Aguilera J, Prieto J A
Department of Biotechnology, Instituto de Agroquímica y Tecnología de los Alimentos, Consejo Superior de Investigaciones Científicas, Valencia, Spain.
Curr Genet. 2001 Jul;39(5-6):273-83. doi: 10.1007/s002940100213.
The enzyme aldose reductase plays an important role in the osmo-protection mechanism of diverse organisms. Here, we show that yeast aldose reductase is encoded by the GRE3 gene. Expression of GRE3 is carbon-source independent and up-regulated by different stress conditions, such as NaCl, H2O2, 39 degrees C and carbon starvation. Measurements of enzyme activity and intracellular sorbitol in wild-type cells also indicate that yeast aldose reductase is stress-regulated. Overexpression of GRE3 increases methylglyoxal tolerance in Saccharomyces cerevisiae. Furthermore, high expression of GRE3 complements the deficiency of the glyoxalase system of a glo1delta mutant strain. Consistent with this, in vitro and in vivo assays of yeast aldose reductase activity indicate that methylglyoxal is an endogenous substrate of aldose reductase. Furthermore, addition of NaCl or H2O2 to exponential-phase cells triggers an initial transient increase in the intracellular level of methylglyoxal, which is dependent on the Gre3p and Glo1p function. These observations indicate that the metabolism of methylglyoxal is stimulated under stress conditions; and they support a methylglyoxal degradative pathway, in which this compound is metabolised by the action of aldose reductase.
醛糖还原酶在多种生物体的渗透保护机制中发挥着重要作用。在此,我们表明酵母醛糖还原酶由GRE3基因编码。GRE3的表达不依赖于碳源,并在不同应激条件下上调,如NaCl、H2O2、39℃和碳饥饿。对野生型细胞中酶活性和细胞内山梨醇的测量也表明酵母醛糖还原酶受应激调节。GRE3的过表达增加了酿酒酵母对甲基乙二醛的耐受性。此外,GRE3的高表达弥补了glo1δ突变株乙二醛酶系统的缺陷。与此一致的是,酵母醛糖还原酶活性的体外和体内测定表明甲基乙二醛是醛糖还原酶的内源性底物。此外,向指数生长期细胞中添加NaCl或H2O2会引发细胞内甲基乙二醛水平的初始短暂升高,这依赖于Gre3p和Glo1p的功能。这些观察结果表明,在应激条件下甲基乙二醛的代谢受到刺激;并且它们支持一种甲基乙二醛降解途径,其中该化合物通过醛糖还原酶的作用进行代谢。