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Genome-Wide Analysis to Identify Pathways Affecting Telomere-Initiated Senescence in Budding Yeast

In telomerase-deficient yeast cells, like equivalent mammalian cells, telomeres shorten over many generations until a period of senescence/crisis is reached. After this, a small fraction of cells can escape senescence, principally using recombination-dependent mechanisms. To investigate the pathways...

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Autores principales: Chang, Hsin-Yu, Lawless, Conor, Addinall, Stephen G., Oexle, Sarah, Taschuk, Morgan, Wipat, Anil, Wilkinson, Darren J., Lydall, David
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Genetics Society of America 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3276134/
https://www.ncbi.nlm.nih.gov/pubmed/22384331
http://dx.doi.org/10.1534/g3.111.000216
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author Chang, Hsin-Yu
Lawless, Conor
Addinall, Stephen G.
Oexle, Sarah
Taschuk, Morgan
Wipat, Anil
Wilkinson, Darren J.
Lydall, David
author_facet Chang, Hsin-Yu
Lawless, Conor
Addinall, Stephen G.
Oexle, Sarah
Taschuk, Morgan
Wipat, Anil
Wilkinson, Darren J.
Lydall, David
author_sort Chang, Hsin-Yu
collection PubMed
description In telomerase-deficient yeast cells, like equivalent mammalian cells, telomeres shorten over many generations until a period of senescence/crisis is reached. After this, a small fraction of cells can escape senescence, principally using recombination-dependent mechanisms. To investigate the pathways that affect entry into and recovery from telomere-driven senescence, we combined a gene deletion disrupting telomerase (est1Δ) with the systematic yeast deletion collection and measured senescence characteristics in high-throughput assays. As expected, the vast majority of gene deletions showed no strong effects on entry into/exit from senescence. However, around 200 gene deletions behaving similarly to a rad52Δest1Δ archetype (rad52Δ affects homologous recombination) accelerated entry into senescence, and such cells often could not recover growth. A smaller number of strains similar to a rif1Δest1Δ archetype (rif1Δ affects proteins that bind telomeres) accelerated entry into senescence but also accelerated recovery from senescence. Our genome-wide analysis identifies genes that affect entry into and/or exit from telomere-initiated senescence and will be of interest to those studying telomere biology, replicative senescence, cancer, and ageing. Our dataset is complementary to other high-throughput studies relevant to telomere biology, genetic stability, and DNA damage responses.
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spelling pubmed-32761342012-03-01 Genome-Wide Analysis to Identify Pathways Affecting Telomere-Initiated Senescence in Budding Yeast Chang, Hsin-Yu Lawless, Conor Addinall, Stephen G. Oexle, Sarah Taschuk, Morgan Wipat, Anil Wilkinson, Darren J. Lydall, David G3 (Bethesda) Investigation In telomerase-deficient yeast cells, like equivalent mammalian cells, telomeres shorten over many generations until a period of senescence/crisis is reached. After this, a small fraction of cells can escape senescence, principally using recombination-dependent mechanisms. To investigate the pathways that affect entry into and recovery from telomere-driven senescence, we combined a gene deletion disrupting telomerase (est1Δ) with the systematic yeast deletion collection and measured senescence characteristics in high-throughput assays. As expected, the vast majority of gene deletions showed no strong effects on entry into/exit from senescence. However, around 200 gene deletions behaving similarly to a rad52Δest1Δ archetype (rad52Δ affects homologous recombination) accelerated entry into senescence, and such cells often could not recover growth. A smaller number of strains similar to a rif1Δest1Δ archetype (rif1Δ affects proteins that bind telomeres) accelerated entry into senescence but also accelerated recovery from senescence. Our genome-wide analysis identifies genes that affect entry into and/or exit from telomere-initiated senescence and will be of interest to those studying telomere biology, replicative senescence, cancer, and ageing. Our dataset is complementary to other high-throughput studies relevant to telomere biology, genetic stability, and DNA damage responses. Genetics Society of America 2011-08-01 /pmc/articles/PMC3276134/ /pubmed/22384331 http://dx.doi.org/10.1534/g3.111.000216 Text en Copyright © 2011 Chang et al. http://creativecommons.org/licenses/by/3.0/ This is an open access article distributed under the terms of the Creative Commons Attribution Unported License (http://creativecommons.org/licenses/by/3.0/), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Investigation
Chang, Hsin-Yu
Lawless, Conor
Addinall, Stephen G.
Oexle, Sarah
Taschuk, Morgan
Wipat, Anil
Wilkinson, Darren J.
Lydall, David
Genome-Wide Analysis to Identify Pathways Affecting Telomere-Initiated Senescence in Budding Yeast
title Genome-Wide Analysis to Identify Pathways Affecting Telomere-Initiated Senescence in Budding Yeast
title_full Genome-Wide Analysis to Identify Pathways Affecting Telomere-Initiated Senescence in Budding Yeast
title_fullStr Genome-Wide Analysis to Identify Pathways Affecting Telomere-Initiated Senescence in Budding Yeast
title_full_unstemmed Genome-Wide Analysis to Identify Pathways Affecting Telomere-Initiated Senescence in Budding Yeast
title_short Genome-Wide Analysis to Identify Pathways Affecting Telomere-Initiated Senescence in Budding Yeast
title_sort genome-wide analysis to identify pathways affecting telomere-initiated senescence in budding yeast
topic Investigation
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3276134/
https://www.ncbi.nlm.nih.gov/pubmed/22384331
http://dx.doi.org/10.1534/g3.111.000216
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