首页> 外文期刊>Genes and Development: a Journal Devoted to the Molecular Analysis of Gene Expression in Eukaryotes, Prokaryotes, and Viruses >Separate roles for the DNA damage checkpoint protein kinases in stabilizing DNA replication forks.
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Separate roles for the DNA damage checkpoint protein kinases in stabilizing DNA replication forks.

机译:DNA损伤检查点蛋白激酶在稳定DNA复制叉中的独立作用。

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摘要

The DNA damage checkpoint plays a crucial role in maintaining functional DNA replication forks when cells are exposed to genotoxic agents. In budding yeast, the protein kinases Mec1 (ATR) and Rad53 (Chk2) are especially important in this process. How these kinases act to stabilize DNA replication forks is currently unknown but is likely to have important implications for understanding how genomic instability is generated during oncogenesis and how chemotherapies that interfere with DNA replication could be improved. Here we show that the sensitivity of rad53 mutants to DNA-damaging agents can be almost completely suppressed by deletion of the EXO1 gene, which encodes an enigmatic flap endonuclease. Deletion of EXO1 also suppresses DNA replication fork instability in rad53 mutants. Surprisingly, deletion of EXO1 is completely ineffective in suppressing both the sensitivity and replication fork breakdown in mec1 mutants, indicating that Mec1 has a genetically separable role in replication fork stabilization from Rad53. Finally, our analysis indicates that a second downstream effector kinase, Chk1, can stabilize replication forks in the absence of Rad53. These results reveal previously unappreciated complexity in the downstream targets of the checkpoint kinases and provide a framework for elucidating the mechanisms of DNA replication fork stabilization by these kinases.
机译:当细胞暴露于遗传毒性剂时,DNA损伤检查点在维持功能性DNA复制叉中起着至关重要的作用。在发芽酵母中,蛋白激酶Mec1(ATR)和Rad53(Chk2)在此过程中尤其重要。目前尚不清楚这些激酶如何作用以稳定DNA复制叉,但可能对于理解肿瘤发生过程中如何产生基因组不稳定性以及如何改善干扰DNA复制的化学疗法具有重要意义。在这里,我们显示rad53突变体对DNA破坏剂的敏感性几乎可以通过删除EXO1基因的缺失来完全抑制,该基因编码一个神秘的皮瓣内切核酸酶。删除EXO1还可以抑制rad53突变体中DNA复制叉的不稳定性。出人意料的是,EXO1的删除在抑制mec1突变体的敏感性和复制叉分解中完全无效,这表明Mec1在复制叉稳定中具有与Rad53遗传分离的作用。最后,我们的分析表明,在不存在Rad53的情况下,第二个下游效应激酶Chk1可以稳定复制叉。这些结果揭示了检查点激酶下游靶标中以前未曾意识到的复杂性,并为阐明这些激酶对DNA复制叉稳定的机制提供了框架。

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