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EEPD1 Rescues Stressed Replication Forks and Maintains Genome Stability by Promoting End Resection and Homologous Recombination Repair

Replication fork stalling and collapse is a major source of genome instability leading to neoplastic transformation or cell death. Such stressed replication forks can be conservatively repaired and restarted using homologous recombination (HR) or non-conservatively repaired using micro-homology medi...

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Autores principales: Wu, Yuehan, Lee, Suk-Hee, Williamson, Elizabeth A., Reinert, Brian L., Cho, Ju Hwan, Xia, Fen, Jaiswal, Aruna Shanker, Srinivasan, Gayathri, Patel, Bhavita, Brantley, Alexis, Zhou, Daohong, Shao, Lijian, Pathak, Rupak, Hauer-Jensen, Martin, Singh, Sudha, Kong, Kimi, Wu, Xaiohua, Kim, Hyun-Suk, Beissbarth, Timothy, Gaedcke, Jochen, Burma, Sandeep, Nickoloff, Jac A., Hromas, Robert A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4684289/
https://www.ncbi.nlm.nih.gov/pubmed/26684013
http://dx.doi.org/10.1371/journal.pgen.1005675
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author Wu, Yuehan
Lee, Suk-Hee
Williamson, Elizabeth A.
Reinert, Brian L.
Cho, Ju Hwan
Xia, Fen
Jaiswal, Aruna Shanker
Srinivasan, Gayathri
Patel, Bhavita
Brantley, Alexis
Zhou, Daohong
Shao, Lijian
Pathak, Rupak
Hauer-Jensen, Martin
Singh, Sudha
Kong, Kimi
Wu, Xaiohua
Kim, Hyun-Suk
Beissbarth, Timothy
Gaedcke, Jochen
Burma, Sandeep
Nickoloff, Jac A.
Hromas, Robert A.
author_facet Wu, Yuehan
Lee, Suk-Hee
Williamson, Elizabeth A.
Reinert, Brian L.
Cho, Ju Hwan
Xia, Fen
Jaiswal, Aruna Shanker
Srinivasan, Gayathri
Patel, Bhavita
Brantley, Alexis
Zhou, Daohong
Shao, Lijian
Pathak, Rupak
Hauer-Jensen, Martin
Singh, Sudha
Kong, Kimi
Wu, Xaiohua
Kim, Hyun-Suk
Beissbarth, Timothy
Gaedcke, Jochen
Burma, Sandeep
Nickoloff, Jac A.
Hromas, Robert A.
author_sort Wu, Yuehan
collection PubMed
description Replication fork stalling and collapse is a major source of genome instability leading to neoplastic transformation or cell death. Such stressed replication forks can be conservatively repaired and restarted using homologous recombination (HR) or non-conservatively repaired using micro-homology mediated end joining (MMEJ). HR repair of stressed forks is initiated by 5’ end resection near the fork junction, which permits 3’ single strand invasion of a homologous template for fork restart. This 5’ end resection also prevents classical non-homologous end-joining (cNHEJ), a competing pathway for DNA double-strand break (DSB) repair. Unopposed NHEJ can cause genome instability during replication stress by abnormally fusing free double strand ends that occur as unstable replication fork repair intermediates. We show here that the previously uncharacterized Exonuclease/Endonuclease/Phosphatase Domain-1 (EEPD1) protein is required for initiating repair and restart of stalled forks. EEPD1 is recruited to stalled forks, enhances 5’ DNA end resection, and promotes restart of stalled forks. Interestingly, EEPD1 directs DSB repair away from cNHEJ, and also away from MMEJ, which requires limited end resection for initiation. EEPD1 is also required for proper ATR and CHK1 phosphorylation, and formation of gamma-H2AX, RAD51 and phospho-RPA32 foci. Consistent with a direct role in stalled replication fork cleavage, EEPD1 is a 5’ overhang nuclease in an obligate complex with the end resection nuclease Exo1 and BLM. EEPD1 depletion causes nuclear and cytogenetic defects, which are made worse by replication stress. Depleting 53BP1, which slows cNHEJ, fully rescues the nuclear and cytogenetic abnormalities seen with EEPD1 depletion. These data demonstrate that genome stability during replication stress is maintained by EEPD1, which initiates HR and inhibits cNHEJ and MMEJ.
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spelling pubmed-46842892015-12-31 EEPD1 Rescues Stressed Replication Forks and Maintains Genome Stability by Promoting End Resection and Homologous Recombination Repair Wu, Yuehan Lee, Suk-Hee Williamson, Elizabeth A. Reinert, Brian L. Cho, Ju Hwan Xia, Fen Jaiswal, Aruna Shanker Srinivasan, Gayathri Patel, Bhavita Brantley, Alexis Zhou, Daohong Shao, Lijian Pathak, Rupak Hauer-Jensen, Martin Singh, Sudha Kong, Kimi Wu, Xaiohua Kim, Hyun-Suk Beissbarth, Timothy Gaedcke, Jochen Burma, Sandeep Nickoloff, Jac A. Hromas, Robert A. PLoS Genet Research Article Replication fork stalling and collapse is a major source of genome instability leading to neoplastic transformation or cell death. Such stressed replication forks can be conservatively repaired and restarted using homologous recombination (HR) or non-conservatively repaired using micro-homology mediated end joining (MMEJ). HR repair of stressed forks is initiated by 5’ end resection near the fork junction, which permits 3’ single strand invasion of a homologous template for fork restart. This 5’ end resection also prevents classical non-homologous end-joining (cNHEJ), a competing pathway for DNA double-strand break (DSB) repair. Unopposed NHEJ can cause genome instability during replication stress by abnormally fusing free double strand ends that occur as unstable replication fork repair intermediates. We show here that the previously uncharacterized Exonuclease/Endonuclease/Phosphatase Domain-1 (EEPD1) protein is required for initiating repair and restart of stalled forks. EEPD1 is recruited to stalled forks, enhances 5’ DNA end resection, and promotes restart of stalled forks. Interestingly, EEPD1 directs DSB repair away from cNHEJ, and also away from MMEJ, which requires limited end resection for initiation. EEPD1 is also required for proper ATR and CHK1 phosphorylation, and formation of gamma-H2AX, RAD51 and phospho-RPA32 foci. Consistent with a direct role in stalled replication fork cleavage, EEPD1 is a 5’ overhang nuclease in an obligate complex with the end resection nuclease Exo1 and BLM. EEPD1 depletion causes nuclear and cytogenetic defects, which are made worse by replication stress. Depleting 53BP1, which slows cNHEJ, fully rescues the nuclear and cytogenetic abnormalities seen with EEPD1 depletion. These data demonstrate that genome stability during replication stress is maintained by EEPD1, which initiates HR and inhibits cNHEJ and MMEJ. Public Library of Science 2015-12-18 /pmc/articles/PMC4684289/ /pubmed/26684013 http://dx.doi.org/10.1371/journal.pgen.1005675 Text en © 2015 Wu et al http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Wu, Yuehan
Lee, Suk-Hee
Williamson, Elizabeth A.
Reinert, Brian L.
Cho, Ju Hwan
Xia, Fen
Jaiswal, Aruna Shanker
Srinivasan, Gayathri
Patel, Bhavita
Brantley, Alexis
Zhou, Daohong
Shao, Lijian
Pathak, Rupak
Hauer-Jensen, Martin
Singh, Sudha
Kong, Kimi
Wu, Xaiohua
Kim, Hyun-Suk
Beissbarth, Timothy
Gaedcke, Jochen
Burma, Sandeep
Nickoloff, Jac A.
Hromas, Robert A.
EEPD1 Rescues Stressed Replication Forks and Maintains Genome Stability by Promoting End Resection and Homologous Recombination Repair
title EEPD1 Rescues Stressed Replication Forks and Maintains Genome Stability by Promoting End Resection and Homologous Recombination Repair
title_full EEPD1 Rescues Stressed Replication Forks and Maintains Genome Stability by Promoting End Resection and Homologous Recombination Repair
title_fullStr EEPD1 Rescues Stressed Replication Forks and Maintains Genome Stability by Promoting End Resection and Homologous Recombination Repair
title_full_unstemmed EEPD1 Rescues Stressed Replication Forks and Maintains Genome Stability by Promoting End Resection and Homologous Recombination Repair
title_short EEPD1 Rescues Stressed Replication Forks and Maintains Genome Stability by Promoting End Resection and Homologous Recombination Repair
title_sort eepd1 rescues stressed replication forks and maintains genome stability by promoting end resection and homologous recombination repair
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4684289/
https://www.ncbi.nlm.nih.gov/pubmed/26684013
http://dx.doi.org/10.1371/journal.pgen.1005675
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