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Population-Based Analysis of DNA Damage and Epigenetic Effects of 1,3-Butadiene in the Mouse

机译:小鼠1,3-丁二烯的DNA损伤和表观遗传效应的基于人口分析

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摘要

Metabolism of 1,3-butadiene, a known human and rodent carcinogen, results in formation of reactive epoxides, a key event in its carcinogenicity. Although mice exposed to 1,3-butadiene present DNA adducts in all tested tissues, carcinogenicity is limited to liver, lung, and lymphoid tissues. Previous studies demonstrated that strain- and tissue-specific epigenetic effects in response to 1,3-butadiene exposure may influence susceptibly to DNA damage and serve as a potential mechanism of tissue-specific carcinogenicity. This study aimed to investigate interindividual variability in the effects of 1,3-butadiene using a population-based mouse model. Male mice from 20 Collaborative Cross strains were exposed to 0 or 635 ppm 1,3-butadiene by inhalation (6 h/day, 5 days/week) for 2 weeks. We evaluated DNA damage and epigenetic effects in target (lung and liver) and nontarget (kidney) tissues of 1,3-butadiene-induced carcinogenesis. DNA damage was assessed by measuring N-7-(2,3,4-trihydroxybut-1-yl)-guanine (THB-Gua) adducts. To investigate global histone modification alterations, we evaluated the trimethylation and acetylation of histones H3 and H4 across tissues. Changes in global cytosine DNA methylation were evaluated from the levels of methylation of LINE-1 and SINE B1 retrotransposons. We quantified the degree of variation across strains, deriving a chemical-specific human variability factor to address population variability in carcinogenic risk, which is largely ignored in current cancer risk assessment practice. Quantitative trait locus mapping identified four candidate genes related to chromatin remodeling whose variation was associated with interstrain susceptibility. Overall, this study uses 1,3-butadiene to demonstrate how the Collaborative Cross mouse population can be used to identify the mechanisms for and quantify the degree of interindividual variability in tissue-specific effects that are relevant to chemically induced carcinogenesis.
机译:1,3-丁二烯,已知的人和啮齿动物致癌物的代谢导致反应性环氧化物的形成,其致癌性的关键事件。尽管在所有测试组织中暴露于1,3-丁二烯的小鼠,但致癌性限于肝,肺和淋巴组织。以前的研究表明,响应于1,3-丁二烯暴露的应变和组织特异性的表观遗传效应可能会影响DNA损伤,并用作组织特异性致癌性的潜在机制。本研究旨在使用基于群体的小鼠模型来研究1,3-丁二烯效应的效应的细胞性变异性。通过吸入(6 h /日,5天/周)2周暴露于0或635ppm 1,3-丁二烯的雄性小鼠。我们评估了1,3-丁二烯诱导的致癌癌的靶(肺和肝脏)和Nontarget(肾脏)组织中的DNA损伤和表观遗传效应。通过测量N-7-(2,3,4-三羟基-1-基) - 副(THB-GUA)加合物来评估DNA损伤。为了研究全球组蛋白改性改变,我们在组织中评估了组蛋白H3和H4的三甲基化和乙酰化。从线-1和正弦B1回复转移的甲基化水平评价全局胞嘧啶DNA甲基化的变化。我们量化了菌株的变化程度,导出了化学特异性人的可变性因素,以满足致癌风险的群体变异性,这在目前的癌症风险评估实践中主要被忽视。定量性状轨迹映射鉴定了与染色质重塑有关的四种候选基因,其变异与易感性有关。总体而言,该研究使用1,3-丁二烯来证明协作跨小鼠群体的方式如何用于识别和量化与化学诱导的致癌作用相关的组织特异性效应中的细胞特异性变异程度的机制。

著录项

  • 来源
    《Chemical research in toxicology》 |2019年第5期|共12页
  • 作者单位

    Texas A&

    M Univ Coll Vet Med &

    Biomed Sci Dept Vet Integrat Biosci College Stn TX 77843 USA;

    US FDA Natl Ctr Toxicol Res Div Biochem Toxicol Jefferson AR 72079 USA;

    US FDA Natl Ctr Toxicol Res Div Biochem Toxicol Jefferson AR 72079 USA;

    Texas A&

    M Univ Coll Vet Med &

    Biomed Sci Dept Vet Integrat Biosci College Stn TX 77843 USA;

    Texas A&

    M Univ Coll Vet Med &

    Biomed Sci Dept Vet Integrat Biosci College Stn TX 77843 USA;

    Univ N Carolina Dept Environm Sci &

    Engn Chapel Hill NC 27516 USA;

    Texas A&

    M Univ Coll Med Dept Mol &

    Cellular Med College Stn TX 77843 USA;

    North Carolina State Univ Bioinformat Res Ctr Raleigh NC 27695 USA;

    Texas A&

    M Univ Coll Med Dept Mol &

    Cellular Med College Stn TX 77843 USA;

    Texas A&

    M Univ Coll Vet Med &

    Biomed Sci Dept Vet Integrat Biosci College Stn TX 77843 USA;

    US FDA Natl Ctr Toxicol Res Div Biochem Toxicol Jefferson AR 72079 USA;

    Texas A&

    M Univ Coll Vet Med &

    Biomed Sci Dept Vet Integrat Biosci College Stn TX 77843 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 毒物学(毒理学);
  • 关键词

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