Medintz I, Jiang H, Han E K, Cui W, Michels C A
Biology Department, Queens College, City University of New York, Flushing 11367, USA.
J Bacteriol. 1996 Apr;178(8):2245-54. doi: 10.1128/jb.178.8.2245-2254.1996.
The addition of glucose to maltose-fermenting Saccharomyces cerevisiae cells causes a rapid and irreversible loss of the ability to transport maltose, resulting both from the repression of transcription of the maltose permease gene and from the inactivation of maltose permease. The latter is referred to as glucose-induced inactivation or catabolite inactivation. We describe an analysis of this process in a maltose-fermenting strain expressing a hemagglutinin (HA)-tagged allele of MAL61, encoding maltose permease. The transfer of maltose-induced cells expressing the Mal61/HA protein to rich medium containing glucose produces a decrease in maltose transport rates which is paralleled by a decrease in Mal61/HA maltose permease protein levels. In nitrogen starvation medium, glucose produces a biphasic inactivation, i.e., an initial, rapid loss in transport activity (inhibition) followed by a slower decrease in transport activity, which correlates with a decrease in the amount of maltose permease protein (proteolysis). The inactivation in both rich and nitrogen-starved media results from a decrease in Vmax with no apparent change in Km. Using strains carrying mutations in END3, REN1(VPS2), PEP4, and PRE1 PRE2, we demonstrate that the proteolysis of Mal61/HAp is dependent on endocytosis and vacuolar proteolysis and is independent of the proteosome. Moreover, we show that the Mal61/HA maltose permease is present in differentially phosphorylated forms.
向能发酵麦芽糖的酿酒酵母细胞中添加葡萄糖会导致麦芽糖转运能力迅速且不可逆地丧失,这是由麦芽糖通透酶基因转录的抑制以及麦芽糖通透酶的失活所致。后者被称为葡萄糖诱导的失活或分解代谢物失活。我们描述了对在表达带有血凝素(HA)标签的MAL61等位基因(编码麦芽糖通透酶)的麦芽糖发酵菌株中这一过程的分析。将表达Mal61/HA蛋白的麦芽糖诱导细胞转移至含有葡萄糖的丰富培养基中,会导致麦芽糖转运速率下降,同时Mal61/HA麦芽糖通透酶蛋白水平也会下降。在氮饥饿培养基中,葡萄糖会产生双相失活,即最初快速丧失转运活性(抑制),随后转运活性缓慢下降,这与麦芽糖通透酶蛋白量的减少(蛋白水解)相关。在丰富培养基和氮饥饿培养基中的失活都是由于Vmax降低而Km无明显变化所致。使用携带END3、REN1(VPS2)、PEP4和PRE1 PRE2突变的菌株,我们证明Mal61/HAp的蛋白水解依赖于内吞作用和液泡蛋白水解,且与蛋白酶体无关。此外,我们表明Mal61/HA麦芽糖通透酶以不同的磷酸化形式存在。