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Aging of the skeletal muscle extracellular matrix drives a stem cell fibrogenic conversion

Age‐related declines in skeletal muscle regeneration have been attributed to muscle stem cell (MuSC) dysfunction. Aged MuSCs display a fibrogenic conversion, leading to fibrosis and impaired recovery after injury. Although studies have demonstrated the influence of in vitro substrate characteristics...

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Autores principales: Stearns‐Reider, Kristen M., D'Amore, Antonio, Beezhold, Kevin, Rothrauff, Benjamin, Cavalli, Loredana, Wagner, William R., Vorp, David A., Tsamis, Alkiviadis, Shinde, Sunita, Zhang, Changqing, Barchowsky, Aaron, Rando, Thomas A., Tuan, Rocky S., Ambrosio, Fabrisia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2017
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5418187/
https://www.ncbi.nlm.nih.gov/pubmed/28371268
http://dx.doi.org/10.1111/acel.12578
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author Stearns‐Reider, Kristen M.
D'Amore, Antonio
Beezhold, Kevin
Rothrauff, Benjamin
Cavalli, Loredana
Wagner, William R.
Vorp, David A.
Tsamis, Alkiviadis
Shinde, Sunita
Zhang, Changqing
Barchowsky, Aaron
Rando, Thomas A.
Tuan, Rocky S.
Ambrosio, Fabrisia
author_facet Stearns‐Reider, Kristen M.
D'Amore, Antonio
Beezhold, Kevin
Rothrauff, Benjamin
Cavalli, Loredana
Wagner, William R.
Vorp, David A.
Tsamis, Alkiviadis
Shinde, Sunita
Zhang, Changqing
Barchowsky, Aaron
Rando, Thomas A.
Tuan, Rocky S.
Ambrosio, Fabrisia
author_sort Stearns‐Reider, Kristen M.
collection PubMed
description Age‐related declines in skeletal muscle regeneration have been attributed to muscle stem cell (MuSC) dysfunction. Aged MuSCs display a fibrogenic conversion, leading to fibrosis and impaired recovery after injury. Although studies have demonstrated the influence of in vitro substrate characteristics on stem cell fate, whether and how aging of the extracellular matrix (ECM) affects stem cell behavior has not been investigated. Here, we investigated the direct effect of the aged muscle ECM on MuSC lineage specification. Quantification of ECM topology and muscle mechanical properties reveals decreased collagen tortuosity and muscle stiffening with increasing age. Age‐related ECM alterations directly disrupt MuSC responses, and MuSCs seeded ex vivo onto decellularized ECM constructs derived from aged muscle display increased expression of fibrogenic markers and decreased myogenicity, compared to MuSCs seeded onto young ECM. This fibrogenic conversion is recapitulated in vitro when MuSCs are seeded directly onto matrices elaborated by aged fibroblasts. When compared to young fibroblasts, fibroblasts isolated from aged muscle display increased nuclear levels of the mechanosensors, Yes‐associated protein (YAP)/transcriptional coactivator with PDZ‐binding motif (TAZ), consistent with exposure to a stiff microenvironment in vivo. Accordingly, preconditioning of young fibroblasts by seeding them onto a substrate engineered to mimic the stiffness of aged muscle increases YAP/TAZ nuclear translocation and promotes secretion of a matrix that favors MuSC fibrogenesis. The findings here suggest that an age‐related increase in muscle stiffness drives YAP/TAZ‐mediated pathogenic expression of matricellular proteins by fibroblasts, ultimately disrupting MuSC fate.
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spelling pubmed-54181872017-06-01 Aging of the skeletal muscle extracellular matrix drives a stem cell fibrogenic conversion Stearns‐Reider, Kristen M. D'Amore, Antonio Beezhold, Kevin Rothrauff, Benjamin Cavalli, Loredana Wagner, William R. Vorp, David A. Tsamis, Alkiviadis Shinde, Sunita Zhang, Changqing Barchowsky, Aaron Rando, Thomas A. Tuan, Rocky S. Ambrosio, Fabrisia Aging Cell Original Articles Age‐related declines in skeletal muscle regeneration have been attributed to muscle stem cell (MuSC) dysfunction. Aged MuSCs display a fibrogenic conversion, leading to fibrosis and impaired recovery after injury. Although studies have demonstrated the influence of in vitro substrate characteristics on stem cell fate, whether and how aging of the extracellular matrix (ECM) affects stem cell behavior has not been investigated. Here, we investigated the direct effect of the aged muscle ECM on MuSC lineage specification. Quantification of ECM topology and muscle mechanical properties reveals decreased collagen tortuosity and muscle stiffening with increasing age. Age‐related ECM alterations directly disrupt MuSC responses, and MuSCs seeded ex vivo onto decellularized ECM constructs derived from aged muscle display increased expression of fibrogenic markers and decreased myogenicity, compared to MuSCs seeded onto young ECM. This fibrogenic conversion is recapitulated in vitro when MuSCs are seeded directly onto matrices elaborated by aged fibroblasts. When compared to young fibroblasts, fibroblasts isolated from aged muscle display increased nuclear levels of the mechanosensors, Yes‐associated protein (YAP)/transcriptional coactivator with PDZ‐binding motif (TAZ), consistent with exposure to a stiff microenvironment in vivo. Accordingly, preconditioning of young fibroblasts by seeding them onto a substrate engineered to mimic the stiffness of aged muscle increases YAP/TAZ nuclear translocation and promotes secretion of a matrix that favors MuSC fibrogenesis. The findings here suggest that an age‐related increase in muscle stiffness drives YAP/TAZ‐mediated pathogenic expression of matricellular proteins by fibroblasts, ultimately disrupting MuSC fate. John Wiley and Sons Inc. 2017-03-30 2017-06 /pmc/articles/PMC5418187/ /pubmed/28371268 http://dx.doi.org/10.1111/acel.12578 Text en © 2017 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 Creative Commons Attribution (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 Articles
Stearns‐Reider, Kristen M.
D'Amore, Antonio
Beezhold, Kevin
Rothrauff, Benjamin
Cavalli, Loredana
Wagner, William R.
Vorp, David A.
Tsamis, Alkiviadis
Shinde, Sunita
Zhang, Changqing
Barchowsky, Aaron
Rando, Thomas A.
Tuan, Rocky S.
Ambrosio, Fabrisia
Aging of the skeletal muscle extracellular matrix drives a stem cell fibrogenic conversion
title Aging of the skeletal muscle extracellular matrix drives a stem cell fibrogenic conversion
title_full Aging of the skeletal muscle extracellular matrix drives a stem cell fibrogenic conversion
title_fullStr Aging of the skeletal muscle extracellular matrix drives a stem cell fibrogenic conversion
title_full_unstemmed Aging of the skeletal muscle extracellular matrix drives a stem cell fibrogenic conversion
title_short Aging of the skeletal muscle extracellular matrix drives a stem cell fibrogenic conversion
title_sort aging of the skeletal muscle extracellular matrix drives a stem cell fibrogenic conversion
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5418187/
https://www.ncbi.nlm.nih.gov/pubmed/28371268
http://dx.doi.org/10.1111/acel.12578
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