首页> 美国卫生研究院文献>Molecular and Cellular Biology >Evidence of a New Role for the High-Osmolarity Glycerol Mitogen-Activated Protein Kinase Pathway in Yeast: Regulating Adaptation to Citric Acid Stress
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Evidence of a New Role for the High-Osmolarity Glycerol Mitogen-Activated Protein Kinase Pathway in Yeast: Regulating Adaptation to Citric Acid Stress

机译:高渗透压甘油促丝分裂活化蛋白激酶途径在酵母中的新作用的证据:调节对柠檬酸胁迫的适应。

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摘要

Screening the Saccharomyces cerevisiae disruptome, profiling transcripts, and determining changes in protein expression have identified an important new role for the high-osmolarity glycerol (HOG) mitogen-activated protein kinase (MAPK) pathway in the regulation of adaptation to citric acid stress. Deletion of HOG1, SSK1, PBS2, PTC2, PTP2, and PTP3 resulted in sensitivity to citric acid. Furthermore, citric acid resulted in the dual phosphorylation, and thus activation, of Hog1p. Despite minor activation of glycerol biosynthesis, the inhibitory effect of citric acid was not due to an osmotic shock. HOG1 negatively regulated the expression of a number of proteins in response to citric acid stress, including Bmh1p. Evidence suggests that BMH1 is induced by citric acid to counteract the effect of amino acid starvation. In addition, deletion of BMH2 rendered cells sensitive to citric acid. Deletion of the transcription factor MSN4, which is known to be regulated by Bmh1p and Hog1p, had a similar effect. HOG1 was also required for citric acid-induced up-regulation of Ssa1p and Eno2p. To counteract the cation chelating activity of citric acid, the plasma membrane Ca2+ channel, CCH1, and a functional vacuolar membrane H+-ATPase were found to be essential for optimal adaptation. Also, the transcriptional regulator CYC8, which mediates glucose derepression, was required for adaptation to citric acid to allow cells to metabolize excess citrate via the tricarboxylic acid (TCA) cycle. Supporting this, Mdh1p and Idh1p, both TCA cycle enzymes, were up-regulated in response to citric acid.
机译:筛选酿酒酵母的破坏基因组,分析成绩单和确定蛋白质表达的变化已确定高渗透性甘油(HOG)丝裂原激活的蛋白激酶(MAPK)途径在调节对柠檬酸压力的适应中的重要新作用。 HOG1,SSK1,PBS2,PTC2,PTP2和PTP3的删除会导致对柠檬酸的敏感性。此外,柠檬酸导致Hog1p的双重磷酸化,从而使其活化。尽管甘油生物合成的激活很小,但柠檬酸的抑制作用并不是由于渗透压引起的。 HOG1对柠檬酸胁迫包括Bmh1p在内的许多蛋白质的表达负调节。有证据表明,柠檬酸可诱导BMH1抵消氨基酸饥饿的影响。另外,BMH2的缺失使细胞对柠檬酸敏感。已知受Bmh1p和Hog1p调节的转录因子MSN4的删除具有类似的作用。柠檬酸诱导的Ssa1p和Eno2p的上调也需要HOG1。为了抵消柠檬酸的阳离子螯合活性,发现质膜Ca 2 + 通道,CCH1和功能性液泡膜H + -ATPase对优化柠檬酸至关重要。适应。同样,介导葡萄糖减阻的转录调节子CYC8对于适应柠檬酸是必需的,以允许细胞通过三羧酸(TCA)循环代谢过量的柠檬酸盐。支持这一点的是,两种TCA循环酶Mdh1p和Idh1p都响应柠檬酸而上调。

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