Cargando…

A Rad53 Independent Function of Rad9 Becomes Crucial for Genome Maintenance in the Absence of the RecQ Helicase Sgs1

The conserved family of RecQ DNA helicases consists of caretaker tumour suppressors, that defend genome integrity by acting on several pathways of DNA repair that maintain genome stability. In budding yeast, Sgs1 is the sole RecQ helicase and it has been implicated in checkpoint responses, replisome...

Descripción completa

Detalles Bibliográficos
Autores principales: Nielsen, Ida, Bentsen, Iben Bach, Andersen, Anni H., Gasser, Susan M., Bjergbaek, Lotte
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3835667/
https://www.ncbi.nlm.nih.gov/pubmed/24278365
http://dx.doi.org/10.1371/journal.pone.0081015
_version_ 1782292189995335680
author Nielsen, Ida
Bentsen, Iben Bach
Andersen, Anni H.
Gasser, Susan M.
Bjergbaek, Lotte
author_facet Nielsen, Ida
Bentsen, Iben Bach
Andersen, Anni H.
Gasser, Susan M.
Bjergbaek, Lotte
author_sort Nielsen, Ida
collection PubMed
description The conserved family of RecQ DNA helicases consists of caretaker tumour suppressors, that defend genome integrity by acting on several pathways of DNA repair that maintain genome stability. In budding yeast, Sgs1 is the sole RecQ helicase and it has been implicated in checkpoint responses, replisome stability and dissolution of double Holliday junctions during homologous recombination. In this study we investigate a possible genetic interaction between SGS1 and RAD9 in the cellular response to methyl methane sulphonate (MMS) induced damage and compare this with the genetic interaction between SGS1 and RAD24. The Rad9 protein, an adaptor for effector kinase activation, plays well-characterized roles in the DNA damage checkpoint response, whereas Rad24 is characterized as a sensor protein also in the DNA damage checkpoint response. Here we unveil novel insights into the cellular response to MMS-induced damage. Specifically, we show a strong synergistic functionality between SGS1 and RAD9 for recovery from MMS induced damage and for suppression of gross chromosomal rearrangements, which is not the case for SGS1 and RAD24. Intriguingly, it is a Rad53 independent function of Rad9, which becomes crucial for genome maintenance in the absence of Sgs1. Despite this, our dissection of the MMS checkpoint response reveals parallel, but unequal pathways for Rad53 activation and highlights significant differences between MMS- and hydroxyurea (HU)-induced checkpoint responses with relation to the requirement of the Sgs1 interacting partner Topoisomerase III (Top3). Thus, whereas earlier studies have documented a Top3-independent role of Sgs1 for an HU-induced checkpoint response, we show here that upon MMS treatment, Sgs1 and Top3 together define a minor but parallel pathway to that of Rad9.
format Online
Article
Text
id pubmed-3835667
institution National Center for Biotechnology Information
language English
publishDate 2013
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-38356672013-11-25 A Rad53 Independent Function of Rad9 Becomes Crucial for Genome Maintenance in the Absence of the RecQ Helicase Sgs1 Nielsen, Ida Bentsen, Iben Bach Andersen, Anni H. Gasser, Susan M. Bjergbaek, Lotte PLoS One Research Article The conserved family of RecQ DNA helicases consists of caretaker tumour suppressors, that defend genome integrity by acting on several pathways of DNA repair that maintain genome stability. In budding yeast, Sgs1 is the sole RecQ helicase and it has been implicated in checkpoint responses, replisome stability and dissolution of double Holliday junctions during homologous recombination. In this study we investigate a possible genetic interaction between SGS1 and RAD9 in the cellular response to methyl methane sulphonate (MMS) induced damage and compare this with the genetic interaction between SGS1 and RAD24. The Rad9 protein, an adaptor for effector kinase activation, plays well-characterized roles in the DNA damage checkpoint response, whereas Rad24 is characterized as a sensor protein also in the DNA damage checkpoint response. Here we unveil novel insights into the cellular response to MMS-induced damage. Specifically, we show a strong synergistic functionality between SGS1 and RAD9 for recovery from MMS induced damage and for suppression of gross chromosomal rearrangements, which is not the case for SGS1 and RAD24. Intriguingly, it is a Rad53 independent function of Rad9, which becomes crucial for genome maintenance in the absence of Sgs1. Despite this, our dissection of the MMS checkpoint response reveals parallel, but unequal pathways for Rad53 activation and highlights significant differences between MMS- and hydroxyurea (HU)-induced checkpoint responses with relation to the requirement of the Sgs1 interacting partner Topoisomerase III (Top3). Thus, whereas earlier studies have documented a Top3-independent role of Sgs1 for an HU-induced checkpoint response, we show here that upon MMS treatment, Sgs1 and Top3 together define a minor but parallel pathway to that of Rad9. Public Library of Science 2013-11-20 /pmc/articles/PMC3835667/ /pubmed/24278365 http://dx.doi.org/10.1371/journal.pone.0081015 Text en © 2013 Nielsen 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
Nielsen, Ida
Bentsen, Iben Bach
Andersen, Anni H.
Gasser, Susan M.
Bjergbaek, Lotte
A Rad53 Independent Function of Rad9 Becomes Crucial for Genome Maintenance in the Absence of the RecQ Helicase Sgs1
title A Rad53 Independent Function of Rad9 Becomes Crucial for Genome Maintenance in the Absence of the RecQ Helicase Sgs1
title_full A Rad53 Independent Function of Rad9 Becomes Crucial for Genome Maintenance in the Absence of the RecQ Helicase Sgs1
title_fullStr A Rad53 Independent Function of Rad9 Becomes Crucial for Genome Maintenance in the Absence of the RecQ Helicase Sgs1
title_full_unstemmed A Rad53 Independent Function of Rad9 Becomes Crucial for Genome Maintenance in the Absence of the RecQ Helicase Sgs1
title_short A Rad53 Independent Function of Rad9 Becomes Crucial for Genome Maintenance in the Absence of the RecQ Helicase Sgs1
title_sort rad53 independent function of rad9 becomes crucial for genome maintenance in the absence of the recq helicase sgs1
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3835667/
https://www.ncbi.nlm.nih.gov/pubmed/24278365
http://dx.doi.org/10.1371/journal.pone.0081015
work_keys_str_mv AT nielsenida arad53independentfunctionofrad9becomescrucialforgenomemaintenanceintheabsenceoftherecqhelicasesgs1
AT bentsenibenbach arad53independentfunctionofrad9becomescrucialforgenomemaintenanceintheabsenceoftherecqhelicasesgs1
AT andersenannih arad53independentfunctionofrad9becomescrucialforgenomemaintenanceintheabsenceoftherecqhelicasesgs1
AT gassersusanm arad53independentfunctionofrad9becomescrucialforgenomemaintenanceintheabsenceoftherecqhelicasesgs1
AT bjergbaeklotte arad53independentfunctionofrad9becomescrucialforgenomemaintenanceintheabsenceoftherecqhelicasesgs1
AT nielsenida rad53independentfunctionofrad9becomescrucialforgenomemaintenanceintheabsenceoftherecqhelicasesgs1
AT bentsenibenbach rad53independentfunctionofrad9becomescrucialforgenomemaintenanceintheabsenceoftherecqhelicasesgs1
AT andersenannih rad53independentfunctionofrad9becomescrucialforgenomemaintenanceintheabsenceoftherecqhelicasesgs1
AT gassersusanm rad53independentfunctionofrad9becomescrucialforgenomemaintenanceintheabsenceoftherecqhelicasesgs1
AT bjergbaeklotte rad53independentfunctionofrad9becomescrucialforgenomemaintenanceintheabsenceoftherecqhelicasesgs1