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转录沉默、细胞形态和细胞周期中的叉头基因。酿酒酵母中FKH1和FKH2的重叠及不同功能。

Forkhead genes in transcriptional silencing, cell morphology and the cell cycle. Overlapping and distinct functions for FKH1 and FKH2 in Saccharomyces cerevisiae.

作者信息

Hollenhorst P C, Bose M E, Mielke M R, Müller U, Fox C A

机构信息

Department of Biomolecular Chemistry, University of Wisconsin, Madison, Wisconsin 53706, USA.

出版信息

Genetics. 2000 Apr;154(4):1533-48. doi: 10.1093/genetics/154.4.1533.

Abstract

The SIR1 gene is one of four specialized genes in Saccharomyces cerevisiae required for repressing transcription at the silent mating-type cassettes, HMLalpha and HMRa, by a mechanism known as silencing. Silencing requires the assembly of a specialized chromatin structure analogous to heterochromatin. FKH1 was isolated as a gene that, when expressed in multiple copies, could substitute for the function of SIR1 in silencing HMRa. FKH1 (Forkhead Homologue One) was named for its homology to the forkhead family of eukaryotic transcription factors classified on the basis of a conserved DNA binding domain. Deletion of FKH1 caused a defect in silencing HMRa, indicating that FKH1 has a positive role in silencing. Significantly, deletion of both FKH1 and its closest homologue in yeast, FKH2, caused a form of yeast pseudohyphal growth, indicating that the two genes have redundant functions in controlling yeast cell morphology. By several criteria, fkh1Delta fkh2Delta-induced pseudohyphal growth was distinct from the nutritionally induced form of pseudohyphal growth observed in some strains of S. cerevisiae. Although FKH2 is redundant with FKH1 in controlling pseudohyphal growth, the two genes have different functions in silencing HMRa. High-copy expression of CLB2, a G2/M-phase cyclin, prevented fkh1Delta fkh2Delta-induced pseudohyphal growth and modulated some of the fkhDelta-induced silencing phenotypes. Interestingly, deletions in either FKH1 or FKH2 alone caused subtle but opposite effects on cell-cycle progression and CLB2 mRNA expression, consistent with a role for each of these genes in modulating the cell cycle and having opposing effects on silencing. The differences between Fkh1p and Fkh2p in vivo were not attributable to differences in their DNA binding domains.

摘要

SIR1基因是酿酒酵母中四个专门基因之一,通过一种称为沉默的机制,在沉默交配型沉默盒HMLα和HMRa处的转录时发挥作用。沉默需要组装一种类似于异染色质的特殊染色质结构。FKH1作为一个基因被分离出来,当它以多拷贝形式表达时,可以替代SIR1在沉默HMRa中的功能。FKH1(叉头同源物1)因其与基于保守DNA结合域分类的真核转录因子叉头家族的同源性而得名。FKH1的缺失导致沉默HMRa出现缺陷,表明FKH1在沉默中起积极作用。值得注意的是,FKH1及其在酵母中最接近的同源物FKH2的缺失导致了一种酵母假菌丝生长形式,表明这两个基因在控制酵母细胞形态方面具有冗余功能。根据几个标准,fkh1Delta fkh2Delta诱导的假菌丝生长与在一些酿酒酵母菌株中观察到的营养诱导型假菌丝生长不同。虽然FKH2在控制假菌丝生长方面与FKH1冗余,但这两个基因在沉默HMRa方面具有不同的功能。G2/M期细胞周期蛋白CLB2的高拷贝表达阻止了fkh1Delta fkh2Delta诱导的假菌丝生长,并调节了一些fkhDelta诱导的沉默表型。有趣的是,单独缺失FKH1或FKH2对细胞周期进程和CLB2 mRNA表达产生了微妙但相反的影响,这与这些基因各自在调节细胞周期以及对沉默产生相反影响方面的作用一致。Fkh1p和Fkh2p在体内的差异并非归因于它们DNA结合域的差异。

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