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PHOSPHORYLATION-DEPENDENT ASSOCIATION OF WRN WITH RPA IS REQUIRED FOR RECOVERY OF REPLICATION FORKS STALLED AT SECONDARY DNA STRUCTURES

The WRN protein mutated in the hereditary premature aging disorder Werner syndrome plays a vital role in handling, processing, and restoring perturbed replication forks. One of its most abundant partners, Replication Protein A (RPA), has been shown to robustly enhance WRN helicase activity in specif...

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Autores principales: Noto, Alessandro, Valenzisi, Pasquale, Fratini, Federica, Kulikowicz, Tomasz, Sommers, Joshua A., Di Feo, Flavia, Palermo, Valentina, Semproni, Maurizio, Crescenzi, Marco, Brosh, Robert M., Franchitto, Annapaola, Pichierri, Pietro
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cold Spring Harbor Laboratory 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10441285/
https://www.ncbi.nlm.nih.gov/pubmed/37609214
http://dx.doi.org/10.1101/2023.08.08.552428
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author Noto, Alessandro
Valenzisi, Pasquale
Fratini, Federica
Kulikowicz, Tomasz
Sommers, Joshua A.
Di Feo, Flavia
Palermo, Valentina
Semproni, Maurizio
Crescenzi, Marco
Brosh, Robert M.
Franchitto, Annapaola
Pichierri, Pietro
author_facet Noto, Alessandro
Valenzisi, Pasquale
Fratini, Federica
Kulikowicz, Tomasz
Sommers, Joshua A.
Di Feo, Flavia
Palermo, Valentina
Semproni, Maurizio
Crescenzi, Marco
Brosh, Robert M.
Franchitto, Annapaola
Pichierri, Pietro
author_sort Noto, Alessandro
collection PubMed
description The WRN protein mutated in the hereditary premature aging disorder Werner syndrome plays a vital role in handling, processing, and restoring perturbed replication forks. One of its most abundant partners, Replication Protein A (RPA), has been shown to robustly enhance WRN helicase activity in specific cases when tested in vitro. However, the significance of RPA-binding to WRN at replication forks in vivo has remained largely unexplored. In this study, we have identified several conserved phosphorylation sites in the acidic domain of WRN that are targeted by Casein Kinase 2 (CK2). Surprisingly, these phosphorylation sites are essential for the interaction between WRN and RPA, both in vitro and in human cells. By characterizing a CK2-unphosphorylatable WRN mutant that lacks the ability to bind RPA, we have determined that the WRN-RPA complex plays a critical role in fork recovery after replication stress whereas the WRN-RPA interaction is not necessary for the processing of replication forks or preventing DNA damage when forks stall or collapse. When WRN fails to bind RPA, fork recovery is impaired, leading to the accumulation of single-stranded DNA gaps in the parental strands, which are further enlarged by the structure-specific nuclease MRE11. Notably, RPA-binding by WRN and its helicase activity are crucial for countering the persistence of G4 structures after fork stalling. Therefore, our findings reveal for the first time a novel role for the WRN-RPA interaction to facilitate fork restart, thereby minimizing G4 accumulation at single-stranded DNA gaps and suppressing accumulation of unreplicated regions that may lead to MUS81-dependent double-strand breaks requiring efficient repair by RAD51 to prevent excessive DNA damage.
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spelling pubmed-104412852023-08-22 PHOSPHORYLATION-DEPENDENT ASSOCIATION OF WRN WITH RPA IS REQUIRED FOR RECOVERY OF REPLICATION FORKS STALLED AT SECONDARY DNA STRUCTURES Noto, Alessandro Valenzisi, Pasquale Fratini, Federica Kulikowicz, Tomasz Sommers, Joshua A. Di Feo, Flavia Palermo, Valentina Semproni, Maurizio Crescenzi, Marco Brosh, Robert M. Franchitto, Annapaola Pichierri, Pietro bioRxiv Article The WRN protein mutated in the hereditary premature aging disorder Werner syndrome plays a vital role in handling, processing, and restoring perturbed replication forks. One of its most abundant partners, Replication Protein A (RPA), has been shown to robustly enhance WRN helicase activity in specific cases when tested in vitro. However, the significance of RPA-binding to WRN at replication forks in vivo has remained largely unexplored. In this study, we have identified several conserved phosphorylation sites in the acidic domain of WRN that are targeted by Casein Kinase 2 (CK2). Surprisingly, these phosphorylation sites are essential for the interaction between WRN and RPA, both in vitro and in human cells. By characterizing a CK2-unphosphorylatable WRN mutant that lacks the ability to bind RPA, we have determined that the WRN-RPA complex plays a critical role in fork recovery after replication stress whereas the WRN-RPA interaction is not necessary for the processing of replication forks or preventing DNA damage when forks stall or collapse. When WRN fails to bind RPA, fork recovery is impaired, leading to the accumulation of single-stranded DNA gaps in the parental strands, which are further enlarged by the structure-specific nuclease MRE11. Notably, RPA-binding by WRN and its helicase activity are crucial for countering the persistence of G4 structures after fork stalling. Therefore, our findings reveal for the first time a novel role for the WRN-RPA interaction to facilitate fork restart, thereby minimizing G4 accumulation at single-stranded DNA gaps and suppressing accumulation of unreplicated regions that may lead to MUS81-dependent double-strand breaks requiring efficient repair by RAD51 to prevent excessive DNA damage. Cold Spring Harbor Laboratory 2023-08-09 /pmc/articles/PMC10441285/ /pubmed/37609214 http://dx.doi.org/10.1101/2023.08.08.552428 Text en https://creativecommons.org/licenses/by-nc-nd/4.0/This work is licensed under a Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International License (https://creativecommons.org/licenses/by-nc-nd/4.0/) , which allows reusers to copy and distribute the material in any medium or format in unadapted form only, for noncommercial purposes only, and only so long as attribution is given to the creator.
spellingShingle Article
Noto, Alessandro
Valenzisi, Pasquale
Fratini, Federica
Kulikowicz, Tomasz
Sommers, Joshua A.
Di Feo, Flavia
Palermo, Valentina
Semproni, Maurizio
Crescenzi, Marco
Brosh, Robert M.
Franchitto, Annapaola
Pichierri, Pietro
PHOSPHORYLATION-DEPENDENT ASSOCIATION OF WRN WITH RPA IS REQUIRED FOR RECOVERY OF REPLICATION FORKS STALLED AT SECONDARY DNA STRUCTURES
title PHOSPHORYLATION-DEPENDENT ASSOCIATION OF WRN WITH RPA IS REQUIRED FOR RECOVERY OF REPLICATION FORKS STALLED AT SECONDARY DNA STRUCTURES
title_full PHOSPHORYLATION-DEPENDENT ASSOCIATION OF WRN WITH RPA IS REQUIRED FOR RECOVERY OF REPLICATION FORKS STALLED AT SECONDARY DNA STRUCTURES
title_fullStr PHOSPHORYLATION-DEPENDENT ASSOCIATION OF WRN WITH RPA IS REQUIRED FOR RECOVERY OF REPLICATION FORKS STALLED AT SECONDARY DNA STRUCTURES
title_full_unstemmed PHOSPHORYLATION-DEPENDENT ASSOCIATION OF WRN WITH RPA IS REQUIRED FOR RECOVERY OF REPLICATION FORKS STALLED AT SECONDARY DNA STRUCTURES
title_short PHOSPHORYLATION-DEPENDENT ASSOCIATION OF WRN WITH RPA IS REQUIRED FOR RECOVERY OF REPLICATION FORKS STALLED AT SECONDARY DNA STRUCTURES
title_sort phosphorylation-dependent association of wrn with rpa is required for recovery of replication forks stalled at secondary dna structures
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10441285/
https://www.ncbi.nlm.nih.gov/pubmed/37609214
http://dx.doi.org/10.1101/2023.08.08.552428
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