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Priming for tolerance and cohesion at replication forks

机译:在复制叉处启动容忍和内聚

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摘要

Genome duplication is coupled with DNA damage tolerance (DDT) and chromatin structural changes. Recently we reported that mutations in Primase subunits or factors that bridge Polα/Primase with the replicative helicase, Ctf4, caused abnormal usage of DDT pathways, negatively influenced sister chromatid cohesion (SCC), and associated with increased fork reversal. We also found that cohesin, which is paradigmatic for SCC, facilitates recombination-mediated DDT. However, only the recombination defects of cohesin, but not of cohesion-defective Polα/Primase/Ctf4 mutants, were rescued by artificial tethering of sister chromatids. Genetic tests and electron microscopy analysis of replication intermediates made us propose that management of single-stranded DNA forming proximal to the fork is a critical determinant of chromosome and replication fork structure, and influences DDT pathway choice. Here we discuss the implications of our findings for understanding DDT regulation and cohesion establishment during replication, and outline directions to rationalize the relationship between these chromosome metabolism processes.
机译:基因组复制与DNA损伤耐受性(DDT)和染色质结构变化结合在一起。最近,我们报道了Primase亚基的突变或与复制解旋酶Ctf4桥接Polα/ Primase的因子引起了DDT途径的异常使用,对姐妹染色单体内聚力(SCC)产生了负面影响,并与叉子逆转增加有关。 我们还发现凝聚素是SCC的典范,可促进重组介导的DDT。但是,通过姊妹染色单体的人工束缚,只能挽救凝聚素的重组缺陷,而不能弥补凝聚缺陷的Polα/ Primase / Ctf4突变体的重组缺陷。复制中间体的遗传测试和电子显微镜分析使我们提出,在叉子附近形成单链DNA的管理是染色体和复制叉子结构的关键决定因素,并影响DDT途径的选择。在这里,我们讨论了我们的发现对于理解复制过程中DDT调控和内聚力建立的意义,并概述了合理化这些染色体代谢过程之间关系的方向。

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