Hohmann S, Huse K, Valentin E, Mbonyi K, Thevelein J M, Zimmermann F K
Institut für Mikrobiologie, Technische Hochschule Darmstadt, Germany.
J Bacteriol. 1992 Jun;174(12):4183-8. doi: 10.1128/jb.174.12.4183-4188.1992.
Saccharomyces cerevisiae byp1-3 mutants displayed a long lag phase when shifted from a nonfermentable carbon source to a medium containing glucose. The byp1-3 mutation also caused several defects in regulatory phenomena which occur during the transition from the derepressed state to the repressed state. As opposed to wild-type cells, the addition of glucose to cells of the byp1-3 mutant grown on nonfermentable carbon sources did not induce a cyclic AMP signal. Fructose-2,6-bisphosphate formation and inactivation of fructose-1,6-bisphosphatase were severely delayed, but trehalase activation was not affected. In addition, the induction of pyruvate decarboxylase both at the level of activity and that of transcription was very slow compared with that in wild-type cells. These pleotropic defects in glucose-induced regulatory phenomena might be responsible for the very long lag phase of byp1-3 cells and the inability of ascospores to initiate growth after germination on glucose media. Screening of a yeast gene library for clones complementing the byp1-3 phenotype resulted in the isolation of a truncated form of the previously described zinc finger transcription repressor MIG1. The entire MIG1 gene and the truncated form suppressed even on a single-copy vector the growth initiation defect but not the regulatory abnormalities of the byp1-3 mutant. MIG1 is not allelic to byp1-3.
酿酒酵母byp1-3突变体从非发酵碳源转移到含有葡萄糖的培养基时,表现出很长的延迟期。byp1-3突变还导致了从去阻遏状态转变为阻遏状态期间发生的几种调节现象缺陷。与野生型细胞不同,向在非发酵碳源上生长的byp1-3突变体细胞中添加葡萄糖不会诱导环磷酸腺苷信号。果糖-2,6-二磷酸的形成和果糖-1,6-二磷酸酶的失活严重延迟,但海藻糖酶的激活不受影响。此外,与野生型细胞相比,丙酮酸脱羧酶在活性水平和转录水平上的诱导都非常缓慢。葡萄糖诱导的调节现象中的这些多效性缺陷可能是byp1-3细胞延迟期极长以及子囊孢子在葡萄糖培养基上萌发后无法启动生长的原因。筛选酵母基因文库以寻找能够互补byp1-3表型的克隆,结果分离出了先前描述的锌指转录抑制因子MIG1的截短形式。完整的MIG1基因和截短形式即使在单拷贝载体上也能抑制byp1-3突变体的生长起始缺陷,但不能抑制其调节异常。MIG1与byp1-3不是等位基因。