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YBP1 and Its Homologue YBP2/YBH1 Influence Oxidative-Stress Tolerance by Nonidentical Mechanisms in Saccharomyces cerevisiae

机译:YBP1及其同源物YBP2 / YBH1通过酿酒酵母的不同机制影响抗氧化能力。

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In the yeast Saccharomyces cerevisiae, the transcription factor Yap1p is a central determinant of resistance to oxidative stress. Previous work has demonstrated that Yap1p is recruited from the cytoplasm to the nucleus upon exposure to the oxidants diamide and H2O2 in a process that requires the transient covalent linkage of the glutathione peroxidase Gpx3p to Yap1p. Genetic and biochemical analyses indicate that while both oxidants trigger nuclear accumulation of Yap1p, the function and regulation of this transcription factor is different under these two different oxidative stresses. Ybp1p (Yap1p-binding protein) has recently been demonstrated to be required for Yap1p-mediated H2O2 resistance but not diamide resistance. A Ybp1p homologous protein (Ybh1p/Ybp2p) was also detected in the S. cerevisiae genome. Here we compare the actions of these two closely related proteins and provide evidence that while both factors influence H2O2 tolerance, they do so by nonidentical mechanisms. A double mutant strain lacking both YBP1 and YBH1 genes is more sensitive to H2O2 and more defective in activation of Yap1p-dependent gene expression than either single mutant. Ybp1p has a more pronounced effect on these phenotypes than does Ybh1p. Protein-protein interactions between Yap1p and Ybp1p could be detected by either the yeast two-hybrid or coimmunoprecipitation approach while neither technique could demonstrate Yap1p-Ybh1p interactions. Overexpression experiments indicated that high levels of Ybh1p but not Ybp1p could bypass the H2O2 hypersensitivity of a gpx3Δ strain. Together, these data argue that these two homologous proteins act as parallel positive regulators of H2O2 tolerance.
机译:在酵母中,转录因子Yap1p是抵抗氧化应激的重要决定因素。先前的研究表明,Yap1p在暴露于氧化剂二酰胺和H 2 O 2 的过程中从细胞质中募集到细胞核中,该过程需要瞬时的共价键连接。谷胱甘肽过氧化物酶Gpx3p转换为Yap1p。遗传和生化分析表明,虽然两种氧化剂均会触发Yap1p的核积累,但在这两种不同的氧化胁迫下,该转录因子的功能和调控是不同的。 Ybp1p(Yap1p结合蛋白)最近被证明是Yap1p介导的H 2 O 2 抗性而不是二酰胺抗性所必需的。在 S中也检测到Ybp1p同源蛋白(Ybh1p / Ybp2p)。啤酒酵母基因组。在这里,我们比较了这两个密切相关的蛋白质的作用,并提供了证据,尽管这两个因素都会影响H 2 O 2 的耐受性,但它们是通过不同的机制起作用的。缺少 YBP1 YBH1 基因的双突变株对H 2 O 2 更加敏感,并且在激活Yap1p依赖基因表达比任何一个突变体。 Ybp1p对这些表型的影响比Ybh1p更明显。 Yap1p和Ybp1p之间的蛋白质-蛋白质相互作用可以通过酵母双杂交法或共免疫沉淀法检测,而两种方法都不能证明Yap1p-Ybh1p相互作用。过表达实验表明,高水平的Ybh1p而不是Ybp1p可以绕过 gpx3 Δ菌株的H 2 O 2 超敏反应。在一起,这些数据认为这两个同源蛋白充当H 2 O 2 耐受性的平行正调节剂。

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