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Unligated Okazaki Fragments Induce PCNA Ubiquitination and a Requirement for Rad59-Dependent Replication Fork Progression

Deficiency in DNA ligase I, encoded by CDC9 in budding yeast, leads to the accumulation of unligated Okazaki fragments and triggers PCNA ubiquitination at a non-canonical lysine residue. This signal is crucial to activate the S phase checkpoint, which promotes cell cycle delay. We report here that a...

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Autores principales: Nguyen, Hai Dang, Becker, Jordan, Thu, Yee Mon, Costanzo, Michael, Koch, Elizabeth N., Smith, Stephanie, Myung, Kyungjae, Myers, Chad L., Boone, Charles, Bielinsky, Anja-Katrin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3688925/
https://www.ncbi.nlm.nih.gov/pubmed/23824283
http://dx.doi.org/10.1371/journal.pone.0066379
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author Nguyen, Hai Dang
Becker, Jordan
Thu, Yee Mon
Costanzo, Michael
Koch, Elizabeth N.
Smith, Stephanie
Myung, Kyungjae
Myers, Chad L.
Boone, Charles
Bielinsky, Anja-Katrin
author_facet Nguyen, Hai Dang
Becker, Jordan
Thu, Yee Mon
Costanzo, Michael
Koch, Elizabeth N.
Smith, Stephanie
Myung, Kyungjae
Myers, Chad L.
Boone, Charles
Bielinsky, Anja-Katrin
author_sort Nguyen, Hai Dang
collection PubMed
description Deficiency in DNA ligase I, encoded by CDC9 in budding yeast, leads to the accumulation of unligated Okazaki fragments and triggers PCNA ubiquitination at a non-canonical lysine residue. This signal is crucial to activate the S phase checkpoint, which promotes cell cycle delay. We report here that a pol30-K107 mutation alleviated cell cycle delay in cdc9 mutants, consistent with the idea that the modification of PCNA at K107 affects the rate of DNA synthesis at replication forks. To determine whether PCNA ubiquitination occurred in response to nicks or was triggered by the lack of PCNA-DNA ligase interaction, we complemented cdc9 cells with either wild-type DNA ligase I or a mutant form, which fails to interact with PCNA. Both enzymes reversed PCNA ubiquitination, arguing that the modification is likely an integral part of a novel nick-sensory mechanism and not due to non-specific secondary mutations that could have occurred spontaneously in cdc9 mutants. To further understand how cells cope with the accumulation of nicks during DNA replication, we utilized cdc9-1 in a genome-wide synthetic lethality screen, which identified RAD59 as a strong negative interactor. In comparison to cdc9 single mutants, cdc9 rad59Δ double mutants did not alter PCNA ubiquitination but enhanced phosphorylation of the mediator of the replication checkpoint, Mrc1. Since Mrc1 resides at the replication fork and is phosphorylated in response to fork stalling, these results indicate that Rad59 alleviates nick-induced replication fork slowdown. Thus, we propose that Rad59 promotes fork progression when Okazaki fragment processing is compromised and counteracts PCNA-K107 mediated cell cycle arrest.
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spelling pubmed-36889252013-07-02 Unligated Okazaki Fragments Induce PCNA Ubiquitination and a Requirement for Rad59-Dependent Replication Fork Progression Nguyen, Hai Dang Becker, Jordan Thu, Yee Mon Costanzo, Michael Koch, Elizabeth N. Smith, Stephanie Myung, Kyungjae Myers, Chad L. Boone, Charles Bielinsky, Anja-Katrin PLoS One Research Article Deficiency in DNA ligase I, encoded by CDC9 in budding yeast, leads to the accumulation of unligated Okazaki fragments and triggers PCNA ubiquitination at a non-canonical lysine residue. This signal is crucial to activate the S phase checkpoint, which promotes cell cycle delay. We report here that a pol30-K107 mutation alleviated cell cycle delay in cdc9 mutants, consistent with the idea that the modification of PCNA at K107 affects the rate of DNA synthesis at replication forks. To determine whether PCNA ubiquitination occurred in response to nicks or was triggered by the lack of PCNA-DNA ligase interaction, we complemented cdc9 cells with either wild-type DNA ligase I or a mutant form, which fails to interact with PCNA. Both enzymes reversed PCNA ubiquitination, arguing that the modification is likely an integral part of a novel nick-sensory mechanism and not due to non-specific secondary mutations that could have occurred spontaneously in cdc9 mutants. To further understand how cells cope with the accumulation of nicks during DNA replication, we utilized cdc9-1 in a genome-wide synthetic lethality screen, which identified RAD59 as a strong negative interactor. In comparison to cdc9 single mutants, cdc9 rad59Δ double mutants did not alter PCNA ubiquitination but enhanced phosphorylation of the mediator of the replication checkpoint, Mrc1. Since Mrc1 resides at the replication fork and is phosphorylated in response to fork stalling, these results indicate that Rad59 alleviates nick-induced replication fork slowdown. Thus, we propose that Rad59 promotes fork progression when Okazaki fragment processing is compromised and counteracts PCNA-K107 mediated cell cycle arrest. Public Library of Science 2013-06-18 /pmc/articles/PMC3688925/ /pubmed/23824283 http://dx.doi.org/10.1371/journal.pone.0066379 Text en https://creativecommons.org/publicdomain/zero/1.0/ This is an open-access article distributed under the terms of the Creative Commons Public Domain declaration, which stipulates that, once placed in the public domain, this work may be freely reproduced, distributed, transmitted, modified, built upon, or otherwise used by anyone for any lawful purpose.
spellingShingle Research Article
Nguyen, Hai Dang
Becker, Jordan
Thu, Yee Mon
Costanzo, Michael
Koch, Elizabeth N.
Smith, Stephanie
Myung, Kyungjae
Myers, Chad L.
Boone, Charles
Bielinsky, Anja-Katrin
Unligated Okazaki Fragments Induce PCNA Ubiquitination and a Requirement for Rad59-Dependent Replication Fork Progression
title Unligated Okazaki Fragments Induce PCNA Ubiquitination and a Requirement for Rad59-Dependent Replication Fork Progression
title_full Unligated Okazaki Fragments Induce PCNA Ubiquitination and a Requirement for Rad59-Dependent Replication Fork Progression
title_fullStr Unligated Okazaki Fragments Induce PCNA Ubiquitination and a Requirement for Rad59-Dependent Replication Fork Progression
title_full_unstemmed Unligated Okazaki Fragments Induce PCNA Ubiquitination and a Requirement for Rad59-Dependent Replication Fork Progression
title_short Unligated Okazaki Fragments Induce PCNA Ubiquitination and a Requirement for Rad59-Dependent Replication Fork Progression
title_sort unligated okazaki fragments induce pcna ubiquitination and a requirement for rad59-dependent replication fork progression
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3688925/
https://www.ncbi.nlm.nih.gov/pubmed/23824283
http://dx.doi.org/10.1371/journal.pone.0066379
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