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An In Vitro System for Measuring Genotoxicity Mediated by Human CYP3A4 in Saccharomyces cerevisiae

机译:一种体外系统,用于测量人CYP3A4酿酒酵母中的人CYP3A4介导的遗传毒性

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摘要

P450 activity is required to metabolically activate many chemical carcinogens, rendering them highly genotoxic. CYP3A4 is the most abundantly expressed P450 enzyme in the liver, accounting for most drug metabolism and constituting 50% of all hepatic P450 activity. CYP3A4 is also expressed in extrahepatic tissues, including the intestine. However, the role of CYP3A4 in activating chemical carcinogens into potent genotoxins is unclear. To facilitate efforts to determine whether CYP3A4, per se, can activate carcinogens into potent genotoxins, we expressed human CYP3A4 in the DNA-repair mutant (rad4 rad51) strain of budding yeast Saccharomyces cerevisiae and tested the novel, recombinant yeast strain for ability to report CYP3A4-mediated genotoxicity of a well-known genotoxin, aflatoxin B1 (AFB(1)). Yeast microsomes containing human CYP3A4, but not those that do not contain CYP3A4, were active in hydroxylation of diclofenac, a known CYP3A4 substrate drug, a result confirming CYP3A4 activity in the recombinant yeast strain. In cells exposed to AFB(1), the expression of CYP3A4 supported DNA adduct formation, chromosome rearrangements, cell death, and expression of the large subunit of ribonucleotide reductase, Rnr3, a marker of DNA damage. Expression of CYP3A4 also conferred sensitivity in rad4 rad51 mutants exposed to colon carcinogen, 2-amino-3,8-dimethylimidazo[4,5-f] quinoxaline (MeIQx). These data confirm the ability of human CYP3A4 to mediate the genotoxicity of AFB(1), and illustrate the usefulness of the CYP3A4-expressing, DNA-repair mutant yeast strain for screening other chemical compounds that are CYP3A4 substrates, for potential genotoxicity. (C) 2017 Wiley Periodicals, Inc.
机译:P450活性需要代谢激活许多化学致癌物质,使它们高度遗传毒性。 CYP3A4是肝脏中最丰富的P450酶,占大多数药物代谢,并构成所有肝P450活性的50%。 CYP3A4也表达于包括肠道的嗜胃组织。然而,CYP3A4在将化学致癌物激活成有效的遗传毒素中的作用尚不清楚。为了促进努力来确定CYP3A4本身是否可以将致癌物激活到有效的遗传毒素中,我们在DNA修复突变体(RAD4 RAD51)芽孢芽酵母酿酒酵母(RAD4 RAD51)中表达人CYP3A4并测试了新的重组酵母菌株,以报告的能力CYP3A4介导的众所周知的遗传毒素,黄曲霉毒素B1(AFB(1))介导的遗传毒性。含有人CYP3A4的酵母微粒,但不是不含CYP3A4的酵母微粒是活性在双氯芬酸的羟基化中的活性,该CYP3A4底物药物,其结果证实了重组酵母菌株中的CYP3A4活性。在暴露于AFB(1)的细胞中,CYP3A4支持的DNA加合物形成,染色体重排,细胞死亡和核糖核苷酸还原酶RNR3,DNA损伤标记物的表达。 CYP3A4的表达还赋予暴露于结肠癌的RAD4RAD51突变体中的敏感性,2-氨基-3,8-二甲基咪唑[4,5-F]喹喔啉(Meiqx)。这些数据证实人CYP3A4介导AFB(1)的遗传毒性的能力,并说明了表达CYP3A4的有用性DNA修复突变体酵母抑制,用于筛选作为潜在遗传毒性的CYP3A4基材的其他化合物。 (c)2017 Wiley期刊,Inc。

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