Smarcal1-Mediated Fork Reversal Triggers Mre11-Dependent Degradation of Nascent DNA in the Absence of Brca2 and Stable Rad51 Nucleofilaments

在缺乏 Brca2 和稳定 Rad51 核丝的情况下,Smarcal1 介导的复制叉逆转触发 Mre11 依赖的新生 DNA 降解

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作者:Arun Mouli Kolinjivadi ,Vincenzo Sannino ,Anna De Antoni ,Karina Zadorozhny ,Mairi Kilkenny ,Hervé Técher ,Giorgio Baldi ,Rong Shen ,Alberto Ciccia ,Luca Pellegrini ,Lumir Krejci ,Vincenzo Costanzo

Abstract

Brca2 deficiency causes Mre11-dependent degradation of nascent DNA at stalled forks, leading to cell lethality. To understand the molecular mechanisms underlying this process, we isolated Xenopus laevis Brca2. We demonstrated that Brca2 protein prevents single-stranded DNA gap accumulation at replication fork junctions and behind them by promoting Rad51 binding to replicating DNA. Without Brca2, forks with persistent gaps are converted by Smarcal1 into reversed forks, triggering extensive Mre11-dependent nascent DNA degradation. Stable Rad51 nucleofilaments, but not RPA or Rad51T131P mutant proteins, directly prevent Mre11-dependent DNA degradation. Mre11 inhibition instead promotes reversed fork accumulation in the absence of Brca2. Rad51 directly interacts with the Pol α N-terminal domain, promoting Pol α and δ binding to stalled replication forks. This interaction likely promotes replication fork restart and gap avoidance. These results indicate that Brca2 and Rad51 prevent formation of abnormal DNA replication intermediates, whose processing by Smarcal1 and Mre11 predisposes to genome instability. Keywords: Brca2; DNA replication; Mre11; Rad51; Xenopus laevis; fork protection.

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