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Aged‐senescent cells contribute to impaired heart regeneration

Aging leads to increased cellular senescence and is associated with decreased potency of tissue‐specific stem/progenitor cells. Here, we have done an extensive analysis of cardiac progenitor cells (CPCs) isolated from human subjects with cardiovascular disease, aged 32–86 years. In aged subjects (&g...

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Autores principales: Lewis‐McDougall, Fiona C., Ruchaya, Prashant J., Domenjo‐Vila, Eva, Shin Teoh, Tze, Prata, Larissa, Cottle, Beverley J., Clark, James E., Punjabi, Prakash P., Awad, Wael, Torella, Daniele, Tchkonia, Tamara, Kirkland, James L., Ellison‐Hughes, Georgina M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6516154/
https://www.ncbi.nlm.nih.gov/pubmed/30854802
http://dx.doi.org/10.1111/acel.12931
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author Lewis‐McDougall, Fiona C.
Ruchaya, Prashant J.
Domenjo‐Vila, Eva
Shin Teoh, Tze
Prata, Larissa
Cottle, Beverley J.
Clark, James E.
Punjabi, Prakash P.
Awad, Wael
Torella, Daniele
Tchkonia, Tamara
Kirkland, James L.
Ellison‐Hughes, Georgina M.
author_facet Lewis‐McDougall, Fiona C.
Ruchaya, Prashant J.
Domenjo‐Vila, Eva
Shin Teoh, Tze
Prata, Larissa
Cottle, Beverley J.
Clark, James E.
Punjabi, Prakash P.
Awad, Wael
Torella, Daniele
Tchkonia, Tamara
Kirkland, James L.
Ellison‐Hughes, Georgina M.
author_sort Lewis‐McDougall, Fiona C.
collection PubMed
description Aging leads to increased cellular senescence and is associated with decreased potency of tissue‐specific stem/progenitor cells. Here, we have done an extensive analysis of cardiac progenitor cells (CPCs) isolated from human subjects with cardiovascular disease, aged 32–86 years. In aged subjects (>70 years old), over half of CPCs are senescent (p16(INK4A), SA‐β‐gal, DNA damage γH2AX, telomere length, senescence‐associated secretory phenotype [SASP]), unable to replicate, differentiate, regenerate or restore cardiac function following transplantation into the infarcted heart. SASP factors secreted by senescent CPCs renders otherwise healthy CPCs to senescence. Elimination of senescent CPCs using senolytics abrogates the SASP and its debilitative effect in vitro. Global elimination of senescent cells in aged mice (INK‐ATTAC or wild‐type mice treated with D + Q senolytics) in vivo activates resident CPCs and increased the number of small Ki67‐, EdU‐positive cardiomyocytes. Therapeutic approaches that eliminate senescent cells may alleviate cardiac deterioration with aging and restore the regenerative capacity of the heart.
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spelling pubmed-65161542019-06-01 Aged‐senescent cells contribute to impaired heart regeneration Lewis‐McDougall, Fiona C. Ruchaya, Prashant J. Domenjo‐Vila, Eva Shin Teoh, Tze Prata, Larissa Cottle, Beverley J. Clark, James E. Punjabi, Prakash P. Awad, Wael Torella, Daniele Tchkonia, Tamara Kirkland, James L. Ellison‐Hughes, Georgina M. Aging Cell Original Papers Aging leads to increased cellular senescence and is associated with decreased potency of tissue‐specific stem/progenitor cells. Here, we have done an extensive analysis of cardiac progenitor cells (CPCs) isolated from human subjects with cardiovascular disease, aged 32–86 years. In aged subjects (>70 years old), over half of CPCs are senescent (p16(INK4A), SA‐β‐gal, DNA damage γH2AX, telomere length, senescence‐associated secretory phenotype [SASP]), unable to replicate, differentiate, regenerate or restore cardiac function following transplantation into the infarcted heart. SASP factors secreted by senescent CPCs renders otherwise healthy CPCs to senescence. Elimination of senescent CPCs using senolytics abrogates the SASP and its debilitative effect in vitro. Global elimination of senescent cells in aged mice (INK‐ATTAC or wild‐type mice treated with D + Q senolytics) in vivo activates resident CPCs and increased the number of small Ki67‐, EdU‐positive cardiomyocytes. Therapeutic approaches that eliminate senescent cells may alleviate cardiac deterioration with aging and restore the regenerative capacity of the heart. John Wiley and Sons Inc. 2019-03-10 2019-06 /pmc/articles/PMC6516154/ /pubmed/30854802 http://dx.doi.org/10.1111/acel.12931 Text en © 2019 The Authors. Aging Cell published by the Anatomical Society and John Wiley & Sons Ltd. This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Original Papers
Lewis‐McDougall, Fiona C.
Ruchaya, Prashant J.
Domenjo‐Vila, Eva
Shin Teoh, Tze
Prata, Larissa
Cottle, Beverley J.
Clark, James E.
Punjabi, Prakash P.
Awad, Wael
Torella, Daniele
Tchkonia, Tamara
Kirkland, James L.
Ellison‐Hughes, Georgina M.
Aged‐senescent cells contribute to impaired heart regeneration
title Aged‐senescent cells contribute to impaired heart regeneration
title_full Aged‐senescent cells contribute to impaired heart regeneration
title_fullStr Aged‐senescent cells contribute to impaired heart regeneration
title_full_unstemmed Aged‐senescent cells contribute to impaired heart regeneration
title_short Aged‐senescent cells contribute to impaired heart regeneration
title_sort aged‐senescent cells contribute to impaired heart regeneration
topic Original Papers
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6516154/
https://www.ncbi.nlm.nih.gov/pubmed/30854802
http://dx.doi.org/10.1111/acel.12931
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