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PARP1 recruits DNA translocases to restrain DNA replication and facilitate DNA repair

Replication fork reversal which restrains DNA replication progression is an important protective mechanism in response to replication stress. PARP1 is recruited to stalled forks to restrain DNA replication. However, PARP1 has no helicase activity, and the mechanism through which PARP1 participates i...

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Autores principales: Ho, Yen-Chih, Ku, Chen-Syun, Tsai, Siang-Sheng, Shiu, Jia-Lin, Jiang, Yi-Zhen, Miriam, Hui Emmanuela, Zhang, Han-Wen, Chen, Yen-Tzu, Chiu, Wen-Tai, Chang, Song-Bin, Shen, Che-Hung, Myung, Kyungjae, Chi, Peter, Liaw, Hungjiun
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9794062/
https://www.ncbi.nlm.nih.gov/pubmed/36512630
http://dx.doi.org/10.1371/journal.pgen.1010545
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author Ho, Yen-Chih
Ku, Chen-Syun
Tsai, Siang-Sheng
Shiu, Jia-Lin
Jiang, Yi-Zhen
Miriam, Hui Emmanuela
Zhang, Han-Wen
Chen, Yen-Tzu
Chiu, Wen-Tai
Chang, Song-Bin
Shen, Che-Hung
Myung, Kyungjae
Chi, Peter
Liaw, Hungjiun
author_facet Ho, Yen-Chih
Ku, Chen-Syun
Tsai, Siang-Sheng
Shiu, Jia-Lin
Jiang, Yi-Zhen
Miriam, Hui Emmanuela
Zhang, Han-Wen
Chen, Yen-Tzu
Chiu, Wen-Tai
Chang, Song-Bin
Shen, Che-Hung
Myung, Kyungjae
Chi, Peter
Liaw, Hungjiun
author_sort Ho, Yen-Chih
collection PubMed
description Replication fork reversal which restrains DNA replication progression is an important protective mechanism in response to replication stress. PARP1 is recruited to stalled forks to restrain DNA replication. However, PARP1 has no helicase activity, and the mechanism through which PARP1 participates in DNA replication restraint remains unclear. Here, we found novel protein-protein interactions between PARP1 and DNA translocases, including HLTF, SHPRH, ZRANB3, and SMARCAL1, with HLTF showing the strongest interaction among these DNA translocases. Although HLTF and SHPRH share structural and functional similarity, it remains unclear whether SHPRH contains DNA translocase activity. We further identified the ability of SHPRH to restrain DNA replication upon replication stress, indicating that SHPRH itself could be a DNA translocase or a helper to facilitate DNA translocation. Although hydroxyurea (HU) and MMS induce different types of replication stress, they both induce common DNA replication restraint mechanisms independent of intra-S phase activation. Our results suggest that the PARP1 facilitates DNA translocase recruitment to damaged forks, preventing fork collapse and facilitating DNA repair.
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spelling pubmed-97940622022-12-28 PARP1 recruits DNA translocases to restrain DNA replication and facilitate DNA repair Ho, Yen-Chih Ku, Chen-Syun Tsai, Siang-Sheng Shiu, Jia-Lin Jiang, Yi-Zhen Miriam, Hui Emmanuela Zhang, Han-Wen Chen, Yen-Tzu Chiu, Wen-Tai Chang, Song-Bin Shen, Che-Hung Myung, Kyungjae Chi, Peter Liaw, Hungjiun PLoS Genet Research Article Replication fork reversal which restrains DNA replication progression is an important protective mechanism in response to replication stress. PARP1 is recruited to stalled forks to restrain DNA replication. However, PARP1 has no helicase activity, and the mechanism through which PARP1 participates in DNA replication restraint remains unclear. Here, we found novel protein-protein interactions between PARP1 and DNA translocases, including HLTF, SHPRH, ZRANB3, and SMARCAL1, with HLTF showing the strongest interaction among these DNA translocases. Although HLTF and SHPRH share structural and functional similarity, it remains unclear whether SHPRH contains DNA translocase activity. We further identified the ability of SHPRH to restrain DNA replication upon replication stress, indicating that SHPRH itself could be a DNA translocase or a helper to facilitate DNA translocation. Although hydroxyurea (HU) and MMS induce different types of replication stress, they both induce common DNA replication restraint mechanisms independent of intra-S phase activation. Our results suggest that the PARP1 facilitates DNA translocase recruitment to damaged forks, preventing fork collapse and facilitating DNA repair. Public Library of Science 2022-12-13 /pmc/articles/PMC9794062/ /pubmed/36512630 http://dx.doi.org/10.1371/journal.pgen.1010545 Text en © 2022 Ho et al https://creativecommons.org/licenses/by/4.0/This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Ho, Yen-Chih
Ku, Chen-Syun
Tsai, Siang-Sheng
Shiu, Jia-Lin
Jiang, Yi-Zhen
Miriam, Hui Emmanuela
Zhang, Han-Wen
Chen, Yen-Tzu
Chiu, Wen-Tai
Chang, Song-Bin
Shen, Che-Hung
Myung, Kyungjae
Chi, Peter
Liaw, Hungjiun
PARP1 recruits DNA translocases to restrain DNA replication and facilitate DNA repair
title PARP1 recruits DNA translocases to restrain DNA replication and facilitate DNA repair
title_full PARP1 recruits DNA translocases to restrain DNA replication and facilitate DNA repair
title_fullStr PARP1 recruits DNA translocases to restrain DNA replication and facilitate DNA repair
title_full_unstemmed PARP1 recruits DNA translocases to restrain DNA replication and facilitate DNA repair
title_short PARP1 recruits DNA translocases to restrain DNA replication and facilitate DNA repair
title_sort parp1 recruits dna translocases to restrain dna replication and facilitate dna repair
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9794062/
https://www.ncbi.nlm.nih.gov/pubmed/36512630
http://dx.doi.org/10.1371/journal.pgen.1010545
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