首页> 外文OA文献 >GPD1, which encodes glycerol-3-phosphate dehydrogenase, is essential for growth under osmotic stress in Saccharomyces cerevisiae, and its expression is regulated by the high-osmolarity glycerol response pathway.
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GPD1, which encodes glycerol-3-phosphate dehydrogenase, is essential for growth under osmotic stress in Saccharomyces cerevisiae, and its expression is regulated by the high-osmolarity glycerol response pathway.

机译:GPD1编码3-磷酸甘油脱氢酶,对于酿酒酵母在渗透胁迫下的生长至关重要,其表达受高渗透压甘油反应途径的调节。

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摘要

The yeast Saccharomyces cerevisiae responds to osmotic stress, i.e., an increase in osmolarity of the growth medium, by enhanced production and intracellular accumulation of glycerol as a compatible solute. We have cloned a gene encoding the key enzyme of glycerol synthesis, the NADH-dependent cytosolic glycerol-3-phosphate dehydrogenase, and we named it GPD1. gpd1 delta mutants produced very little glycerol, and they were sensitive to osmotic stress. Thus, glycerol production is indeed essential for the growth of yeast cells during reduced water availability. hog1 delta mutants lacking a protein kinase involved in osmostress-induced signal transduction (the high-osmolarity glycerol response [HOG] pathway) failed to increase glycerol-3-phosphate dehydrogenase activity and mRNA levels when osmotic stress was imposed. Thus, expression of GPD1 is regulated through the HOG pathway. However, there may be Hog1-independent mechanisms mediating osmostress-induced glycerol accumulation, since a hog1 delta strain could still enhance its glycerol content, although less than the wild type. hog1 delta mutants are more sensitive to osmotic stress than isogenic gpd1 delta strains, and gpd1 delta hog1 delta double mutants are even more sensitive than either single mutant. Thus, the HOG pathway most probably has additional targets in the mechanism of adaptation to hypertonic medium.
机译:酵母酿酒酵母通过增加甘油作为相容性溶质的产生和细胞内积累而对渗透压作出反应,即,生长培养基的渗透压增加。我们已经克隆了一个编码甘油合成关键酶的基因,NADH依赖的胞质甘油3-磷酸脱氢酶,我们将其命名为GPD1。 gpd1 delta突变体产生的甘油很少,并且对渗透压敏感。因此,甘油的生产对于减少水分利用期间的酵母细胞的生长确实是必不可少的。缺乏蛋白激酶的hog1 delta突变体参与了渗透压诱导的信号转导(高渗透压甘油反应[HOG]途径),在施加渗透压时未能增加3-磷酸甘油脱氢酶活性和mRNA水平。因此,通过HOG途径调节GPD1的表达。但是,可能存在不依赖Hog1的机制来介导由渗透压诱导的甘油蓄积,因为hog1 delta菌株虽然比野生型少,但仍可以提高其甘油含量。 hog1 delta突变体比同基因的gpd1 delta菌株对渗透胁迫更敏感,而gpd1 delta hog1 delta双重突变体甚至比任一单个突变体更为敏感。因此,HOG途径最有可能在高渗介质适应机制中具有其他靶标。

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