首页> 外文期刊>Mutation Research: International Journal on Mutagenesis, Chromosome Breakage and Related Subjects >Understanding the role of xenobiotic-metabolism in chemical carcinogenesis using gene knockout mice.
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Understanding the role of xenobiotic-metabolism in chemical carcinogenesis using gene knockout mice.

机译:使用基因敲除小鼠了解异生代谢在化学致癌作用中的作用。

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摘要

Most chemical carcinogens require metabolic activation to electrophilic metabolites that are capable of binding to DNA and causing gene mutations. Carcinogen metabolism is carried out by large groups of xenobiotic-metabolizing enzymes that include the phase I cytochromes P450 (P450) and microsomal epoxide hydrolase, and various phase II transferase enzymes. It is extremely important to determine the role P450s play in the carcinogenesis and to establish if they are the rate limiting and critical interface between the chemical and its biological activities. The latter is essential in order to validate the use of rodent models to test safety of chemicals in humans. Since there are marked species differences in expressions and catalytic activities of the multiple P450 forms that activate carcinogens, this validation process becomes especially difficult. To address the role of P450s in whole animal carcinogenesis, mice were produced that lack the P450s known to catalyze carcinogen activation. Mouse lines having disrupted genes encoding the P450s CYP1A2, CYP2E1, and CYP1B1 were developed. Mice lacking expression of microsomal epoxide hydrolase (mEH) and NADPH-quinone oxidoreductase (NQO1) were also made. All of these mice exhibit no gross abnormal phenotypes, suggesting that the xenobiotic-metabolizing enzymes have no critical roles in mammalian development and physiological homeostasis. This explains the occurrence of polymorphisms in xenobiotic-metabolizing enzymes among humans and other mammalian species. However, these null mice do show differences in sensitivities to acute chemical toxicities, thus establishing the importance of xenobiotic metabolism in activation pathways that lead to cell death. Rodent bioassays using null mice and known genotoxic carcinogens should establish whether these enzymes are required for carcinogenesis in an intact animal model. These studies will also provide a framework for the production of transgenic mice and carcinogen bioassay protocols that may be more predictive for identifying the human carcinogens and validate the molecular epidemiological studies ongoing in humans that seek to establish a role for polymorphisms in cancer risk.
机译:大多数化学致癌物都需要代谢活化为亲电子代谢物,这些亲电子代谢物能够与DNA结合并引起基因突变。致癌物质的代谢是通过大量异种生物代谢酶进行的,这些酶包括I相细胞色素P450(P450)和微粒体环氧化物水解酶,以及各种II相转移酶。确定P450在致癌作用中的作用,并确定它们是否是化学及其生物学活性之间的限速和关键界面,这至关重要。后者对于验证使用啮齿动物模型来测试人类化学药品的安全性至关重要。由于激活致癌物的多种P450形式在表达和催化活性上存在明显的物种差异,因此该验证过程特别困难。为了解决P450在整个动物致癌作用中的作用,所产生的小鼠缺乏已知能催化致癌物活化的P450。已开发出具有编码P450 CYP1A2,CYP2E1和CYP1B1的基因被破坏的小鼠品系。还制备了缺乏微粒体环氧水解酶(mEH)和NADPH-醌氧化还原酶(NQO1)表达的小鼠。所有这些小鼠均未表现出明显的异常表型,这表明异种代谢酶在哺乳动物发育和生理稳态中没有关键作用。这解释了人类和其他哺乳动物物种中异种代谢酶中多态性的发生。但是,这些空小鼠的确表现出对急性化学毒性的敏感性不同,因此确立了异源生物代谢在导致细胞死亡的激活途径中的重要性。使用无效小鼠和已知的遗传毒性致癌物进行的啮齿动物生物测定法应确定在完整动物模型中是否需要这些酶来致癌。这些研究还将为转基因小鼠和致癌物生物测定方法的生产提供一个框架,这些框架对于鉴定人类致癌物和验证正在进行的人类流行病学研究具有更大的预测作用,这些研究旨在确定多态性在癌症风险中的作用。

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