Cargando…

Human PIF1 helicase supports DNA replication and cell growth under oncogenic-stress

Unwinding duplex DNA is a critical processing step during replication, repair and transcription. Pif1 are highly conserved non-processive 5′->3′ DNA helicases with well-established roles in maintenance of yeast genome stability. However, the function of the sole member of Pif1 family in humans re...

Descripción completa

Detalles Bibliográficos
Autores principales: Gagou, Mary E., Ganesh, Anil, Phear, Geraldine, Robinson, Darren, Petermann, Eva, Cox, Angela, Meuth, Mark
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Impact Journals LLC 2014
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4294361/
https://www.ncbi.nlm.nih.gov/pubmed/25359767
_version_ 1782352715864604672
author Gagou, Mary E.
Ganesh, Anil
Phear, Geraldine
Robinson, Darren
Petermann, Eva
Cox, Angela
Meuth, Mark
author_facet Gagou, Mary E.
Ganesh, Anil
Phear, Geraldine
Robinson, Darren
Petermann, Eva
Cox, Angela
Meuth, Mark
author_sort Gagou, Mary E.
collection PubMed
description Unwinding duplex DNA is a critical processing step during replication, repair and transcription. Pif1 are highly conserved non-processive 5′->3′ DNA helicases with well-established roles in maintenance of yeast genome stability. However, the function of the sole member of Pif1 family in humans remains unclear. Human PIF1 is essential for tumour cell viability, particularly during replication stress, but is dispensable in non-cancerous cells and Pif1 deficient mice. Here we report that suppression of PIF1 function slows replication fork rates and increases arrested forks during normal cycling conditions. Importantly, PIF1-dependent replication impediments impair S-phase progression and reduce proliferation rates of RAS oncogene-transformed fibroblasts, where replication fork slowing is exacerbated, but not parental, non-cancerous cells. Disrupted fork movement upon PIF1-depletion does not enhance double-stranded break formation or DNA damage responses but affects resumption of DNA synthesis after prolonged replication inhibitor exposure, accompanied by diminished new origin firing and mainly S-phase entry. Taken together, we characterised a functional role for human PIF1 in DNA replication that becomes important for cell growth under oncogenic stress. Given that oncogenes induce high levels of replication stress during the early stages of tumorigenesis, this function of PIF1 could become critical during cancer development.
format Online
Article
Text
id pubmed-4294361
institution National Center for Biotechnology Information
language English
publishDate 2014
publisher Impact Journals LLC
record_format MEDLINE/PubMed
spelling pubmed-42943612015-01-21 Human PIF1 helicase supports DNA replication and cell growth under oncogenic-stress Gagou, Mary E. Ganesh, Anil Phear, Geraldine Robinson, Darren Petermann, Eva Cox, Angela Meuth, Mark Oncotarget Research Paper Unwinding duplex DNA is a critical processing step during replication, repair and transcription. Pif1 are highly conserved non-processive 5′->3′ DNA helicases with well-established roles in maintenance of yeast genome stability. However, the function of the sole member of Pif1 family in humans remains unclear. Human PIF1 is essential for tumour cell viability, particularly during replication stress, but is dispensable in non-cancerous cells and Pif1 deficient mice. Here we report that suppression of PIF1 function slows replication fork rates and increases arrested forks during normal cycling conditions. Importantly, PIF1-dependent replication impediments impair S-phase progression and reduce proliferation rates of RAS oncogene-transformed fibroblasts, where replication fork slowing is exacerbated, but not parental, non-cancerous cells. Disrupted fork movement upon PIF1-depletion does not enhance double-stranded break formation or DNA damage responses but affects resumption of DNA synthesis after prolonged replication inhibitor exposure, accompanied by diminished new origin firing and mainly S-phase entry. Taken together, we characterised a functional role for human PIF1 in DNA replication that becomes important for cell growth under oncogenic stress. Given that oncogenes induce high levels of replication stress during the early stages of tumorigenesis, this function of PIF1 could become critical during cancer development. Impact Journals LLC 2014-11-05 /pmc/articles/PMC4294361/ /pubmed/25359767 Text en Copyright: © 2014 Gagou et al. http://creativecommons.org/licenses/by/2.5/ 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 credited
spellingShingle Research Paper
Gagou, Mary E.
Ganesh, Anil
Phear, Geraldine
Robinson, Darren
Petermann, Eva
Cox, Angela
Meuth, Mark
Human PIF1 helicase supports DNA replication and cell growth under oncogenic-stress
title Human PIF1 helicase supports DNA replication and cell growth under oncogenic-stress
title_full Human PIF1 helicase supports DNA replication and cell growth under oncogenic-stress
title_fullStr Human PIF1 helicase supports DNA replication and cell growth under oncogenic-stress
title_full_unstemmed Human PIF1 helicase supports DNA replication and cell growth under oncogenic-stress
title_short Human PIF1 helicase supports DNA replication and cell growth under oncogenic-stress
title_sort human pif1 helicase supports dna replication and cell growth under oncogenic-stress
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4294361/
https://www.ncbi.nlm.nih.gov/pubmed/25359767
work_keys_str_mv AT gagoumarye humanpif1helicasesupportsdnareplicationandcellgrowthunderoncogenicstress
AT ganeshanil humanpif1helicasesupportsdnareplicationandcellgrowthunderoncogenicstress
AT pheargeraldine humanpif1helicasesupportsdnareplicationandcellgrowthunderoncogenicstress
AT robinsondarren humanpif1helicasesupportsdnareplicationandcellgrowthunderoncogenicstress
AT petermanneva humanpif1helicasesupportsdnareplicationandcellgrowthunderoncogenicstress
AT coxangela humanpif1helicasesupportsdnareplicationandcellgrowthunderoncogenicstress
AT meuthmark humanpif1helicasesupportsdnareplicationandcellgrowthunderoncogenicstress