaling pathwayLysine-specific histone demethylase 1AHomo sapiens (human)
response to fungicideLysine-specific histone demethylase 1AHomo sapiens (human)
cellular response to cAMPLysine-specific histone demethylase 1AHomo sapiens (human)
regulation of DNA methylation-dependent heterochromatin formationLysine-specific histone demethylase 1AHomo sapiens (human)
positive regulation of cold-induced thermogenesisLysine-specific histone demethylase 1AHomo sapiens (human)
negative regulation of intrinsic apoptotic signaling pathway in response to DNA damage by p53 class mediatorLysine-specific histone demethylase 1AHomo sapiens (human)
positive regulation of neural precursor cell proliferationLysine-specific histone demethylase 1AHomo sapiens (human)
positive regulation of stem cell proliferationLysine-specific histone demethylase 1AHomo sapiens (human)
chromatin remodelingLysine-specific histone demethylase 1AHomo sapiens (human)
G2/M transition of mitotic cell cycleCalmodulin-1Homo sapiens (human)
regulation of heart rateCalmodulin-1Homo sapiens (human)
detection of calcium ionCalmodulin-1Homo sapiens (human)
G protein-coupled receptor signaling pathwayCalmodulin-1Homo sapiens (human)
positive regulation of peptidyl-threonine phosphorylationCalmodulin-1Homo sapiens (human)
negative regulation of peptidyl-threonine phosphorylationCalmodulin-1Homo sapiens (human)
regulation of release of sequestered calcium ion into cytosol by sarcoplasmic reticulumCalmodulin-1Homo sapiens (human)
regulation of cardiac muscle contraction by regulation of the release of sequestered calcium ionCalmodulin-1Homo sapiens (human)
autophagosome membrane dockingCalmodulin-1Homo sapiens (human)
substantia nigra developmentCalmodulin-1Homo sapiens (human)
positive regulation of protein autophosphorylationCalmodulin-1Homo sapiens (human)
regulation of cytokinesisCalmodulin-1Homo sapiens (human)
positive regulation of phosphoprotein phosphatase activityCalmodulin-1Homo sapiens (human)
positive regulation of protein dephosphorylationCalmodulin-1Homo sapiens (human)
cellular response to interferon-betaCalmodulin-1Homo sapiens (human)
positive regulation of receptor signaling pathway via JAK-STATCalmodulin-1Homo sapiens (human)
regulation of calcium-mediated signalingCalmodulin-1Homo sapiens (human)
positive regulation of cyclic-nucleotide phosphodiesterase activityCalmodulin-1Homo sapiens (human)
response to calcium ionCalmodulin-1Homo sapiens (human)
regulation of cardiac muscle contractionCalmodulin-1Homo sapiens (human)
regulation of ryanodine-sensitive calcium-release channel activityCalmodulin-1Homo sapiens (human)
negative regulation of ryanodine-sensitive calcium-release channel activityCalmodulin-1Homo sapiens (human)
positive regulation of ryanodine-sensitive calcium-release channel activityCalmodulin-1Homo sapiens (human)
cellular response to type II interferonCalmodulin-1Homo sapiens (human)
positive regulation of protein serine/threonine kinase activityCalmodulin-1Homo sapiens (human)
regulation of cardiac muscle cell action potentialCalmodulin-1Homo sapiens (human)
organelle localization by membrane tetheringCalmodulin-1Homo sapiens (human)
negative regulation of high voltage-gated calcium channel activityCalmodulin-1Homo sapiens (human)
regulation of cell communication by electrical coupling involved in cardiac conductionCalmodulin-1Homo sapiens (human)
negative regulation of calcium ion export across plasma membraneCalmodulin-1Homo sapiens (human)
mitochondrion-endoplasmic reticulum membrane tetheringCalmodulin-1Homo sapiens (human)
proteoglycan metabolic processHeparanaseHomo sapiens (human)
cell-matrix adhesionHeparanaseHomo sapiens (human)
response to organic substanceHeparanaseHomo sapiens (human)
positive regulation of vascular endothelial growth factor productionHeparanaseHomo sapiens (human)
positive regulation of blood coagulationHeparanaseHomo sapiens (human)
heparan sulfate proteoglycan catabolic processHeparanaseHomo sapiens (human)
heparin metabolic processHeparanaseHomo sapiens (human)
positive regulation of osteoblast proliferationHeparanaseHomo sapiens (human)
regulation of hair follicle developmentHeparanaseHomo sapiens (human)
positive regulation of hair follicle developmentHeparanaseHomo sapiens (human)
positive regulation of phosphatidylinositol 3-kinase/protein kinase B signal transductionHeparanaseHomo sapiens (human)
establishment of endothelial barrierHeparanaseHomo sapiens (human)
vascular wound healingHeparanaseHomo sapiens (human)
protein transmembrane transportHeparanaseHomo sapiens (human)
angiogenesis involved in wound healingHeparanaseHomo sapiens (human)
[Information is prepared from geneontology information from the June-17-2024 release]

Molecular Functions (39)

Processvia Protein(s)Taxonomy
guanyl-nucleotide exchange factor activityRap guanine nucleotide exchange factor 3Homo sapiens (human)
protein bindingRap guanine nucleotide exchange factor 3Homo sapiens (human)
protein domain specific bindingRap guanine nucleotide exchange factor 3Homo sapiens (human)
cAMP bindingRap guanine nucleotide exchange factor 3Homo sapiens (human)
guanyl-nucleotide exchange factor activityRap guanine nucleotide exchange factor 4Homo sapiens (human)
protein bindingRap guanine nucleotide exchange factor 4Homo sapiens (human)
cAMP bindingRap guanine nucleotide exchange factor 4Homo sapiens (human)
protein-macromolecule adaptor activityRap guanine nucleotide exchange factor 4Homo sapiens (human)
small GTPase bindingRap guanine nucleotide exchange factor 4Homo sapiens (human)
telomeric DNA bindingLysine-specific histone demethylase 1AHomo sapiens (human)
p53 bindingLysine-specific histone demethylase 1AHomo sapiens (human)
chromatin bindingLysine-specific histone demethylase 1AHomo sapiens (human)
transcription coactivator activityLysine-specific histone demethylase 1AHomo sapiens (human)
protein bindingLysine-specific histone demethylase 1AHomo sapiens (human)
oxidoreductase activityLysine-specific histone demethylase 1AHomo sapiens (human)
enzyme bindingLysine-specific histone demethylase 1AHomo sapiens (human)
nuclear receptor coactivator activityLysine-specific histone demethylase 1AHomo sapiens (human)
demethylase activityLysine-specific histone demethylase 1AHomo sapiens (human)
histone demethylase activityLysine-specific histone demethylase 1AHomo sapiens (human)
histone H3K4 demethylase activityLysine-specific histone demethylase 1AHomo sapiens (human)
histone H3K9 demethylase activityLysine-specific histone demethylase 1AHomo sapiens (human)
identical protein bindingLysine-specific histone demethylase 1AHomo sapiens (human)
MRF bindingLysine-specific histone demethylase 1AHomo sapiens (human)
flavin adenine dinucleotide bindingLysine-specific histone demethylase 1AHomo sapiens (human)
nuclear androgen receptor bindingLysine-specific histone demethylase 1AHomo sapiens (human)
RNA polymerase II-specific DNA-binding transcription factor bindingLysine-specific histone demethylase 1AHomo sapiens (human)
telomeric repeat-containing RNA bindingLysine-specific histone demethylase 1AHomo sapiens (human)
DNA-binding transcription factor bindingLysine-specific histone demethylase 1AHomo sapiens (human)
FAD-dependent H3K4me/H3K4me3 demethylase activityLysine-specific histone demethylase 1AHomo sapiens (human)
promoter-specific chromatin bindingLysine-specific histone demethylase 1AHomo sapiens (human)
transcription factor bindingLysine-specific histone demethylase 1AHomo sapiens (human)
calcium ion bindingCalmodulin-1Homo sapiens (human)
protein bindingCalmodulin-1Homo sapiens (human)
adenylate cyclase activator activityCalmodulin-1Homo sapiens (human)
calcium channel inhibitor activityCalmodulin-1Homo sapiens (human)
protein kinase bindingCalmodulin-1Homo sapiens (human)
titin bindingCalmodulin-1Homo sapiens (human)
protein serine/threonine kinase activator activityCalmodulin-1Homo sapiens (human)
transmembrane transporter bindingCalmodulin-1Homo sapiens (human)
calcium-dependent protein bindingCalmodulin-1Homo sapiens (human)
protein phosphatase activator activityCalmodulin-1Homo sapiens (human)
beta-glucuronidase activityHeparanaseHomo sapiens (human)
protein bindingHeparanaseHomo sapiens (human)
heparanase activityHeparanaseHomo sapiens (human)
syndecan bindingHeparanaseHomo sapiens (human)
[Information is prepared from geneontology information from the June-17-2024 release]

Ceullar Components (37)

Processvia Protein(s)Taxonomy
plasma membraneRap guanine nucleotide exchange factor 3Homo sapiens (human)
cortical actin cytoskeletonRap guanine nucleotide exchange factor 3Homo sapiens (human)
plasma membraneRap guanine nucleotide exchange factor 3Homo sapiens (human)
microvillusRap guanine nucleotide exchange factor 3Homo sapiens (human)
endomembrane systemRap guanine nucleotide exchange factor 3Homo sapiens (human)
membraneRap guanine nucleotide exchange factor 3Homo sapiens (human)
lamellipodiumRap guanine nucleotide exchange factor 3Homo sapiens (human)
filopodiumRap guanine nucleotide exchange factor 3Homo sapiens (human)
extracellular exosomeRap guanine nucleotide exchange factor 3Homo sapiens (human)
cytosolRap guanine nucleotide exchange factor 4Homo sapiens (human)
plasma membraneRap guanine nucleotide exchange factor 4Homo sapiens (human)
membraneRap guanine nucleotide exchange factor 4Homo sapiens (human)
hippocampal mossy fiber to CA3 synapseRap guanine nucleotide exchange factor 4Homo sapiens (human)
plasma membraneRap guanine nucleotide exchange factor 4Homo sapiens (human)
chromatinLysine-specific histone demethylase 1AHomo sapiens (human)
nucleusLysine-specific histone demethylase 1AHomo sapiens (human)
chromosome, telomeric regionLysine-specific histone demethylase 1AHomo sapiens (human)
nucleusLysine-specific histone demethylase 1AHomo sapiens (human)
nucleoplasmLysine-specific histone demethylase 1AHomo sapiens (human)
transcription regulator complexLysine-specific histone demethylase 1AHomo sapiens (human)
protein-containing complexLysine-specific histone demethylase 1AHomo sapiens (human)
DNA repair complexLysine-specific histone demethylase 1AHomo sapiens (human)
spindle poleCalmodulin-1Homo sapiens (human)
extracellular regionCalmodulin-1Homo sapiens (human)
nucleusCalmodulin-1Homo sapiens (human)
nucleoplasmCalmodulin-1Homo sapiens (human)
cytoplasmCalmodulin-1Homo sapiens (human)
centrosomeCalmodulin-1Homo sapiens (human)
cytosolCalmodulin-1Homo sapiens (human)
spindle microtubuleCalmodulin-1Homo sapiens (human)
plasma membraneCalmodulin-1Homo sapiens (human)
sarcomereCalmodulin-1Homo sapiens (human)
vesicleCalmodulin-1Homo sapiens (human)
myelin sheathCalmodulin-1Homo sapiens (human)
sperm midpieceCalmodulin-1Homo sapiens (human)
voltage-gated potassium channel complexCalmodulin-1Homo sapiens (human)
protein-containing complexCalmodulin-1Homo sapiens (human)
calcium channel complexCalmodulin-1Homo sapiens (human)
catalytic complexCalmodulin-1Homo sapiens (human)
cytoplasmCalmodulin-1Homo sapiens (human)
extracellular regionHeparanaseHomo sapiens (human)
nucleusHeparanaseHomo sapiens (human)
nucleoplasmHeparanaseHomo sapiens (human)
lysosomeHeparanaseHomo sapiens (human)
lysosomal membraneHeparanaseHomo sapiens (human)
specific granule lumenHeparanaseHomo sapiens (human)
lysosomal lumenHeparanaseHomo sapiens (human)
intracellular membrane-bounded organelleHeparanaseHomo sapiens (human)
membrane raftHeparanaseHomo sapiens (human)
extracellular spaceHeparanaseHomo sapiens (human)
extracellular matrixHeparanaseHomo sapiens (human)
[Information is prepared from geneontology information from the June-17-2024 release]

Bioassays (106)

Assay IDTitleYearJournalArticle
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.
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.
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.
AID1745845Primary qHTS for Inhibitors of ATXN expression
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.
AID1296008Cytotoxic Profiling of Annotated Libraries Using Quantitative High-Throughput Screening2020SLAS discovery : advancing life sciences R & D, 01, Volume: 25, Issue:1
Cytotoxic Profiling of Annotated and Diverse Chemical Libraries Using Quantitative High-Throughput Screening.
AID1346987P-glycoprotein substrates identified in KB-8-5-11 adenocarcinoma cell line, qHTS therapeutic library screen2019Molecular pharmacology, 11, Volume: 96, Issue:5
A High-Throughput Screen of a Library of Therapeutics Identifies Cytotoxic Substrates of P-glycoprotein.
AID651635Viability Counterscreen for Primary qHTS for Inhibitors of ATXN expression
AID1346986P-glycoprotein substrates identified in KB-3-1 adenocarcinoma cell line, qHTS therapeutic library screen2019Molecular pharmacology, 11, Volume: 96, Issue:5
A High-Throughput Screen of a Library of Therapeutics Identifies Cytotoxic Substrates of P-glycoprotein.
AID1315200Binding affinity to BACE1 (unknown origin) by fluorescence titration method2016European journal of medicinal chemistry, Oct-04, Volume: 121Multi-target screening mines hesperidin as a multi-potent inhibitor: Implication in Alzheimer's disease therapeutics.
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.
AID550029Inhibition of calmodulin assessed as inhibition of calmodulin-calcium-PDE4 complex formation2011Bioorganic & medicinal chemistry, Jan-01, Volume: 19, Issue:1
Vasorelaxant effect of flavonoids through calmodulin inhibition: Ex vivo, in vitro, and in silico approaches.
AID411504Anticorpulence activity against mouse 3T3L1 cells assessed as inhibition of lipid droplet accumulation2009Bioorganic & medicinal chemistry, Jan-01, Volume: 17, Issue:1
Identification and physiological evaluation of the components from citrus fruits as potential drugs for anti-corpulence and anticancer.
AID411503Anticancer activity against human HT-29 cells after 72 hrs by MTT assay2009Bioorganic & medicinal chemistry, Jan-01, Volume: 17, Issue:1
Identification and physiological evaluation of the components from citrus fruits as potential drugs for anti-corpulence and anticancer.
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.
AID386543Stability in hank's balanced salt solution at 15 uM after 120 mins2008Bioorganic & medicinal chemistry, Apr-01, Volume: 16, Issue:7
Prediction of intestinal absorption and metabolism of pharmacologically active flavones and flavanones.
AID1315195Binding affinity to BACE1 (unknown origin) in acetate buffer at pH 4.8 at 250 nM by steady state spectrofluorimeter2016European journal of medicinal chemistry, Oct-04, Volume: 121Multi-target screening mines hesperidin as a multi-potent inhibitor: Implication in Alzheimer's disease therapeutics.
AID386551Apparent permeability across PAMPA membrane assessed as drug recovery2008Bioorganic & medicinal chemistry, Apr-01, Volume: 16, Issue:7
Prediction of intestinal absorption and metabolism of pharmacologically active flavones and flavanones.
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.
AID163449Minimum inhibitory concentration against Pseudomonas aeruginosa (CECT108)2000Bioorganic & medicinal chemistry letters, Sep-04, Volume: 10, Issue:17
Molecular topology: a useful tool for the search of new antibacterials.
AID1847366Inhibition of NDM-1 (unknown origin) using cefuroxime sodium as substrate incubated for 5 mins by UV-1800 spectrophotometric analysis2021European journal of medicinal chemistry, Nov-05, Volume: 223Recent research and development of NDM-1 inhibitors.
AID386549Apparent permeability from basolateral to apical side in human Caco-2 cells assessed as drug recovery2008Bioorganic & medicinal chemistry, Apr-01, Volume: 16, Issue:7
Prediction of intestinal absorption and metabolism of pharmacologically active flavones and flavanones.
AID1315206Inhibition of amyloid beta (25 to 35 residues) (unknown origin) aggregation at 10 uM incubated for 3 days by thioflavin T-based fluorescence spectrophotometric method relative to control2016European journal of medicinal chemistry, Oct-04, Volume: 121Multi-target screening mines hesperidin as a multi-potent inhibitor: Implication in Alzheimer's disease therapeutics.
AID1315209Antioxidant activity of the compound assessed as inhibition of fenton reaction-induced DNA strand cleavage of plasmid pcDNA Hismyc B4 at 250 uM after 1 hr by ethidium bromide staining-based agarose gel electrophoresis2016European journal of medicinal chemistry, Oct-04, Volume: 121Multi-target screening mines hesperidin as a multi-potent inhibitor: Implication in Alzheimer's disease therapeutics.
AID1315207Inhibition of amyloid beta (25 to 35 residues) (unknown origin) aggregation at 100 uM incubated for 7 days by atomic force microscopic method2016European journal of medicinal chemistry, Oct-04, Volume: 121Multi-target screening mines hesperidin as a multi-potent inhibitor: Implication in Alzheimer's disease therapeutics.
AID738326Binding affinity to recombinant heparanase catalytic stie (unknown origin) expressed in Escherichia coli BL21 (DE3) by saturation transfer difference analysis2013Bioorganic & medicinal chemistry, Apr-01, Volume: 21, Issue:7
Hit identification of novel heparanase inhibitors by structure- and ligand-based approaches.
AID206791Minimum Inhibitory concentration against Staphylococcus aureus (CECT240)2000Bioorganic & medicinal chemistry letters, Sep-04, Volume: 10, Issue:17
Molecular topology: a useful tool for the search of new antibacterials.
AID1315202Inhibition of 3 days aged amyloid beta (25 to 35 residues) (unknown origin) aggregation at 20 uM by intrinsic flavonoid fluorescence assay2016European journal of medicinal chemistry, Oct-04, Volume: 121Multi-target screening mines hesperidin as a multi-potent inhibitor: Implication in Alzheimer's disease therapeutics.
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.
AID1315208Antioxidant activity of the compound assessed as ABTS free radical scavenging activity2016European journal of medicinal chemistry, Oct-04, Volume: 121Multi-target screening mines hesperidin as a multi-potent inhibitor: Implication in Alzheimer's disease therapeutics.
AID386545Stability in hank's balanced salt solution at 15 uM after 24 hrs2008Bioorganic & medicinal chemistry, Apr-01, Volume: 16, Issue:7
Prediction of intestinal absorption and metabolism of pharmacologically active flavones and flavanones.
AID1315204Inhibition of amyloid beta (25 to 35 residues) (unknown origin) aggregation at 20 uM incubated for 3 days by 8-anilino-1-naphthalene-based fluorescence spectrophotometric method2016European journal of medicinal chemistry, Oct-04, Volume: 121Multi-target screening mines hesperidin as a multi-potent inhibitor: Implication in Alzheimer's disease therapeutics.
AID409956Inhibition of mouse brain MAOB2008Journal of medicinal chemistry, Nov-13, Volume: 51, Issue:21
Quantitative structure-activity relationship and complex network approach to monoamine oxidase A and B inhibitors.
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.
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.
AID477213Increase in insulin-stimulated [3H]2-deoxy-D-glucose uptake in mouse 3T3L1cells at 1 uM after 3 days by liquid scintillation counting relative to insulin2010Journal of natural products, Apr-23, Volume: 73, Issue:4
Homoisoflavonoids from the fibrous roots of Polygonatum odoratum with glucose uptake-stimulatory activity in 3T3-L1 adipocytes.
AID550028Inhibition of calmodulin assessed as inhibition of calmodulin-calcium-PDE1 complex formation2011Bioorganic & medicinal chemistry, Jan-01, Volume: 19, Issue:1
Vasorelaxant effect of flavonoids through calmodulin inhibition: Ex vivo, in vitro, and in silico approaches.
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.
AID1315198Binding affinity to BACE1 (unknown origin) in acetate buffer at pH 4.8 assessed as increase in lifetime species of excited tryptophan in active site at 5 uM by time-resolved fluorescence spectroscopy relative to control2016European journal of medicinal chemistry, Oct-04, Volume: 121Multi-target screening mines hesperidin as a multi-potent inhibitor: Implication in Alzheimer's disease therapeutics.
AID738327Binding affinity to recombinant heparanase catalytic stie (unknown origin) expressed in Escherichia coli BL21 (DE3) by NMR analysis2013Bioorganic & medicinal chemistry, Apr-01, Volume: 21, Issue:7
Hit identification of novel heparanase inhibitors by structure- and ligand-based approaches.
AID1515260Inhibition of LSD1 (unknown origin) by fluorescence assay2019Bioorganic & medicinal chemistry, 01-15, Volume: 27, Issue:2
Flavone-based natural product agents as new lysine-specific demethylase 1 inhibitors exhibiting cytotoxicity against breast cancer cells in vitro.
AID334635Toxicity in Salmonella Typhimurium T98 at 300 ug/plate after 72 hrs by Ames assay in presence of Ames S-9 fraction
AID409954Inhibition of mouse brain MAOA2008Journal of medicinal chemistry, Nov-13, Volume: 51, Issue:21
Quantitative structure-activity relationship and complex network approach to monoamine oxidase A and B inhibitors.
AID1503774Cytotoxicity against human HL cells assessed as cell viability at 50 uM after 72 hrs by resazurin dye based fluorescence assay relative to control2017Journal of natural products, 10-27, Volume: 80, Issue:10
Identification of Privileged Antichlamydial Natural Products by a Ligand-Based Strategy.
AID386547Apparent permeability from apical to basolateral side in human Caco-2 cells assessed as drug recovery2008Bioorganic & medicinal chemistry, Apr-01, Volume: 16, Issue:7
Prediction of intestinal absorption and metabolism of pharmacologically active flavones and flavanones.
AID682238TP_TRANSPORTER: inhibition of Fexofenadine uptake (Fexofenadine: 1? uM, Hesperidin: 50 uM) in Oatp3-expressing HeLa cells2002Clinical pharmacology and therapeutics, Jan, Volume: 71, Issue:1
Fruit juices inhibit organic anion transporting polypeptide-mediated drug uptake to decrease the oral availability of fexofenadine.
AID479391Cytotoxicity against human WS1 cells after 48 hrs by resazurin reduction assay2010Bioorganic & medicinal chemistry, May-15, Volume: 18, Issue:10
In vitro cytotoxic activity of isolated acridones alkaloids from Zanthoxylum leprieurii Guill. et Perr.
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.
AID404069In vivo antitumor activity against mouse L1210 cells
AID386542Stability in hank's balanced salt solution at 15 uM after 60 mins2008Bioorganic & medicinal chemistry, Apr-01, Volume: 16, Issue:7
Prediction of intestinal absorption and metabolism of pharmacologically active flavones and flavanones.
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.
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.
AID404067In vivo antitumor activity against mouse S180 cells
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.
AID70158Minimum inhibitory concentration against Escherichia coli (CECT405); No data2000Bioorganic & medicinal chemistry letters, Sep-04, Volume: 10, Issue:17
Molecular topology: a useful tool for the search of new antibacterials.
AID768928Inhibition of human thrombin amidolytic activity using D-Phe-Pip-Arg-pNA as substrate at 0.1 to 1000 uM 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.
AID1315205Inhibition of amyloid beta (25 to 35 residues) (unknown origin) aggregation at 20 uM incubated for 3 days by thioflavin T-based fluorescence spectrophotometric method2016European journal of medicinal chemistry, Oct-04, Volume: 121Multi-target screening mines hesperidin as a multi-potent inhibitor: Implication in Alzheimer's disease therapeutics.
AID738328Binding affinity to recombinant heparanase catalytic stie (unknown origin) expressed in Escherichia coli BL21 (DE3) by surface plasmon resonance assay2013Bioorganic & medicinal chemistry, Apr-01, Volume: 21, Issue:7
Hit identification of novel heparanase inhibitors by structure- and ligand-based approaches.
AID1315201Inhibition of BACE1 (unknown origin) at 500 nM incubated for 2 hrs by FRET assay relative to control2016European journal of medicinal chemistry, Oct-04, Volume: 121Multi-target screening mines hesperidin as a multi-potent inhibitor: Implication in Alzheimer's disease therapeutics.
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.
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.
AID162896Minimum inhibitory concentration against Proteus mirabilis (CECT170); No data2000Bioorganic & medicinal chemistry letters, Sep-04, Volume: 10, Issue:17
Molecular topology: a useful tool for the search of new antibacterials.
AID386541Stability in hank's balanced salt solution at 15 uM after 20 mins2008Bioorganic & medicinal chemistry, Apr-01, Volume: 16, Issue:7
Prediction of intestinal absorption and metabolism of pharmacologically active flavones and flavanones.
AID334637Antimutagenic activity in Salmonella Typhimurium T98 assessed as inhibition of 2-aminoanthracene-induced mutation at 600 ug/plate after 72 hrs in presence of Ames S-9 fraction
AID386544Stability in hank's balanced salt solution at 15 uM after 180 mins2008Bioorganic & medicinal chemistry, Apr-01, Volume: 16, Issue:7
Prediction of intestinal absorption and metabolism of pharmacologically active flavones and flavanones.
AID1503775Antichlamydial activity against Chlamydia pneumoniae K7 infected in HL cells assessed as chlamydial inhibition at 50 uM after 70 hrs by fluorescent microscopic analysis2017Journal of natural products, 10-27, Volume: 80, Issue:10
Identification of Privileged Antichlamydial Natural Products by a Ligand-Based Strategy.
AID334634Toxicity in Salmonella Typhimurium T98 at 600 ug/plate after 72 hrs by Ames assay in presence of Ames S-9 fraction
AID1315199Binding affinity to BACE1 (unknown origin) in PBS at pH 7.4 assessed as increase in lifetime species of excited tryptophan in active site at 5 uM by time-resolved fluorescence spectroscopy2016European journal of medicinal chemistry, Oct-04, Volume: 121Multi-target screening mines hesperidin as a multi-potent inhibitor: Implication in Alzheimer's disease therapeutics.
AID1315197Binding affinity to BACE1 (unknown origin) in PBS at pH 7.4 up to 10 uM by steady state spectrofluorimeter2016European journal of medicinal chemistry, Oct-04, Volume: 121Multi-target screening mines hesperidin as a multi-potent inhibitor: Implication in Alzheimer's disease therapeutics.
AID1315194Binding affinity to BACE1 (unknown origin) in acetate buffer at pH 4.8 at 0.25 to 5 uM by steady state spectrofluorimeter2016European journal of medicinal chemistry, Oct-04, Volume: 121Multi-target screening mines hesperidin as a multi-potent inhibitor: Implication in Alzheimer's disease therapeutics.
AID479390Cytotoxicity against human DLD1 cells after 48 hrs by resazurin reduction assay2010Bioorganic & medicinal chemistry, May-15, Volume: 18, Issue:10
In vitro cytotoxic activity of isolated acridones alkaloids from Zanthoxylum leprieurii Guill. et Perr.
AID404070In vivo antitumor activity against mouse CA-755 cells
AID479389Cytotoxicity against human A549 cells after 48 hrs by resazurin reduction assay2010Bioorganic & medicinal chemistry, May-15, Volume: 18, Issue:10
In vitro cytotoxic activity of isolated acridones alkaloids from Zanthoxylum leprieurii Guill. et Perr.
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.
AID1315203Inhibition of amyloid beta (25 to 35 residues) (unknown origin) aggregation at 20 uM incubated for 3 days by intrinsic flavonoid fluorescence assay2016European journal of medicinal chemistry, Oct-04, Volume: 121Multi-target screening mines hesperidin as a multi-potent inhibitor: Implication in Alzheimer's disease therapeutics.
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.
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.
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.
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
AID1315196Binding affinity to BACE1 (unknown origin) in PBS at pH 7.4 up to 4 uM by steady state spectrofluorimeter2016European journal of medicinal chemistry, Oct-04, Volume: 121Multi-target screening mines hesperidin as a multi-potent inhibitor: Implication in Alzheimer's disease therapeutics.
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.
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.
AID1698174Inhibition of anti-human CD3/CD28/mAbs-stimulated human T-cell proliferation at 30 uM after 72 hrs by CFSE staining based flow cytometric analysis
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
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.
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.
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.
AID1347411qHTS to identify inhibitors of the type 1 interferon - major histocompatibility complex class I in skeletal muscle: primary screen against the NCATS Mechanism Interrogation Plate v5.0 (MIPE) Libary2020ACS 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.
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.
[information is prepared from bioassay data collected from National Library of Medicine (NLM), extracted Dec-2023]

Research

Studies (1,823)

TimeframeStudies, This Drug (%)All Drugs %
pre-1990131 (7.19)18.7374
1990's97 (5.32)18.2507
2000's298 (16.35)29.6817
2010's835 (45.80)24.3611
2020's462 (25.34)2.80
[information is prepared from research data collected from National Library of Medicine (NLM), extracted Dec-2023]

Market Indicators

Research Demand Index: 45.04

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 strong demand-to-supply ratio for research on this compound.

MetricThis Compound (vs All)
Research Demand Index45.04 (24.57)
Research Supply Index7.61 (2.92)
Research Growth Index5.12 (4.65)
Search Engine Demand Index133.07 (26.88)
Search Engine Supply Index3.60 (0.95)

This Compound (45.04)

All Compounds (24.57)

Study Types

Publication TypeThis drug (%)All Drugs (%)
Trials0 (0.00%)5.53%
Trials119 (6.29%)5.53%
Reviews0 (0.00%)6.00%
Reviews83 (4.38%)6.00%
Case Studies0 (0.00%)4.05%
Case Studies7 (0.37%)4.05%
Observational0 (0.00%)0.25%
Observational7 (0.37%)0.25%
Other6 (100.00%)84.16%
Other1,677 (88.59%)84.16%
[information is prepared from research data collected from National Library of Medicine (NLM), extracted Dec-2023]