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Stress-Dependent Dynamics of Global Chromatin Remodeling in Yeast: Dual Role for SWI/SNF in the Heat Shock Stress Response

机译:酵母中全球染色质重塑的应力依赖性动力学:SWI / SNF在热激应激反应中的双重作用

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摘要

Although chromatin structure is known to affect transcriptional activity, it is not clear how broadly patterns of changes in histone modifications and nucleosome occupancy affect the dynamic regulation of transcription in response to perturbations. The identity and role of chromatin remodelers that mediate some of these changes are also unclear. Here, we performed temporal genome-wide analyses of gene expression, nucleosome occupancy, and histone H4 acetylation during the response of yeast (Saccharomyces cerevisiae) to different stresses and report several findings. First, a large class of predominantly ribosomal protein genes, whose transcription was repressed during both heat shock and stationary phase, showed strikingly contrasting histone acetylation patterns. Second, the SWI/SNF complex was required for normal activation as well as repression of genes during heat shock, and loss of SWI/SNF delayed chromatin remodeling at the promoters of activated genes. Third, Snf2 was recruited to ribosomal protein genes and Hsf1 target genes, and its occupancy of this large set of genes was altered during heat shock. Our results suggest a broad and direct dual role for SWI/SNF in chromatin remodeling, during heat shock activation as well as repression, at promoters and coding regions.
机译:尽管已知染色质结构会影响转录活性,但尚不清楚组蛋白修饰和核小体占用变化的模式在多大程度上影响对转录的动态调节。尚不清楚介导这些变化的染色质重塑剂的身份和作用。在这里,我们对酵母()对不同压力的反应过程中的基因表达,核小体占用和组蛋白H4乙酰化进行了全基因组时间分析,并报告了一些发现。首先,一大类主要是核糖体蛋白基因,其转录在热休克和固定期均被抑制,显示出明显相反的组蛋白乙酰化模式。其次,SWI / SNF复合物是正常激活以及热休克过程中基因抑制所必需的,而SWI / SNF的缺失会延迟激活基因启动子上的染色质重塑。第三,Snf2被募集到核糖体蛋白基因和Hsf1靶基因,并且在热激过程中其对这一大基因集的占有率发生了变化。我们的结果表明,SWI / SNF在启动子和编码区的热激激活和抑制过程中,在染色质重塑中具有广泛而直接的双重作用。

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