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Genetic Interactions Implicating Postreplicative Repair in Okazaki Fragment Processing

Ubiquitination of the replication clamp proliferating cell nuclear antigen (PCNA) at the conserved residue lysine (K)164 triggers postreplicative repair (PRR) to fill single-stranded gaps that result from stalled DNA polymerases. However, it has remained elusive as to whether cells engage PRR in res...

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Autores principales: Becker, Jordan R., Pons, Carles, Nguyen, Hai Dang, Costanzo, Michael, Boone, Charles, Myers, Chad L., Bielinsky, Anja-Katrin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4636136/
https://www.ncbi.nlm.nih.gov/pubmed/26545110
http://dx.doi.org/10.1371/journal.pgen.1005659
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author Becker, Jordan R.
Pons, Carles
Nguyen, Hai Dang
Costanzo, Michael
Boone, Charles
Myers, Chad L.
Bielinsky, Anja-Katrin
author_facet Becker, Jordan R.
Pons, Carles
Nguyen, Hai Dang
Costanzo, Michael
Boone, Charles
Myers, Chad L.
Bielinsky, Anja-Katrin
author_sort Becker, Jordan R.
collection PubMed
description Ubiquitination of the replication clamp proliferating cell nuclear antigen (PCNA) at the conserved residue lysine (K)164 triggers postreplicative repair (PRR) to fill single-stranded gaps that result from stalled DNA polymerases. However, it has remained elusive as to whether cells engage PRR in response to replication defects that do not directly impair DNA synthesis. To experimentally address this question, we performed synthetic genetic array (SGA) analysis with a ubiquitination-deficient K164 to arginine (K164R) mutant of PCNA against a library of S. cerevisiae temperature-sensitive alleles. The SGA signature of the K164R allele showed a striking correlation with profiles of mutants deficient in various aspects of lagging strand replication, including rad27Δ and elg1Δ. Rad27 is the primary flap endonuclease that processes 5’ flaps generated during lagging strand replication, whereas Elg1 has been implicated in unloading PCNA from chromatin. We observed chronic ubiquitination of PCNA at K164 in both rad27Δ and elg1Δ mutants. Notably, only rad27Δ cells exhibited a decline in cell viability upon elimination of PRR pathways, whereas elg1Δ mutants were not affected. We further provide evidence that K164 ubiquitination suppresses replication stress resulting from defective flap processing during Okazaki fragment maturation. Accordingly, ablation of PCNA ubiquitination increased S phase checkpoint activation, indicated by hyperphosphorylation of the Rad53 kinase. Furthermore, we demonstrate that alternative flap processing by overexpression of catalytically active exonuclease 1 eliminates PCNA ubiquitination. This suggests a model in which unprocessed flaps may directly participate in PRR signaling. Our findings demonstrate that PCNA ubiquitination at K164 in response to replication stress is not limited to DNA synthesis defects but extends to DNA processing during lagging strand replication.
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spelling pubmed-46361362015-11-13 Genetic Interactions Implicating Postreplicative Repair in Okazaki Fragment Processing Becker, Jordan R. Pons, Carles Nguyen, Hai Dang Costanzo, Michael Boone, Charles Myers, Chad L. Bielinsky, Anja-Katrin PLoS Genet Research Article Ubiquitination of the replication clamp proliferating cell nuclear antigen (PCNA) at the conserved residue lysine (K)164 triggers postreplicative repair (PRR) to fill single-stranded gaps that result from stalled DNA polymerases. However, it has remained elusive as to whether cells engage PRR in response to replication defects that do not directly impair DNA synthesis. To experimentally address this question, we performed synthetic genetic array (SGA) analysis with a ubiquitination-deficient K164 to arginine (K164R) mutant of PCNA against a library of S. cerevisiae temperature-sensitive alleles. The SGA signature of the K164R allele showed a striking correlation with profiles of mutants deficient in various aspects of lagging strand replication, including rad27Δ and elg1Δ. Rad27 is the primary flap endonuclease that processes 5’ flaps generated during lagging strand replication, whereas Elg1 has been implicated in unloading PCNA from chromatin. We observed chronic ubiquitination of PCNA at K164 in both rad27Δ and elg1Δ mutants. Notably, only rad27Δ cells exhibited a decline in cell viability upon elimination of PRR pathways, whereas elg1Δ mutants were not affected. We further provide evidence that K164 ubiquitination suppresses replication stress resulting from defective flap processing during Okazaki fragment maturation. Accordingly, ablation of PCNA ubiquitination increased S phase checkpoint activation, indicated by hyperphosphorylation of the Rad53 kinase. Furthermore, we demonstrate that alternative flap processing by overexpression of catalytically active exonuclease 1 eliminates PCNA ubiquitination. This suggests a model in which unprocessed flaps may directly participate in PRR signaling. Our findings demonstrate that PCNA ubiquitination at K164 in response to replication stress is not limited to DNA synthesis defects but extends to DNA processing during lagging strand replication. Public Library of Science 2015-11-06 /pmc/articles/PMC4636136/ /pubmed/26545110 http://dx.doi.org/10.1371/journal.pgen.1005659 Text en © 2015 Becker 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
Becker, Jordan R.
Pons, Carles
Nguyen, Hai Dang
Costanzo, Michael
Boone, Charles
Myers, Chad L.
Bielinsky, Anja-Katrin
Genetic Interactions Implicating Postreplicative Repair in Okazaki Fragment Processing
title Genetic Interactions Implicating Postreplicative Repair in Okazaki Fragment Processing
title_full Genetic Interactions Implicating Postreplicative Repair in Okazaki Fragment Processing
title_fullStr Genetic Interactions Implicating Postreplicative Repair in Okazaki Fragment Processing
title_full_unstemmed Genetic Interactions Implicating Postreplicative Repair in Okazaki Fragment Processing
title_short Genetic Interactions Implicating Postreplicative Repair in Okazaki Fragment Processing
title_sort genetic interactions implicating postreplicative repair in okazaki fragment processing
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4636136/
https://www.ncbi.nlm.nih.gov/pubmed/26545110
http://dx.doi.org/10.1371/journal.pgen.1005659
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