Mechanisms and regulation of replication fork reversal

生物 DNA复制 遗传学 细胞生物学 染色体复制控制 DNA修复 解旋酶 DNA再复制 微小染色体维持 DNA 计算生物学 基因 核糖核酸
作者
Madison B. Adolph,David Cortez
出处
期刊:DNA Repair [Elsevier BV]
卷期号:141: 103731-103731 被引量:11
标识
DOI:10.1016/j.dnarep.2024.103731
摘要

DNA replication is remarkably accurate with estimates of only a handful of mutations per human genome per cell division cycle. Replication stress caused by DNA lesions, transcription-replication conflicts, and other obstacles to the replication machinery must be efficiently overcome in ways that minimize errors and maximize completion of DNA synthesis. Replication fork reversal is one mechanism that helps cells tolerate replication stress. This process involves reannealing of parental template DNA strands and generation of a nascent-nascent DNA duplex. While fork reversal may be beneficial by facilitating DNA repair or template switching, it must be confined to the appropriate contexts to preserve genome stability. Many enzymes have been implicated in this process including ATP-dependent DNA translocases like SMARCAL1, ZRANB3, HLTF, and the helicase FBH1. In addition, the RAD51 recombinase is required. Many additional factors and regulatory activities also act to ensure reversal is beneficial instead of yielding undesirable outcomes. Finally, reversed forks must also be stabilized and often need to be restarted to complete DNA synthesis. Disruption or deregulation of fork reversal causes a variety of human diseases. In this review we will describe the latest models for reversal and key mechanisms of regulation.

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