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Recovery from the DNA Replication Checkpoint

机译:从DNA复制检查点恢复

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摘要

Checkpoint recovery is integral to a successful checkpoint response. Checkpoint pathways monitor progress during cell division so that in the event of an error, the checkpoint is activated to block the cell cycle and activate repair pathways. Intrinsic to this process is that once repair has been achieved, the checkpoint signaling pathway is inactivated and cell cycle progression resumes. We use the term “checkpoint recovery” to describe the pathways responsible for the inactivation of checkpoint signaling and cell cycle re-entry after the initial stress has been alleviated. The DNA replication or S-phase checkpoint monitors the integrity of DNA synthesis. When replication stress is encountered, replication forks are stalled, and the checkpoint signaling pathway is activated. Central to recovery from the S-phase checkpoint is the restart of stalled replication forks. If checkpoint recovery fails, stalled forks may become unstable and lead to DNA breaks or unusual DNA structures that are difficult to resolve, causing genomic instability. Alternatively, if cell cycle resumption mechanisms become uncoupled from checkpoint inactivation, cells with under-replicated DNA might proceed through the cell cycle, also diminishing genomic stability. In this review, we discuss the molecular mechanisms that contribute to inactivation of the S-phase checkpoint signaling pathway and the restart of replication forks during recovery from replication stress.
机译:检查点恢复是成功执行检查点响应所必需的。检查点途径可监控细胞分裂过程中的进展,以便在发生错误时激活检查点以阻止细胞周期并激活修复途径。此过程的内在原因是,一旦完成修复,检查点信号传导途径将失活,细胞周期进程将恢复。我们使用术语“检查点恢复”来描述缓解初始压力后导致检查点信号失活和细胞周期重新进入的途径。 DNA复制或S期检查点可监控DNA合成的完整性。当遇到复制压力时,复制叉停滞,并激活检查点信号通路。从S阶段检查点恢复的中心是重新启动停滞的复制叉。如果检查点恢复失败,停滞的叉子可能会变得不稳定,并导致DNA断裂或难以解析的异常DNA结构,从而导致基因组不稳定。或者,如果细胞周期恢复机制与检查点失活脱钩,则DNA复制不足的细胞可能会继续经历细胞周期,从而降低基因组稳定性。在这篇综述中,我们讨论了导致S期检查点信号通路失活以及从复制压力恢复过程中复制叉重启的分子机制。

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