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RIF1 promotes replication fork protection and efficient restart to maintain genome stability

机译:RIF1促进复制叉保护和高效重启以维持基因组稳定性

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摘要

Homologous recombination (HR) and Fanconi Anemia (FA) pathway proteins in addition to their DNA repair functions, limit nuclease-mediated processing of stalled replication forks. However, the mechanism by which replication fork degradation results in genome instability is poorly understood. Here, we identify RIF1, a non-homologous end joining (NHEJ) factor, to be enriched at stalled replication forks. Rif1 knockout cells are proficient for recombination, but displayed degradation of reversed forks, which depends on DNA2 nuclease activity. Notably, RIF1-mediated protection of replication forks is independent of its function in NHEJ, but depends on its interaction with Protein Phosphatase 1. RIF1 deficiency delays fork restart and results in exposure of under-replicated DNA, which is the precursor of subsequent genomic instability. Our data implicate RIF1 to be an essential factor for replication fork protection, and uncover the mechanisms by which unprotected DNA replication forks can lead to genome instability in recombination-proficient conditions.
机译:同源重组(HR)和FANCONI贫血(FA)途径蛋白除了DNA修复功能之外,限制核酸酶介导的停滞复制叉的加工。然而,复制叉降解导致基因组不稳定性的机制是较差的。这里,我们鉴定RIF1,一种非同源末端连接(NHEJ)因子,富集被停滞的复制叉。 RIF1敲除细胞经历重组,但呈现逆转叉的劣化,这取决于DNA2核酸酶活性。值得注意的是,RIF1介导的复制叉的保护与其在NHEJ中的功能无关,但取决于其与蛋白质磷酸酶的相互作用1. RIF1缺陷延迟叉重启并导致暴露于后续的基因组不稳定性的前体。我们的数据将RIF1致力于复制叉保护的必要因素,并揭示未受保护的DNA复制叉可以导致重组易于条件中的基因组不稳定性的机制。

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