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首页> 外文期刊>PLoS Genetics >Rescue of collapsed replication forks is dependent on NSMCE2 to prevent mitotic DNA damage
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Rescue of collapsed replication forks is dependent on NSMCE2 to prevent mitotic DNA damage

机译:崩溃的复制叉的救援取决于NSMCE2以防止有丝分裂DNA损伤

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NSMCE2 is an E3 SUMO ligase and a subunit of the SMC5/6 complex that associates with the replication fork and protects against genomic instability. Here, we study the fate of collapsed replication forks generated by prolonged hydroxyurea treatment in human NSMCE2-deficient cells. Double strand breaks accumulate during rescue by converging forks in normal cells but not in NSMCE2-deficient cells. Un-rescued forks persist into mitosis, leading to increased mitotic DNA damage. Excess RAD51 accumulates and persists at collapsed forks in NSMCE2-deficient cells, possibly due to lack of BLM recruitment to stalled forks. Despite failure of BLM to accumulate at stalled forks, NSMCE2-deficient cells exhibit lower levels of hydroxyurea-induced sister chromatid exchange. In cells deficient in both NSMCE2 and BLM, hydroxyurea-induced double strand breaks and sister chromatid exchange resembled levels found in NSCME2-deficient cells. We conclude that the rescue of collapsed forks by converging forks is dependent on NSMCE2. Author summary DNA damage encountered by the replication fork causes fork stalling and is a major source of mutations when not adequately repaired. Fork stalling can lead to fork collapse, that is, a state of the fork in which normal DNA synthesis cannot be resumed at the site of stalling. Collapsed forks must be rescued by replication forks initiated nearby, but little is known about the rescue mechanism by which an active fork merges with a collapsed fork. We used an inhibitor of DNA replication to generate collapsed replication forks and then studied genetic control of collapsed-fork rescue. We found that NSMCE2, which is a gene product that is known to regulate repair responses to replication stress, is required for cells to effectively rescue collapsed replication forks in order to complete DNA synthesis. DNA double strand breaks that are associated with normal collapsed-fork rescue do not accumulate in cells that are deficient for NSMCE2, suggesting that DNA breakage is part of the rescue and repair mechanism. Failure to rescue collapsed forks leads to DNA damage in mitosis and DNA damage in the following cell cycle. Our work highlights a unique role for NSMCE2 in rescue of collapsed replication forks.
机译:NSMCE2是E3 SUMO连接酶,是SMC5 / 6复合体的一个亚基,与复制叉相关联,可防止基因组不稳定。在这里,我们研究了在人类NSMCE2缺陷型细胞中通过长时间的羟基脲治疗产生的折叠复制叉的命运。在救援过程中,双叉断裂通过汇聚叉子在正常细胞中积累,而不是在NSMCE2缺陷细胞中积累。未经抢救的叉子持续进入有丝分裂,导致有丝分裂DNA损伤增加。过量的RAD51在NSMCE2缺陷细胞的折叠叉中积累并持续存在,这可能是由于缺乏BLM招募到停滞的叉。尽管BLM无法在停滞的叉子上积聚,但NSMCE2缺陷型细胞的羟基脲诱导的姐妹染色单体交换水平较低。在缺乏NSMCE2和BLM的细胞中,羟基脲诱导的双链断裂和姐妹染色单体交换类似于在NSCME2缺乏细胞中发现的水平。我们得出的结论是,通过收敛叉来救援折叠叉取决于NSMCE2。作者摘要复制叉遇到的DNA损伤会导致叉停转,并且如果未得到充分修复,则是突变的主要来源。货叉失速会导致货叉崩溃,即货叉处于无法在失速位点恢复正常DNA合成的状态。必须通过附近启动的复制叉来挽救折叠的叉,但是对于主动叉与折叠的叉合并的救援机制知之甚少。我们使用了一种DNA复制抑制剂来产生折叠的复制叉,然后研究了折叠叉救援的遗传控制。我们发现,NSMCE2是一种已知可调节对复制压力的修复反应的基因产物,是细胞有效拯救折叠的复制叉以完成DNA合成所必需的。与正常的折叠叉救援相关的DNA双链断裂不会在缺乏NSMCE2的细胞中积聚,这表明DNA断裂是救援和修复机制的一部分。无法挽救塌陷的叉子会导致有丝分裂中的DNA损伤,并在随后的细胞周期中导致DNA损伤。我们的工作强调了NSMCE2在挽救折叠的复制叉中的独特作用。

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