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首页> 外文期刊>Genetics: A Periodical Record of Investigations Bearing on Heredity and Variation >The Dot1 histone methyltransferase and the Rad9 checkpoint adaptor contribute to cohesin-dependent double-strand break repair by sister chromatid recombination in Saccharomyces cerevisiae.
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The Dot1 histone methyltransferase and the Rad9 checkpoint adaptor contribute to cohesin-dependent double-strand break repair by sister chromatid recombination in Saccharomyces cerevisiae.

机译:Dot1组蛋白甲基转移酶和Rad9检查点适配器通过酿酒酵母中的姐妹染色单体重组促进黏附素依赖性双链断裂修复。

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摘要

Genomic integrity is threatened by multiple sources of DNA damage. DNA double-strand breaks (DSBs) are among the most dangerous types of DNA lesions and can be generated by endogenous or exogenous agents, but they can arise also during DNA replication. Sister chromatid recombination (SCR) is a key mechanism for the repair of DSBs generated during replication and it is fundamental for maintaining genomic stability. Proper repair relies on several factors, among which histone modifications play important roles in the response to DSBs. Here, we study the role of the histone H3K79 methyltransferase Dot1 in the repair by SCR of replication-dependent HO-induced DSBs, as a way to assess its function in homologous recombination. We show that Dot1, the Rad9 DNA damage checkpoint adaptor, and phosphorylation of histone H2A (gammaH2A) are required for efficient SCR. Moreover, we show that Dot1 and Rad9 promote DSB-induced loading of cohesin onto chromatin. We propose that recruitment of Rad9 to DSB sites mediated by gammaH2A and H3K79 methylation contributes to DSB repair via SCR by regulating cohesin binding to damage sites. Therefore, our results contribute to an understanding of how different chromatin modifications impinge on DNA repair mechanisms, which are fundamental for maintaining genomic stability.
机译:DNA损伤的多种来源威胁着基因组完整性。 DNA双链断裂(DSB)是最危险的DNA损伤类型之一,可由内源性或外源性物质产生,但也可能在DNA复制过程中产生。姐妹染色单体重组(SCR)是修复复制过程中产生的DSB的关键机制,并且是维持基因组稳定性的基础。适当的修复取决于几个因素,其中组蛋白修饰在对DSB的反应中起重要作用。在这里,我们研究组蛋白H3K79甲基转移酶Dot1在SCR的复制依赖性HO诱导的DSB的SCR修复中的作用,以此来评估其在同源重组中的功能。我们显示,Dot1,Rad9 DNA损伤检查点适配器和组蛋白H2A(gammaH2A)的磷酸化是有效SCR所必需的。此外,我们表明Dot1和Rad9促进染色质上DSB诱导的黏着蛋白加载。我们建议Rad9募集到由gammaH2A和H3K79甲基化介导的DSB位点,通过调节黏着素与损伤位点的结合,通过SCR促进DSB修复。因此,我们的结果有助于了解不同的染色质修饰如何影响DNA修复机制,这对于维持基因组稳定性至关重要。

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