Mrc1-Dependent Chromatin Compaction Represses DNA Double-Stranded Break Repair by Homologous Recombination Upon Replication Stress

The coordination of DNA replication and repair is critical for the maintenance of genome stability. It has been shown that the Mrc1-mediated S phase checkpoint inhibits DNA double-stranded break (DSB) repair through homologous recombination (HR). How the replication checkpoint inhibits HR remains on...

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Main Authors: Poyuan Xing, Yang Dong, Jingyu Zhao, Zhou Zhou, Zhao Li, Yu Wang, Mengfei Li, Xinghua Zhang, Xuefeng Chen
Format: Article
Language:English
Published: Frontiers Media S.A. 2021-02-01
Series:Frontiers in Cell and Developmental Biology
Subjects:
Online Access:https://www.frontiersin.org/articles/10.3389/fcell.2021.630777/full
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spelling doaj-70d596989e5d4d728327578ee836b0f72021-02-15T05:44:09ZengFrontiers Media S.A.Frontiers in Cell and Developmental Biology2296-634X2021-02-01910.3389/fcell.2021.630777630777Mrc1-Dependent Chromatin Compaction Represses DNA Double-Stranded Break Repair by Homologous Recombination Upon Replication StressPoyuan XingYang DongJingyu ZhaoZhou ZhouZhao LiYu WangMengfei LiXinghua ZhangXuefeng ChenThe coordination of DNA replication and repair is critical for the maintenance of genome stability. It has been shown that the Mrc1-mediated S phase checkpoint inhibits DNA double-stranded break (DSB) repair through homologous recombination (HR). How the replication checkpoint inhibits HR remains only partially understood. Here we show that replication stress induces the suppression of both Sgs1/Dna2- and Exo1-mediated resection pathways in an Mrc1-dependent manner. As a result, the loading of the single-stranded DNA binding factor replication protein A (RPA) and Rad51 and DSB repair by HR were severely impaired under replication stress. Notably, the deletion of MRC1 partially restored the recruitment of resection enzymes, DSB end resection, and the loading of RPA and Rad51. The role of Mrc1 in inhibiting DSB end resection is independent of Csm3, Tof1, or Ctf4. Mechanistically, we reveal that replication stress induces global chromatin compaction in a manner partially dependent on Mrc1, and this chromatin compaction limits the access of chromatin remodeling factors and HR proteins, leading to the suppression of HR. Our study reveals a critical role of the Mrc1-dependent chromatin structure change in coordinating DNA replication and recombination under replication stress.https://www.frontiersin.org/articles/10.3389/fcell.2021.630777/fullreplication checkpointMrc1DNA double-stranded breakshomologous recombinationreplication stress
collection DOAJ
language English
format Article
sources DOAJ
author Poyuan Xing
Yang Dong
Jingyu Zhao
Zhou Zhou
Zhao Li
Yu Wang
Mengfei Li
Xinghua Zhang
Xuefeng Chen
spellingShingle Poyuan Xing
Yang Dong
Jingyu Zhao
Zhou Zhou
Zhao Li
Yu Wang
Mengfei Li
Xinghua Zhang
Xuefeng Chen
Mrc1-Dependent Chromatin Compaction Represses DNA Double-Stranded Break Repair by Homologous Recombination Upon Replication Stress
Frontiers in Cell and Developmental Biology
replication checkpoint
Mrc1
DNA double-stranded breaks
homologous recombination
replication stress
author_facet Poyuan Xing
Yang Dong
Jingyu Zhao
Zhou Zhou
Zhao Li
Yu Wang
Mengfei Li
Xinghua Zhang
Xuefeng Chen
author_sort Poyuan Xing
title Mrc1-Dependent Chromatin Compaction Represses DNA Double-Stranded Break Repair by Homologous Recombination Upon Replication Stress
title_short Mrc1-Dependent Chromatin Compaction Represses DNA Double-Stranded Break Repair by Homologous Recombination Upon Replication Stress
title_full Mrc1-Dependent Chromatin Compaction Represses DNA Double-Stranded Break Repair by Homologous Recombination Upon Replication Stress
title_fullStr Mrc1-Dependent Chromatin Compaction Represses DNA Double-Stranded Break Repair by Homologous Recombination Upon Replication Stress
title_full_unstemmed Mrc1-Dependent Chromatin Compaction Represses DNA Double-Stranded Break Repair by Homologous Recombination Upon Replication Stress
title_sort mrc1-dependent chromatin compaction represses dna double-stranded break repair by homologous recombination upon replication stress
publisher Frontiers Media S.A.
series Frontiers in Cell and Developmental Biology
issn 2296-634X
publishDate 2021-02-01
description The coordination of DNA replication and repair is critical for the maintenance of genome stability. It has been shown that the Mrc1-mediated S phase checkpoint inhibits DNA double-stranded break (DSB) repair through homologous recombination (HR). How the replication checkpoint inhibits HR remains only partially understood. Here we show that replication stress induces the suppression of both Sgs1/Dna2- and Exo1-mediated resection pathways in an Mrc1-dependent manner. As a result, the loading of the single-stranded DNA binding factor replication protein A (RPA) and Rad51 and DSB repair by HR were severely impaired under replication stress. Notably, the deletion of MRC1 partially restored the recruitment of resection enzymes, DSB end resection, and the loading of RPA and Rad51. The role of Mrc1 in inhibiting DSB end resection is independent of Csm3, Tof1, or Ctf4. Mechanistically, we reveal that replication stress induces global chromatin compaction in a manner partially dependent on Mrc1, and this chromatin compaction limits the access of chromatin remodeling factors and HR proteins, leading to the suppression of HR. Our study reveals a critical role of the Mrc1-dependent chromatin structure change in coordinating DNA replication and recombination under replication stress.
topic replication checkpoint
Mrc1
DNA double-stranded breaks
homologous recombination
replication stress
url https://www.frontiersin.org/articles/10.3389/fcell.2021.630777/full
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