Minard K I, McAlister-Henn L
Department of Biological Chemistry, College of Medicine, University of California, Irvine 92717.
J Biol Chem. 1992 Aug 25;267(24):17458-64.
MDH2, the nonmitochondrial isozyme of malate dehydrogenase in Saccharomyces cerevisiae, was determined to be a target of glucose-induced proteolytic degradation. Shifting a yeast culture growing with acetate to medium containing glucose as a carbon source resulted in a 25-fold increase in turnover of MDH2. A truncated form of MDH2 lacking amino acid residues 1-12 was constructed by mutagenesis of the MDH2 gene and expressed in a haploid yeast strain containing a deletion disruption of the corresponding chromosomal gene. Measurements of malate dehydrogenase specific activity and determination of growth rates with diagnostic carbon sources indicated that the truncated form of MDH2 was expressed at authentic MDH2 levels and was fully active. However, the truncated enzyme proved to be less susceptible to glucose-induced proteolysis, exhibiting a 3.75-fold reduction in turnover rate following a shift to glucose medium. Rates of loss of activity for other cellular enzymes known to be subject to glucose inactivation were similarly reduced. An extended lag in attaining wild type rates of growth on glucose measured for strains expressing the truncated MDH2 enzyme represents the first evidence of a selective advantage for the phenomenon of glucose-induced proteolysis in yeast.
已确定酿酒酵母中苹果酸脱氢酶的非线粒体同工酶MDH2是葡萄糖诱导的蛋白水解降解的一个靶点。将以乙酸盐为碳源生长的酵母培养物转移至含有葡萄糖作为碳源的培养基中,导致MDH2的周转率增加了25倍。通过对MDH2基因进行诱变构建了一种缺少氨基酸残基1 - 12的MDH2截短形式,并在含有相应染色体基因缺失破坏的单倍体酵母菌株中表达。苹果酸脱氢酶比活性的测定以及用诊断性碳源测定生长速率表明,MDH2的截短形式以真实的MDH2水平表达且具有完全活性。然而,截短的酶被证明对葡萄糖诱导的蛋白水解不太敏感,在转移至葡萄糖培养基后,其周转率降低了3.75倍。已知会受到葡萄糖失活影响的其他细胞酶的活性丧失速率也同样降低。对于表达截短MDH2酶的菌株,在葡萄糖上达到野生型生长速率存在延长的滞后期,这代表了酵母中葡萄糖诱导的蛋白水解现象具有选择性优势的首个证据。