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Catalysis-dependent and redundant roles of Dma1 and Dma2 in maintenance of genome stability in

机译:DMA1和DMA2在维持基因组稳定性方面的催化依赖性和冗余作用

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摘要

DNA double-strand breaks (DSBs) are among the deleterious lesions that are both endogenous and exogenous in origin and are repaired by nonhomologous end joining or homologous recombination. However, the molecular mechanisms responsible for maintaining genome stability remain incompletely understood. Here, we investigate the role of two E3 ligases, Dma1 and Dma2 (homologs of human RNF8), in the maintenance of genome stability in budding yeast. Using yeast spotting assays, chromatin immunoprecipitation and plasmid and chromosomal repair assays, we establish that Dma1 and Dma2 act in a redundant and a catalysis-dependent manner in the maintenance of genome stability, as well as localize to transcribed regions of the genome and increase in abundance upon phleomycin treatment. In addition, Dma1 and Dma2 are required for the normal kinetics of histone H4 acetylation under DNA damage conditions, genetically interact with RAD9 and SAE2, and are in a complex with Rad53 and histones. Taken together, our results demonstrate the requirement of Dma1 and Dma2 in regulating DNA repair pathway choice, preferentially affecting homologous recombination over nonhomologous end joining, and open up the possibility of using these candidates in manipulating the repair pathways toward precision genome editing.
机译:DNA双链断裂(DSB)是具有因子源性和外源的有害病变之一,并且由非汉语结束或同源重组修复。然而,负责维持基因组稳定性的分子机制仍然不完全理解。在这里,我们研究了两种E3连接酶,DMA1和DMA2(人RNF8的同源物)的作用,在维持萌芽酵母中的基因组稳定性中。使用酵母斑点测定,染色质免疫沉淀和质粒和染色体修复测定,我们建立了DMA1和DMA2在维持基因组稳定性的维持下以冗余和催化依赖性方式作用,以及定位于基因组的转录区域并增加富含富含霉素治疗的丰富。另外,DMA1和DMA2是在DNA损伤条件下组织H4乙酰化的正常动力学所必需的,与RAD9和SAE2的遗传相互作用,并且在与RAD53和组蛋白中的复合物中。我们的结果占据了DMA1和DMA2在调节DNA修复途径选择中的要求,优先影响在非同时的结束接合上的同源重组,并打开使用这些候选者在操纵朝向精密基因组编辑的修复途径方面的可能性。

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