Metabolism of apigenin by rat liver phase I and phase II enzymes and by isolated perfused rat liver

被引:127
作者
Gradolatto, A [1 ]
Canivenc-Lavier, MC [1 ]
Basly, JP [1 ]
Siess, MH [1 ]
Teyssier, C [1 ]
机构
[1] INRA, Unite Mixte Rech Toxicol Alimentaire, F-21065 Dijon, France
关键词
D O I
10.1124/dmd.32.1.58
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
The metabolism of apigenin, a low estrogenic flavonoid phytochemical, was investigated in rat using liver models both in vitro (subcellular fractions) and ex vivo (isolated perfused liver). In vitro, phase I metabolism led to the formation of three monohydroxylated derivatives: luteolin which was the major metabolite (K-m = 22.5 +/- 1.5 muM; V-max = 5.605 +/- 0.090 nmol/min/mg protein, means +/- S. E. M.), scutellarein, and iso-scutellarein. These oxidative pathways were mediated by cytochrome P450 monooxygenases (P450s). The use of P450 inhibitors and inducers showed that CYP1A1, CYP2B, and CYP2E1 are involved. In vitro studies of phase II metabolism indicated that apigenin underwent conjugation giving three monoglucuronoconjugates and one monosulfoconjugate. Luteolin led to the formation of four monoglucuronoconjugates, two sulfoconjugates, and one methylconjugate identified as diosmetin. Ex vivo during the apigenin perfusion of an isolated rat liver, none of the phase I metabolites could be recovered. In contrast, two monoglucuronoconjugates and one of the sulfoconjugates of apigenin already identified in vitro were recovered. Moreover, two new derivatives were isolated and identified as a diglucuronoconjugate and a glucuronosulfoconjugate. This work provides new data about the metabolism of apigenin and shows the interest value of using various experimental models in metabolic studies.
引用
收藏
页码:58 / 65
页数:8
相关论文
共 39 条
[1]  
ABE K, 1990, CHEM PHARM BULL, V38, P208, DOI 10.1248/cpb.38.208
[2]  
Allen SW, 2001, DRUG METAB DISPOS, V29, P1074
[3]   Dietary agents in cancer prevention: flavonoids and isoflavonoids [J].
Birt, DF ;
Hendrich, S ;
Wang, WQ .
PHARMACOLOGY & THERAPEUTICS, 2001, 90 (2-3) :157-177
[4]   Regioselectivity of phase 11 metabolism of luteolin and quercetin by UDP-glucuronosyl transferases [J].
Boersma, MG ;
van der Woude, H ;
Bogaards, J ;
Boeren, S ;
Vervoort, J ;
Cnubben, NHP ;
van Iersel, MLPS ;
van Bladeren, PJ ;
Rietjens, IMCM .
CHEMICAL RESEARCH IN TOXICOLOGY, 2002, 15 (05) :662-670
[5]  
BOUTIN JA, 1993, DRUG METAB DISPOS, V21, P1157
[6]   Detection of weak estrogenic flavonoids using a recombinant yeast strain and a modified MCF7 cell proliferation assay [J].
Breinholt, V ;
Larsen, JC .
CHEMICAL RESEARCH IN TOXICOLOGY, 1998, 11 (06) :622-629
[7]   Estrogenic activity of flavonoids in mice. The importance of estrogen receptor distribution, metabolism and bioavailability [J].
Breinholt, V ;
Hossaini, A ;
Svendsen, GW ;
Brouwer, C ;
Nielsen, SE .
FOOD AND CHEMICAL TOXICOLOGY, 2000, 38 (07) :555-564
[8]   In vitro investigation of cytochrome P450-mediated metabolism of dietary flavonoids [J].
Breinholt, VM ;
Offord, EA ;
Brouwer, C ;
Nielsen, SE ;
Brosen, K ;
Friedberg, T .
FOOD AND CHEMICAL TOXICOLOGY, 2002, 40 (05) :609-616
[9]   EVIDENCE FOR TANGERETIN O-DEMETHYLATION BY RAT AND HUMAN LIVER-MICROSOMES [J].
CANIVENCLAVIER, MC ;
BRUNOLD, C ;
SIESS, MH ;
SUSCHETET, M .
XENOBIOTICA, 1993, 23 (03) :259-266
[10]   Sex steroid receptor regulation by genistein in the prepubertal rat uterus [J].
Cotroneo, MS ;
Wang, J ;
Eltoum, IEA ;
Lamartiniere, CA .
MOLECULAR AND CELLULAR ENDOCRINOLOGY, 2001, 173 (1-2) :135-145