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细胞色素P450 3A基因敲除小鼠中咪达唑仑的代谢可归因于CYP2C酶的上调。

Midazolam metabolism in cytochrome P450 3A knockout mice can be attributed to up-regulated CYP2C enzymes.

作者信息

van Waterschoot Robert A B, van Herwaarden Antonius E, Lagas Jurjen S, Sparidans Rolf W, Wagenaar Els, van der Kruijssen Cornelia M M, Goldstein Joyce A, Zeldin Darryl C, Beijnen Jos H, Schinkel Alfred H

机构信息

Division of Experimental Therapy, The Netherlands Cancer Institute, Plesmanlaan 121, 1066 CX Amsterdam, The Netherlands.

出版信息

Mol Pharmacol. 2008 Mar;73(3):1029-36. doi: 10.1124/mol.107.043869. Epub 2007 Dec 21.

Abstract

The cytochrome P450 3A (CYP3A) enzymes represent one of the most important drug-metabolizing systems in humans. Recently, our group has generated cytochrome P450 3A knockout mice to study this drug-handling system in vivo. In the present study, we have characterized the Cyp3a knockout mice by studying the metabolism of midazolam, one of the most widely used probes to assess CYP3A activity. We expected that the midazolam metabolism would be severely reduced in the absence of CYP3A enzymes. We used hepatic and intestinal microsomal preparations from Cyp3a knockout and wild-type mice to assess the midazolam metabolism in vitro. In addition, in vivo metabolite formation was determined after intravenous administration of midazolam. We were surprised to find that our results demonstrated that there is still marked midazolam metabolism in hepatic (but not intestinal) microsomes from Cyp3a knockout mice. Accordingly, we found comparable amounts of midazolam as well as its major metabolites in plasma after intravenous administration in Cyp3a knockout mice compared with wild-type mice. These data suggested that other hepatic cytochrome P450 enzymes could take over the midazolam metabolism in Cyp3a knockout mice. We provide evidence that CYP2C enzymes, which were found to be up-regulated in Cyp3a knockout mice, are primarily responsible for this metabolism and that several but not all murine CYP2C enzymes are capable of metabolizing midazolam to its 1'-OH and/or 4-OH derivatives. These data illustrate interesting compensatory changes that may occur in Cyp3a knockout mice. Such flexible compensatory interplay between functionally related detoxifying systems is probably essential to their biological role in xenobiotic protection.

摘要

细胞色素P450 3A(CYP3A)酶是人体最重要的药物代谢系统之一。最近,我们小组培育出了细胞色素P450 3A基因敲除小鼠,以在体内研究这一药物处理系统。在本研究中,我们通过研究咪达唑仑的代谢来对Cyp3a基因敲除小鼠进行特征描述,咪达唑仑是评估CYP3A活性最广泛使用的探针之一。我们预期在缺乏CYP3A酶的情况下,咪达唑仑的代谢会严重减少。我们使用来自Cyp3a基因敲除小鼠和野生型小鼠的肝微粒体及肠微粒体制剂在体外评估咪达唑仑的代谢。此外,在静脉注射咪达唑仑后测定体内代谢物的形成。我们惊讶地发现,我们的结果表明Cyp3a基因敲除小鼠的肝微粒体(而非肠微粒体)中仍有显著的咪达唑仑代谢。因此,我们发现在Cyp3a基因敲除小鼠中静脉注射后,其血浆中咪达唑仑及其主要代谢物的含量与野生型小鼠相当。这些数据表明,其他肝细胞色素P450酶可以在Cyp3a基因敲除小鼠中接管咪达唑仑的代谢。我们提供的证据表明,在Cyp3a基因敲除小鼠中被发现上调的CYP2C酶主要负责这种代谢,并且几种但并非所有的小鼠CYP2C酶都能够将咪达唑仑代谢为其1'-OH和/或4-OH衍生物。这些数据说明了Cyp3a基因敲除小鼠中可能发生的有趣的代偿性变化。这种功能相关的解毒系统之间灵活的代偿性相互作用可能对它们在异源物保护中的生物学作用至关重要。

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