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Gene-environment interactions between DNA repair polymorphisms and exposure to the carcinogen vinyl chloride

机译:DNA修复多态性与致癌物氯乙烯暴露之间的基因-环境相互作用

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摘要

We have recently suggested that polymorphisms in metabolism and repair pathways may play a role in modulating the effects of exposure to the carcinogen vinyl chloride in the production of biomarkers of its mutagenic damage. The aim of the present study was to extend these observations by examining gene-environment interactions between several common polymorphisms in the DNA repair genes XRCC1 and ERCC2/XPD and vinyl chloride exposure on the production of vinyl chloride-induced biomarkers of mutation. A cohort of 546 French vinyl chloride workers were genotyped for the XRCC1 codon 194 (Arg>Trp; rs1799782), 280 (Arg>His; rs25489) and 399 (Arg>Gln; rs25487) polymorphisms and the ERCC2/XPD codon 312 (Asp>Asn; rs1799793) and 751 (Lys>Gln; rs13181) polymorphisms. The results demonstrated a statistically significant allele dosage effect of the XRCC1 399 variant on the production of the vinyl chloride-induced mutant p53 biomarker, even after controlling for confounders including cumulative vinyl chloride exposure (p=0.03), with a potentially supramultiplicative gene-environment interaction. In addition, the results demonstrate statistically significant allele dosage effects of the ERCC2/XPD 312 and 751 variants on the production of the vinyl chloride-induced mutant ras-p21 biomarker, even after controlling for con-founders including cumulative vinyl chloride exposure (p< 0.0001 and p = 0.0006, respectively), with a potentially supramultiplicative gene-environment interaction for the codon 751 allele. Finally, the results suggest potential supramultiplicative gene-gene interactions between CYP2E1 (c2 allele; rs3813867) and ERCC2/XPD polymorphisms that are consistent with the proposed carcinogenic pathway for vinyl chloride, which requires metabolic activation by CYP2E1 to reactive intermediates that form DNA adducts that, if not removed by DNA repair mechanisms, result in oncogenic mutations.
机译:我们最近提出,代谢和修复途径中的多态性可能在致癌性氯乙烯的致突变性生物标志物的产生中调节暴露于致癌物氯乙烯的影响。本研究的目的是通过检查DNA修复基因XRCC1和ERCC2 / XPD中几种常见多态性与氯乙烯暴露对氯乙烯诱导的突变生物标志物产生之间的基因环境相互作用来扩展这些观察结果。一组546名法国氯乙烯工作人员的基因型分别为XRCC1密码子194(Arg> Trp; rs1799782),280(Arg> His; rs25489)和399(Arg> Gln; rs25487)多态性以及ERCC2 / XPD密码子312(Asp > Asn; rs1799793)和751(Lys> Gln; rs13181)多态性。结果表明,即使在控制包括累积的氯乙烯暴露在内的混杂因素(p = 0.03)之后,XRCC1 399变体对氯乙烯诱导的突变体p53生物标志物的产生具有统计学意义的等位基因剂量影响,且具有潜在的超增殖基因环境。相互作用。此外,即使在控制包括累积氯乙烯暴露在内的混杂因素后,结果也证明ERCC2 / XPD 312和751变体对氯乙烯诱导的突变型ras-p21生物标志物的产生具有统计学意义的等位基因剂量影响。分别为0.0001和p = 0.0006),并且密码子751等位基因具有潜在的超乘性基因-环境相互作用。最后,结果表明CYP2E1(c2等位基因; rs3813867)和ERCC2 / XPD多态性之间潜在的超倍增的基因-基因相互作用与拟议的氯乙烯致癌途径一致,该途径需要CYP2E1代谢活化反应性中间体,从而形成DNA加合物, ,如果不能通过DNA修复机制去除,则会导致致癌突变。

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  • 来源
    《Biomarkers》 |2009年第3期|148-155|共8页
  • 作者单位

    Department of Environmental Health Sciences, Mailman School of Public Health, Columbia University, New York, NY, USA;

    Unite de Recherche Virus des Hepatites et Pathologies Associee, INSERM, Lyon, France;

    Department of Environmental Health Sciences, Mailman School of Public Health, Columbia University, New York, NY, USA;

    Department of Environmental Health Sciences, Mailman School of Public Health, Columbia University, New York, NY, USA;

    Department of Environmental Health Sciences, Mailman School of Public Health, Columbia University, New York, NY, USA;

    Department of Environmental Health Sciences, Mailman School of Public Health, Columbia University, New York, NY, USA UIC School of Public Health, Chicago, IL, USA School of Public Health, University of Illinois at Chicago, 1603 West Taylor Street, Room 1145, Chicago, IL60612, USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    gene-environment interaction; polymorphisms; mutations; biomarkers; cancer;

    机译:基因-环境相互作用;多态性突变生物标志物癌症;

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