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Adaptation to DNA damage checkpoint in senescent telomerase-negative cells promotes genome instability

In cells lacking telomerase, telomeres gradually shorten during each cell division to reach a critically short length, permanently activate the DNA damage checkpoint, and trigger replicative senescence. The increase in genome instability that occurs as a consequence may contribute to the early steps...

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Autores principales: Coutelier, Héloïse, Xu, Zhou, Morisse, Mony Chenda, Lhuillier-Akakpo, Maoussi, Pelet, Serge, Charvin, Gilles, Dubrana, Karine, Teixeira, Maria Teresa
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cold Spring Harbor Laboratory Press 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6295172/
https://www.ncbi.nlm.nih.gov/pubmed/30463903
http://dx.doi.org/10.1101/gad.318485.118
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author Coutelier, Héloïse
Xu, Zhou
Morisse, Mony Chenda
Lhuillier-Akakpo, Maoussi
Pelet, Serge
Charvin, Gilles
Dubrana, Karine
Teixeira, Maria Teresa
author_facet Coutelier, Héloïse
Xu, Zhou
Morisse, Mony Chenda
Lhuillier-Akakpo, Maoussi
Pelet, Serge
Charvin, Gilles
Dubrana, Karine
Teixeira, Maria Teresa
author_sort Coutelier, Héloïse
collection PubMed
description In cells lacking telomerase, telomeres gradually shorten during each cell division to reach a critically short length, permanently activate the DNA damage checkpoint, and trigger replicative senescence. The increase in genome instability that occurs as a consequence may contribute to the early steps of tumorigenesis. However, because of the low frequency of mutations and the heterogeneity of telomere-induced senescence, the timing and mechanisms of genome instability increase remain elusive. Here, to capture early mutation events during replicative senescence, we used a combined microfluidic-based approach and live-cell imaging in yeast. We analyzed DNA damage checkpoint activation in consecutive cell divisions of individual cell lineages in telomerase-negative yeast cells and observed that prolonged checkpoint arrests occurred frequently in telomerase-negative lineages. Cells relied on the adaptation to the DNA damage pathway to bypass the prolonged checkpoint arrests, allowing further cell divisions despite the presence of unrepaired DNA damage. We demonstrate that the adaptation pathway is a major contributor to the genome instability induced during replicative senescence. Therefore, adaptation plays a critical role in shaping the dynamics of genome instability during replicative senescence.
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spelling pubmed-62951722018-12-28 Adaptation to DNA damage checkpoint in senescent telomerase-negative cells promotes genome instability Coutelier, Héloïse Xu, Zhou Morisse, Mony Chenda Lhuillier-Akakpo, Maoussi Pelet, Serge Charvin, Gilles Dubrana, Karine Teixeira, Maria Teresa Genes Dev Research Paper In cells lacking telomerase, telomeres gradually shorten during each cell division to reach a critically short length, permanently activate the DNA damage checkpoint, and trigger replicative senescence. The increase in genome instability that occurs as a consequence may contribute to the early steps of tumorigenesis. However, because of the low frequency of mutations and the heterogeneity of telomere-induced senescence, the timing and mechanisms of genome instability increase remain elusive. Here, to capture early mutation events during replicative senescence, we used a combined microfluidic-based approach and live-cell imaging in yeast. We analyzed DNA damage checkpoint activation in consecutive cell divisions of individual cell lineages in telomerase-negative yeast cells and observed that prolonged checkpoint arrests occurred frequently in telomerase-negative lineages. Cells relied on the adaptation to the DNA damage pathway to bypass the prolonged checkpoint arrests, allowing further cell divisions despite the presence of unrepaired DNA damage. We demonstrate that the adaptation pathway is a major contributor to the genome instability induced during replicative senescence. Therefore, adaptation plays a critical role in shaping the dynamics of genome instability during replicative senescence. Cold Spring Harbor Laboratory Press 2018-12-01 /pmc/articles/PMC6295172/ /pubmed/30463903 http://dx.doi.org/10.1101/gad.318485.118 Text en © 2018 Coutelier et al.; Published by Cold Spring Harbor Laboratory Press http://creativecommons.org/licenses/by-nc/4.0/ This article, published in Genes & Development, is available under a Creative Commons License (Attribution-NonCommercial 4.0 International), as described at http://creativecommons.org/licenses/by-nc/4.0/.
spellingShingle Research Paper
Coutelier, Héloïse
Xu, Zhou
Morisse, Mony Chenda
Lhuillier-Akakpo, Maoussi
Pelet, Serge
Charvin, Gilles
Dubrana, Karine
Teixeira, Maria Teresa
Adaptation to DNA damage checkpoint in senescent telomerase-negative cells promotes genome instability
title Adaptation to DNA damage checkpoint in senescent telomerase-negative cells promotes genome instability
title_full Adaptation to DNA damage checkpoint in senescent telomerase-negative cells promotes genome instability
title_fullStr Adaptation to DNA damage checkpoint in senescent telomerase-negative cells promotes genome instability
title_full_unstemmed Adaptation to DNA damage checkpoint in senescent telomerase-negative cells promotes genome instability
title_short Adaptation to DNA damage checkpoint in senescent telomerase-negative cells promotes genome instability
title_sort adaptation to dna damage checkpoint in senescent telomerase-negative cells promotes genome instability
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6295172/
https://www.ncbi.nlm.nih.gov/pubmed/30463903
http://dx.doi.org/10.1101/gad.318485.118
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