Loss of the osteogenic differentiation potential during senescence is limited to bone progenitor cells and is dependent on p53.

DNA damage can lead to the induction of cellular senescence. In particular, we showed that exposure to ionizing radiation (IR) leads to the senescence of bone marrow-derived multipotent stromal cells (MSC) and osteoblast-like stromal cells (OB-SC), a phenotype associated with bone loss. The mechanis...

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Main Authors: Geneviève Despars, Cynthia L Carbonneau, Pascal Bardeau, Daniel L Coutu, Christian M Beauséjour
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2013-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC3756945?pdf=render
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spelling doaj-3c36a8c9ee8441a9be5bfc253b1daba02020-11-25T01:55:54ZengPublic Library of Science (PLoS)PLoS ONE1932-62032013-01-0188e7320610.1371/journal.pone.0073206Loss of the osteogenic differentiation potential during senescence is limited to bone progenitor cells and is dependent on p53.Geneviève DesparsCynthia L CarbonneauPascal BardeauDaniel L CoutuChristian M BeauséjourDNA damage can lead to the induction of cellular senescence. In particular, we showed that exposure to ionizing radiation (IR) leads to the senescence of bone marrow-derived multipotent stromal cells (MSC) and osteoblast-like stromal cells (OB-SC), a phenotype associated with bone loss. The mechanism by which IR leads to bone dysfunction is not fully understood. One possibility involves that DNA damage-induced senescence limits the regeneration of bone progenitor cells. Another possibility entails that bone dysfunction arises from the inability of accumulating senescent cells to fulfill their physiological function. Indeed, we show here that exposure to IR prevented the differentiation and mineralization functions of MSC, an effect we found was limited to this population as more differentiated OB-SC could still form mineralize nodules. This is in contrast to adipogenesis, which was inhibited in both IR-induced senescent MSC and 3T3-L1 pre-adipocytes. Furthermore, we demonstrate that IR-induced loss of osteogenic potential in MSC was p53-dependent, a phenotype that correlates with the inability to upregulate key osteogenic transcription factors. These results are the first to demonstrate that senescence impacts osteogenesis in a cell type dependent manner and suggest that the accumulation of senescent osteoblasts is unlikely to significantly contribute to bone dysfunction in a cell autonomous manner.http://europepmc.org/articles/PMC3756945?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Geneviève Despars
Cynthia L Carbonneau
Pascal Bardeau
Daniel L Coutu
Christian M Beauséjour
spellingShingle Geneviève Despars
Cynthia L Carbonneau
Pascal Bardeau
Daniel L Coutu
Christian M Beauséjour
Loss of the osteogenic differentiation potential during senescence is limited to bone progenitor cells and is dependent on p53.
PLoS ONE
author_facet Geneviève Despars
Cynthia L Carbonneau
Pascal Bardeau
Daniel L Coutu
Christian M Beauséjour
author_sort Geneviève Despars
title Loss of the osteogenic differentiation potential during senescence is limited to bone progenitor cells and is dependent on p53.
title_short Loss of the osteogenic differentiation potential during senescence is limited to bone progenitor cells and is dependent on p53.
title_full Loss of the osteogenic differentiation potential during senescence is limited to bone progenitor cells and is dependent on p53.
title_fullStr Loss of the osteogenic differentiation potential during senescence is limited to bone progenitor cells and is dependent on p53.
title_full_unstemmed Loss of the osteogenic differentiation potential during senescence is limited to bone progenitor cells and is dependent on p53.
title_sort loss of the osteogenic differentiation potential during senescence is limited to bone progenitor cells and is dependent on p53.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2013-01-01
description DNA damage can lead to the induction of cellular senescence. In particular, we showed that exposure to ionizing radiation (IR) leads to the senescence of bone marrow-derived multipotent stromal cells (MSC) and osteoblast-like stromal cells (OB-SC), a phenotype associated with bone loss. The mechanism by which IR leads to bone dysfunction is not fully understood. One possibility involves that DNA damage-induced senescence limits the regeneration of bone progenitor cells. Another possibility entails that bone dysfunction arises from the inability of accumulating senescent cells to fulfill their physiological function. Indeed, we show here that exposure to IR prevented the differentiation and mineralization functions of MSC, an effect we found was limited to this population as more differentiated OB-SC could still form mineralize nodules. This is in contrast to adipogenesis, which was inhibited in both IR-induced senescent MSC and 3T3-L1 pre-adipocytes. Furthermore, we demonstrate that IR-induced loss of osteogenic potential in MSC was p53-dependent, a phenotype that correlates with the inability to upregulate key osteogenic transcription factors. These results are the first to demonstrate that senescence impacts osteogenesis in a cell type dependent manner and suggest that the accumulation of senescent osteoblasts is unlikely to significantly contribute to bone dysfunction in a cell autonomous manner.
url http://europepmc.org/articles/PMC3756945?pdf=render
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