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首页> 外文期刊>Genetics: A Periodical Record of Investigations Bearing on Heredity and Variation >Histone Sprocket Arginine Residues Are Important for Gene Expression, DNA Repair, and Cell Viability in Saccharomyces cerevisiae
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Histone Sprocket Arginine Residues Are Important for Gene Expression, DNA Repair, and Cell Viability in Saccharomyces cerevisiae

机译:组蛋白链轮精氨酸残基对于酿酒酵母中的基因表达,DNA修复和细胞活力很重要

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摘要

A critical feature of the intermolecular contacts that bind DNA to the histone octamer is the series of histone arginine residues that insert into the DNA minor groove at each superhelical location where the minor groove faces the histone octamer. One of these "sprocket" arginine residues, histone H4 R45, significantly affects chromatin structure in vivo and is lethal when mutated to alanine or cysteine in Saccharomyces cerevisiae (budding yeast). However, the roles of the remaining sprocket arginine residues (H3 R63, H3 R83, H2A R43, H2B R36, H2A R78, H3 R49) in chromatin structure and other cellular processes have not been well characterized. We have genetically characterized mutations in each of these histone residues when introduced either singly or in combination to yeast cells. We find that pairs of arginine residues that bind DNA adjacent to the DNA exit/entry sites in the nucleosome are lethal in yeast when mutated in combination and cause a defect in histone occupancy. Furthermore, mutations in individual residues compromise repair of UV-induced DNA lesions and affect gene expression and cryptic transcription. This study reveals simple rules for how the location and structural mode of DNA binding influence the biological function of each histone sprocket arginine residue.
机译:使DNA与组蛋白八聚体结合的分子间接触的关键特征是一系列组蛋白精氨酸残基,它们插入到DNA小槽中,小槽面对组蛋白八聚体。这些“链轮”精氨酸残基之一,组蛋白H4 R45,在体内显着影响染色质结构,当在酿酒酵母(芽芽酵母)中突变为丙氨酸或半胱氨酸时具有致命性。然而,尚没有很好地表征剩余的链轮精氨酸残基(H3 R63,H3 R83,H2A R43,H2B R36,H2A R78,H3 R49)在染色质结构和其他细胞过程中的作用。当单独或组合引入酵母细胞时,我们已对每个组蛋白残基的突变进行了遗传学表征。我们发现,结合在一起突变时,结合与核小体中DNA出口/进入位点相邻的DNA的精氨酸残基对在酵母中是致命的,并导致组蛋白占有率缺陷。此外,单个残基中的突变会损害紫外线诱导的DNA损伤的修复,并影响基因表达和隐蔽转录。这项研究揭示了有关DNA结合的位置和结构模式如何影响每个组蛋白链轮精氨酸残基的生物学功能的简单规则。

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