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Genomic Nucleosome Organization Reconstituted with Pure Proteins

机译:纯蛋白质重构的基因组核小体组织

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摘要

Chromatin remodelers regulate genes by organizing nucleosomes around promoters, but their individual contributions are obfuscated by the complex in vivo milieu of factor redundancy and indirect effects. Genome-wide reconstitution of promoter nucleosome organization with purified proteins resolves this problem and is therefore a critical goal. Here, we reconstitute four stages of nucleosome architecture using purified components: yeast genomic DNA, histones, sequence-specific Abf1/Reb1, and remodelers RSC, ISW2, INO80, and ISW1a. We identify direct, specific, and sufficient contributions that in vivo observations validate. First, RSC clears promoters by translating poly(dA:dT) into directional nucleosome removal. Second, partial redundancy is recapitulated where INO80 alone, or ISW2 at Abf1/Reb1sites, positions +1 nucleosomes. Third, INO80 and ISW2 each align downstream nucleosomal arrays. Fourth, ISW1a tightens the spacing to canonical repeat lengths. Such a minimal set of rules and proteins establishes core mechanisms by which promoter chromatin architecture arises through a blend of redundancy and specialization.
机译:染色质重塑剂通过在启动子周围组织核小体来调节基因,但其个体贡献被因子冗余和间接作用的复杂体内环境所掩盖。全基因组启动子核小体组织与纯化蛋白的重组解决了这个问题,因此是一个关键目标。在这里,我们使用纯化的成分重建了核小体结构的四个阶段:酵母基因组DNA,组蛋白,序列特异性Abf1 / Reb1和重塑剂RSC,ISW2,INO80和ISW1a。我们确定了体内观察结果证实的直接,具体和充分的贡献。首先,RSC通过将poly(dA:dT)转化为定向核小体去除来清除启动子。其次,在仅INO80或Abf1 / Reb1位点的ISW2位置+1核小体的地方概括了部分冗余。第三,INO80和ISW2各自对齐下游核小体阵列。第四,ISW1a将间距缩小为规范的重复长度。这样最少的规则和蛋白质组建立了核心机制,通过这些机制,启动子染色质结构通过冗余和专业化的融合而出现。

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