Cargando…

The Oxidative Stress Responsive Transcription Factor Pap1 Confers DNA Damage Resistance on Checkpoint-Deficient Fission Yeast Cells

Eukaryotic cells invoke mechanisms to promote survival when confronted with cellular stress or damage to the genome. The protein kinase Chk1 is an integral and conserved component of the DNA damage response pathway. Mutation or inhibition of Chk1 results in mitotic death when cells are exposed to DN...

Descripción completa

Detalles Bibliográficos
Autores principales: Belfield, Carrie, Queenan, Craig, Rao, Hui, Kitamura, Kenji, Walworth, Nancy C.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3934961/
https://www.ncbi.nlm.nih.gov/pubmed/24587136
http://dx.doi.org/10.1371/journal.pone.0089936
_version_ 1782305132165201920
author Belfield, Carrie
Queenan, Craig
Rao, Hui
Kitamura, Kenji
Walworth, Nancy C.
author_facet Belfield, Carrie
Queenan, Craig
Rao, Hui
Kitamura, Kenji
Walworth, Nancy C.
author_sort Belfield, Carrie
collection PubMed
description Eukaryotic cells invoke mechanisms to promote survival when confronted with cellular stress or damage to the genome. The protein kinase Chk1 is an integral and conserved component of the DNA damage response pathway. Mutation or inhibition of Chk1 results in mitotic death when cells are exposed to DNA damage. Oxidative stress activates a pathway that results in nuclear accumulation of the bZIP transcription factor Pap1. We report the novel finding that fission yeast Pap1 confers resistance to drug- and non-drug-induced DNA damage even when the DNA damage checkpoint is compromised. Multi-copy expression of Pap1 restores growth to chk1-deficient cells exposed to camptothecin or hydroxyurea. Unexpectedly, increased Pap1 expression also promotes survival of chk1-deficient cells with mutations in genes encoding DNA ligase (cdc17) or DNA polymerase δ (cdc6), but not DNA replication initiation mutants. The ability of Pap1 to confer resistance to DNA damage was not specific to chk1 mutants, as it also improved survival of rad1- and rad9-deficient cells in the presence of CPT. To confer resistance to DNA damage Pap1 must localize to the nucleus and be transcriptionally active.
format Online
Article
Text
id pubmed-3934961
institution National Center for Biotechnology Information
language English
publishDate 2014
publisher Public Library of Science
record_format MEDLINE/PubMed
spelling pubmed-39349612014-03-04 The Oxidative Stress Responsive Transcription Factor Pap1 Confers DNA Damage Resistance on Checkpoint-Deficient Fission Yeast Cells Belfield, Carrie Queenan, Craig Rao, Hui Kitamura, Kenji Walworth, Nancy C. PLoS One Research Article Eukaryotic cells invoke mechanisms to promote survival when confronted with cellular stress or damage to the genome. The protein kinase Chk1 is an integral and conserved component of the DNA damage response pathway. Mutation or inhibition of Chk1 results in mitotic death when cells are exposed to DNA damage. Oxidative stress activates a pathway that results in nuclear accumulation of the bZIP transcription factor Pap1. We report the novel finding that fission yeast Pap1 confers resistance to drug- and non-drug-induced DNA damage even when the DNA damage checkpoint is compromised. Multi-copy expression of Pap1 restores growth to chk1-deficient cells exposed to camptothecin or hydroxyurea. Unexpectedly, increased Pap1 expression also promotes survival of chk1-deficient cells with mutations in genes encoding DNA ligase (cdc17) or DNA polymerase δ (cdc6), but not DNA replication initiation mutants. The ability of Pap1 to confer resistance to DNA damage was not specific to chk1 mutants, as it also improved survival of rad1- and rad9-deficient cells in the presence of CPT. To confer resistance to DNA damage Pap1 must localize to the nucleus and be transcriptionally active. Public Library of Science 2014-02-25 /pmc/articles/PMC3934961/ /pubmed/24587136 http://dx.doi.org/10.1371/journal.pone.0089936 Text en © 2014 Belfield 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
Belfield, Carrie
Queenan, Craig
Rao, Hui
Kitamura, Kenji
Walworth, Nancy C.
The Oxidative Stress Responsive Transcription Factor Pap1 Confers DNA Damage Resistance on Checkpoint-Deficient Fission Yeast Cells
title The Oxidative Stress Responsive Transcription Factor Pap1 Confers DNA Damage Resistance on Checkpoint-Deficient Fission Yeast Cells
title_full The Oxidative Stress Responsive Transcription Factor Pap1 Confers DNA Damage Resistance on Checkpoint-Deficient Fission Yeast Cells
title_fullStr The Oxidative Stress Responsive Transcription Factor Pap1 Confers DNA Damage Resistance on Checkpoint-Deficient Fission Yeast Cells
title_full_unstemmed The Oxidative Stress Responsive Transcription Factor Pap1 Confers DNA Damage Resistance on Checkpoint-Deficient Fission Yeast Cells
title_short The Oxidative Stress Responsive Transcription Factor Pap1 Confers DNA Damage Resistance on Checkpoint-Deficient Fission Yeast Cells
title_sort oxidative stress responsive transcription factor pap1 confers dna damage resistance on checkpoint-deficient fission yeast cells
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3934961/
https://www.ncbi.nlm.nih.gov/pubmed/24587136
http://dx.doi.org/10.1371/journal.pone.0089936
work_keys_str_mv AT belfieldcarrie theoxidativestressresponsivetranscriptionfactorpap1confersdnadamageresistanceoncheckpointdeficientfissionyeastcells
AT queenancraig theoxidativestressresponsivetranscriptionfactorpap1confersdnadamageresistanceoncheckpointdeficientfissionyeastcells
AT raohui theoxidativestressresponsivetranscriptionfactorpap1confersdnadamageresistanceoncheckpointdeficientfissionyeastcells
AT kitamurakenji theoxidativestressresponsivetranscriptionfactorpap1confersdnadamageresistanceoncheckpointdeficientfissionyeastcells
AT walworthnancyc theoxidativestressresponsivetranscriptionfactorpap1confersdnadamageresistanceoncheckpointdeficientfissionyeastcells
AT belfieldcarrie oxidativestressresponsivetranscriptionfactorpap1confersdnadamageresistanceoncheckpointdeficientfissionyeastcells
AT queenancraig oxidativestressresponsivetranscriptionfactorpap1confersdnadamageresistanceoncheckpointdeficientfissionyeastcells
AT raohui oxidativestressresponsivetranscriptionfactorpap1confersdnadamageresistanceoncheckpointdeficientfissionyeastcells
AT kitamurakenji oxidativestressresponsivetranscriptionfactorpap1confersdnadamageresistanceoncheckpointdeficientfissionyeastcells
AT walworthnancyc oxidativestressresponsivetranscriptionfactorpap1confersdnadamageresistanceoncheckpointdeficientfissionyeastcells