利用基于反应性的化学蛋白质组学平台绘制环境化学物质的蛋白质组靶标。

Daniel Medina-Cleghorn, Leslie A Bateman, Breanna Ford, Ann Heslin, Karl J Fisher, Esha D Dalvie, Daniel K Nomura
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引用次数: 35

摘要

在我们的环境中,我们接触到越来越多的化学物质,其中大多数还没有被描述出它们的毒理学潜力或机制。在这里,我们使用化学蛋白质组学平台来绘制环境化学物质的半胱氨酸反应性,使用基于反应性的探针来挖掘蛋白质组中的高反应热点。我们表明,环境污染物如一甲基larson酸和广泛使用的农药如百菌清和氯丁具有共同的反应性与一组独特的蛋白质。这些蛋白中有许多参与关键的代谢过程,这表明这些靶点可能对环境亲电试剂特别敏感。我们发现广泛使用的杀菌剂百菌清特异性抑制几种参与脂肪酸代谢和能量学的代谢酶,导致小鼠脂质代谢失调。我们的研究结果强调了使用基于反应性的化学蛋白质组学平台来揭示环境化学品毒性的新机制见解的实用性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Mapping Proteome-Wide Targets of Environmental Chemicals Using Reactivity-Based Chemoproteomic Platforms.

We are exposed to a growing number of chemicals in our environment, most of which have not been characterized in terms of their toxicological potential or mechanisms. Here, we employ a chemoproteomic platform to map the cysteine reactivity of environmental chemicals using reactivity-based probes to mine for hyper-reactive hotspots across the proteome. We show that environmental contaminants such as monomethylarsonous acid and widely used pesticides such as chlorothalonil and chloropicrin possess common reactivity with a distinct set of proteins. Many of these proteins are involved in key metabolic processes, suggesting that these targets may be particularly sensitive to environmental electrophiles. We show that the widely used fungicide chlorothalonil specifically inhibits several metabolic enzymes involved in fatty acid metabolism and energetics, leading to dysregulated lipid metabolism in mice. Our results underscore the utility of using reactivity-based chemoproteomic platforms to uncover novel mechanistic insights into the toxicity of environmental chemicals.

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来源期刊
Chemistry & biology
Chemistry & biology 生物-生化与分子生物学
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审稿时长
4-8 weeks
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