Tebb G, Moll T, Dowzer C, Nasmyth K
Institute for Molecular Pathology, Vienna, Austria.
Genes Dev. 1993 Mar;7(3):517-28. doi: 10.1101/gad.7.3.517.
Homothallic haploid yeast cells divide to produce a mother cell that switches mating type and a daughter cell that does not. This pattern is the result of HO endonuclease transcription exclusively in mother cells, and there only transiently in late G1 as cells undergo Start. SWI5 encodes an HO transcription factor that is expressed during the S, G2, and M phases of the cell cycle. The lack of synthesis of SWI5 during G1 is essential to prevent HO transcription in daughter cells. Thus, HO must be activated by SWI5 protein synthesized in the previous cell cycle if it is to be properly regulated. SWI5 is inherited by both mother and daughter cells, and we show here that most of it is rapidly degraded during early G1. More stable mutant SWI5 proteins cause daughter cells to switch mating type, suggesting that SWI5 destruction is necessary to prevent HO expression in daughters. We show further that mother cells can still express HO when stimulated to undergo Start after arrest in early G1 for several hours. We propose that a small fraction of the SWI5 protein inherited by mother cells is extremely stable and that the crucial difference between mothers and daughters with regard to HO transcription is their differential ability to sequester SWI5 in a stable form, possibly as a component of transcription complexes on the HO promoter.
同宗配合的单倍体酵母细胞分裂产生一个转变交配型的母细胞和一个不转变的子细胞。这种模式是HO核酸内切酶仅在母细胞中进行转录的结果,并且仅在细胞进入起始点时的G1晚期短暂转录。SWI5编码一种HO转录因子,该因子在细胞周期的S期、G2期和M期表达。G1期期间SWI5不合成对于防止子细胞中HO转录至关重要。因此,如果要对HO进行适当调控,它必须被前一个细胞周期合成的SWI5蛋白激活。SWI5由母细胞和子细胞继承,我们在此表明大部分SWI5在G1早期迅速降解。更稳定的突变型SWI5蛋白会导致子细胞转变交配型,这表明SWI5的降解对于防止子细胞中HO表达是必要的。我们进一步表明,在早期G1期停滞数小时后受到刺激进入起始点时,母细胞仍可表达HO。我们提出,母细胞继承的一小部分SWI5蛋白极其稳定,并且就HO转录而言,母细胞和子细胞之间的关键差异在于它们以稳定形式隔离SWI5的能力不同,可能是作为HO启动子上转录复合物的一个组成部分。