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首页> 外文期刊>OMICS: A journal of integrative biology >Insights into the Mechanisms of Toxicity and Tolerance to the Agricultural Fungicide Mancozeb in Yeast, as Suggested by a Chemogenomic Approach
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Insights into the Mechanisms of Toxicity and Tolerance to the Agricultural Fungicide Mancozeb in Yeast, as Suggested by a Chemogenomic Approach

机译:洞察毒性和机制农业杀菌剂代森锰锌宽容在酵母Chemogenomic方法建议

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摘要

Saccharomyces cerevisiae was used to uncover the mechanisms underlying tolerance and toxicity of the agricultural fungicide mancozeb, linked to cancer and Parkinson's disease development. Chemogenomics screening of a yeast deletion mutant collection revealed 286 genes that provide protection against mancozeb toxicity. The most significant Gene Ontology (GO) terms enriched in this dataset are associated to transcriptional machinery, vacuolar organization and biogenesis, intracellular trafficking, and cellular pH regulation. Clustering based on physical and genetic interactions further highlighted the role of oxidative stress response, protein degradation and carbohydrate/energy metabolism in mancozeb stress tolerance. Mancozeb was found to act in yeast as a thiolreactive compound, but not as a free radical or reative oxygen species (ROS) inducer, leading to massive oxidation of protein cysteins, consistent with the requirement of genes involved in glutathione biosynthesis and reduction and in protein degradation to provide mancozeb resistance. The identification of Botrytis cinerea homologues of yeast mancozeb tolerance determinants is expected to guide studies on mancozeb mechanisms of action and tolerance in phytopathogenic fungi. The generated networks of protein-protein associations of yeast mancozeb tolerance determinants and their human orthologues share a high degree of similarity. This toxicogenomics analysis may, thus, increase the understanding of mancozeb toxicity and adaptation mechanisms in humans.
机译:酿酒酵母是用来揭示宽容和毒性机制农业杀菌剂代森锰锌,有关癌症和帕金森病的发展。Chemogenomics筛选酵母的删除突变收集了286个基因防止代森锰锌毒性。富含重要基因本体论(去)条款这个数据集相关转录机械、空泡的组成和生物转化,细胞内贩卖,pH值和细胞监管。遗传相互作用进一步凸显了角色氧化应激反应、蛋白质降解和碳水化合物/代森锰锌的能量代谢强调宽容。酵母作为thiolreactive化合物,但不作为自由基(ROS)或reative氧物种诱导物,导致大量氧化蛋白质cysteins,符合要求参与谷胱甘肽的生物合成和基因减少和蛋白质降解提供代森锰锌阻力。葡萄孢菌酵母代森锰锌的同系物公差决定因素预计将指南代森锰锌行动和机制研究植物病原真菌的宽容。的蛋白质网络协会的酵母代森锰锌公差决定因素和它们的人类orthologues有着高度的相似性。这toxicogenomics分析可能,因此,增加代森锰锌毒性和的理解人类的适应机制。

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