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Nano-Scale Observation of Higher-Order Genome Structure Reconstituted from DNA and Chromosome Proteins

机译:从DNA和染色体蛋白重构的高阶基因组结构的纳米规模观察

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In order to analyze chromatin higher-order structures, we have developed an experimental system to assemble long nucleosomal fibers and linker histone H1-induced thicker fibers from DNA and purified histones. We reconstituted chromatin fibers using normal, tailless, and hyper-acetylated core histones to reveal the effect of histone tail on the higher-order assembly of nucleosomes. AFM observation of these nucleosomes revealed that the interaction between nucleosomes decreased both by hyper-acetylation and the removal of the tails. The formation of H1-induced thick fiber was also affected by the acetylation and the tail-removal. The nucleosomes with hyper-acetylated core histones formed a thinner fiber, and the tailless nucleosome could not form any further fibrous structures by H1. These results suggested that the histone tail has a critical role in nucleosome-nucleosome interaction, which is required for the formation of H1-induced 30-nm fibers.
机译:为了分析染色质高阶结构,我们开发了一种组装长核体纤维和接头组蛋白H1诱导从DNA和纯化的作用蛋白的较厚纤维的实验系统。使用正常,无尾和超乙酰化核心组蛋白重构染色质纤维,以揭示组蛋白尾部在核心高阶组装上的作用。 AFM观察这些核体揭示了核肉之间的相互作用通过超乙酰化和去除尾部而降低。 H1诱导的厚纤维的形成也受乙酰化和尾部除去的影响。具有超乙酰化核心组蛋白的核体形成较薄的纤维,无尾核体不能通过H1形成任何进一步的纤维结构。这些结果表明,组蛋白尾部在核小体核体相互作用中具有关键作用,这是形成H1诱导的30nm纤维所必需的。

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