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Msa1 and Msa2 Modulate G1-Specific Transcription to Promote G1 Arrest and the Transition to Quiescence in Budding Yeast

机译:Msa1和Msa2调节G1特定的转录以促进G1逮捕和发芽酵母向静止的过渡。

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摘要

Yeast that naturally exhaust their glucose source can enter a quiescent state that is characterized by reduced cell size, and high cell density, stress tolerance and longevity. The transition to quiescence involves highly asymmetric cell divisions, dramatic reprogramming of transcription and global changes in chromatin structure and chromosome topology. Cells enter quiescence from G1 and we find that there is a positive correlation between the length of G1 and the yield of quiescent cells. The Swi4 and Swi6 transcription factors, which form the SBF transcription complex and promote the G1 to S transition in cycling cells, are also critical for the transition to quiescence. Swi6 forms a second complex with Mbp1 (MBF), which is not required for quiescence. These are the functional analogues of the E2F complexes of higher eukaryotes. Loss of the RB analogue, Whi5, and the related protein Srl3/Whi7, delays G1 arrest, but it also delays recovery from quiescence. Two MBF- and SBF-Associated proteins have been identified that have little effect on SBF or MBF activity in cycling cells. We show that these two related proteins, Msa1 and Msa2, are specifically required for the transition to quiescence. Like the E2F complexes that are quiescence-specific, Msa1 and Msa2 are required to repress the transcription of many SBF target genes, including SWI4, the CLN2 cyclin and histones, specifically after glucose is exhausted from the media. They also activate transcription of many MBF target genes. msa1msa2 cells fail to G1 arrest and rapidly lose viability upon glucose exhaustion. msa1msa2 mutants that survive this transition are very large, but they attain the same thermo-tolerance and longevity of wild type quiescent cells. This indicates that Msa1 and Msa2 are required for successful transition to quiescence, but not for the maintenance of that state.
机译:天然耗尽其葡萄糖源的酵母可以进入静止状态,其特征是细胞尺寸减小,细胞密度高,耐应力性和寿命长。向静止的过渡涉及高度不对称的细胞分裂,转录的显着重编程以及染色质结构和染色体拓扑的整体变化。细胞从G1进入静止状态,我们发现G1的长度与静止细胞的产量之间存在正相关。 Swi4和Swi6转录因子在循环细胞中形成SBF转录复合物并促进G1向S的转变,这对于过渡到静止也至关重要。 Swi6与Mbp1(MBF)形成第二个复合体,静止不需要此复合体。这些是高级真核生物的E2F复合物的功能类似物。 RB类似物Whi5和相关蛋白Srl3 / Whi7的丢失会延迟G1的阻滞,但也会延迟其从静止状态的恢复。已鉴定出两种与MBF和SBF相关的蛋白,它们对循环细胞中的SBF或MBF活性影响很小。我们表明,这两个相关的蛋白质,Msa1和Msa2,是过渡到静态所特有的。像静态特定的E2F复合物一样,需要Msa1和Msa2来抑制许多SBF目标基因(包括SWI4,CLN2细胞周期蛋白和组蛋白)的转录,特别是在葡萄糖从培养基中耗尽后。它们还激活许多MBF靶基因的转录。 msa1msa2细胞无法激活G1并在葡萄糖耗尽时迅速丧失生存能力。在此过渡过程中存活的msa1msa2突变体非常大,但它们具有与野生型静态细胞相同的耐热性和寿命。这表明Msa1和Msa2是成功过渡到静态所必需的,而不是维持该状态所必需的。

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