Cargando…

Increased microenvironment stiffness in damaged myofibers promotes myogenic progenitor cell proliferation

BACKGROUND: The stiffness of the myogenic stem cell microenvironment markedly influences the ability to regenerate tissue. We studied the effect of damaged myofibers on myogenic progenitor cell (MPC) proliferation and determined whether the structural integrity of the microenvironment contributes to...

Descripción completa

Detalles Bibliográficos
Autores principales: Trensz, Frédéric, Lucien, Fabrice, Couture, Vanessa, Söllrald, Thomas, Drouin, Geneviève, Rouleau, André-Jean, Grandbois, Michel, Lacraz, Gregory, Grenier, Guillaume
Formato: Online Artículo Texto
Lenguaje:English
Publicado: BioMed Central 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4343274/
https://www.ncbi.nlm.nih.gov/pubmed/25729564
http://dx.doi.org/10.1186/s13395-015-0030-1
_version_ 1782359364921720832
author Trensz, Frédéric
Lucien, Fabrice
Couture, Vanessa
Söllrald, Thomas
Drouin, Geneviève
Rouleau, André-Jean
Grandbois, Michel
Lacraz, Gregory
Grenier, Guillaume
author_facet Trensz, Frédéric
Lucien, Fabrice
Couture, Vanessa
Söllrald, Thomas
Drouin, Geneviève
Rouleau, André-Jean
Grandbois, Michel
Lacraz, Gregory
Grenier, Guillaume
author_sort Trensz, Frédéric
collection PubMed
description BACKGROUND: The stiffness of the myogenic stem cell microenvironment markedly influences the ability to regenerate tissue. We studied the effect of damaged myofibers on myogenic progenitor cell (MPC) proliferation and determined whether the structural integrity of the microenvironment contributes to phenotypic changes. METHODS: Individual myofibers were isolated and cultured for 6 days. During this period, the cytoskeleton of myofibers and transcription factors regulating MPC differentiation were characterized by immunostaining. Atomic Force Microscopy (AFM) was performed to measure stiffness of cultured myofibers. Healthy and damaged myofibers, and their associated MPCs, were studied in skeletal muscle from dystrophic and tenotomy mouse models. MPCs were cultured on stiffness-tunable substrates, and their phenotypes were assessed by immunostaining of myogenic transcription factors. RESULTS: We showed that individual myofibers tend to shrink or collapse when cultured ex vivo starting from day 1 and that this is associated with a marked increase in the number of proliferative MPCs (Pax7(+)MyoD(+)). The myofibers collapsed due to a loss of viability as shown by Evans blue dye uptake and the disorganization of their cytoskeletons. Interestingly, collapsed myofibers in mdx skeletal muscles were similar to damaged myofibers in that they lose their viability, have a disorganized cytoskeleton (actin and α-actinin), and display local MPC (MyoD(+)) proliferation at their periphery. In a tenotomy model that causes loss of muscle tension, the cytoskeletal disorganization of myofibers also correlated with the activation/proliferation of MPCs. A deeper analysis of collapsed myofibers revealed that they produce trophic factors that influence MPC proliferation. In addition, collapsed myofibers expressed several genes related to the basal lamina. Immunostaining revealed the presence of fibronectin in the basal lamina and the cytoplasm of damaged myofibers. Lastly, using atomic force microscopy (AFM), we showed that collapsed myofibers exhibit greater stiffness than intact myofibers. Growing MPCs on a 2-kPa polyacrylamide-based substrate, exempt of additional microenvironmental cues, recapitulated proliferation and reduced spontaneous differentiation compared to growth on a 0.5-kPa substrate. CONCLUSIONS: Our results support the notion that collapsed or damaged myofibers increase the structural stiffness of the satellite cell microenvironment, which in addition to other cues such as trophic factors and changes in extracellular matrix composition, promotes the proliferation and maintenance of MPCs, required for myofiber repair. ELECTRONIC SUPPLEMENTARY MATERIAL: The online version of this article (doi:10.1186/s13395-015-0030-1) contains supplementary material, which is available to authorized users.
format Online
Article
Text
id pubmed-4343274
institution National Center for Biotechnology Information
language English
publishDate 2015
publisher BioMed Central
record_format MEDLINE/PubMed
spelling pubmed-43432742015-02-28 Increased microenvironment stiffness in damaged myofibers promotes myogenic progenitor cell proliferation Trensz, Frédéric Lucien, Fabrice Couture, Vanessa Söllrald, Thomas Drouin, Geneviève Rouleau, André-Jean Grandbois, Michel Lacraz, Gregory Grenier, Guillaume Skelet Muscle Research BACKGROUND: The stiffness of the myogenic stem cell microenvironment markedly influences the ability to regenerate tissue. We studied the effect of damaged myofibers on myogenic progenitor cell (MPC) proliferation and determined whether the structural integrity of the microenvironment contributes to phenotypic changes. METHODS: Individual myofibers were isolated and cultured for 6 days. During this period, the cytoskeleton of myofibers and transcription factors regulating MPC differentiation were characterized by immunostaining. Atomic Force Microscopy (AFM) was performed to measure stiffness of cultured myofibers. Healthy and damaged myofibers, and their associated MPCs, were studied in skeletal muscle from dystrophic and tenotomy mouse models. MPCs were cultured on stiffness-tunable substrates, and their phenotypes were assessed by immunostaining of myogenic transcription factors. RESULTS: We showed that individual myofibers tend to shrink or collapse when cultured ex vivo starting from day 1 and that this is associated with a marked increase in the number of proliferative MPCs (Pax7(+)MyoD(+)). The myofibers collapsed due to a loss of viability as shown by Evans blue dye uptake and the disorganization of their cytoskeletons. Interestingly, collapsed myofibers in mdx skeletal muscles were similar to damaged myofibers in that they lose their viability, have a disorganized cytoskeleton (actin and α-actinin), and display local MPC (MyoD(+)) proliferation at their periphery. In a tenotomy model that causes loss of muscle tension, the cytoskeletal disorganization of myofibers also correlated with the activation/proliferation of MPCs. A deeper analysis of collapsed myofibers revealed that they produce trophic factors that influence MPC proliferation. In addition, collapsed myofibers expressed several genes related to the basal lamina. Immunostaining revealed the presence of fibronectin in the basal lamina and the cytoplasm of damaged myofibers. Lastly, using atomic force microscopy (AFM), we showed that collapsed myofibers exhibit greater stiffness than intact myofibers. Growing MPCs on a 2-kPa polyacrylamide-based substrate, exempt of additional microenvironmental cues, recapitulated proliferation and reduced spontaneous differentiation compared to growth on a 0.5-kPa substrate. CONCLUSIONS: Our results support the notion that collapsed or damaged myofibers increase the structural stiffness of the satellite cell microenvironment, which in addition to other cues such as trophic factors and changes in extracellular matrix composition, promotes the proliferation and maintenance of MPCs, required for myofiber repair. ELECTRONIC SUPPLEMENTARY MATERIAL: The online version of this article (doi:10.1186/s13395-015-0030-1) contains supplementary material, which is available to authorized users. BioMed Central 2015-02-17 /pmc/articles/PMC4343274/ /pubmed/25729564 http://dx.doi.org/10.1186/s13395-015-0030-1 Text en © Trensz et al.; licensee BioMed Central. 2015 This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly credited. The Creative Commons Public Domain Dedication waiver (http://creativecommons.org/publicdomain/zero/1.0/) applies to the data made available in this article, unless otherwise stated.
spellingShingle Research
Trensz, Frédéric
Lucien, Fabrice
Couture, Vanessa
Söllrald, Thomas
Drouin, Geneviève
Rouleau, André-Jean
Grandbois, Michel
Lacraz, Gregory
Grenier, Guillaume
Increased microenvironment stiffness in damaged myofibers promotes myogenic progenitor cell proliferation
title Increased microenvironment stiffness in damaged myofibers promotes myogenic progenitor cell proliferation
title_full Increased microenvironment stiffness in damaged myofibers promotes myogenic progenitor cell proliferation
title_fullStr Increased microenvironment stiffness in damaged myofibers promotes myogenic progenitor cell proliferation
title_full_unstemmed Increased microenvironment stiffness in damaged myofibers promotes myogenic progenitor cell proliferation
title_short Increased microenvironment stiffness in damaged myofibers promotes myogenic progenitor cell proliferation
title_sort increased microenvironment stiffness in damaged myofibers promotes myogenic progenitor cell proliferation
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4343274/
https://www.ncbi.nlm.nih.gov/pubmed/25729564
http://dx.doi.org/10.1186/s13395-015-0030-1
work_keys_str_mv AT trenszfrederic increasedmicroenvironmentstiffnessindamagedmyofiberspromotesmyogenicprogenitorcellproliferation
AT lucienfabrice increasedmicroenvironmentstiffnessindamagedmyofiberspromotesmyogenicprogenitorcellproliferation
AT couturevanessa increasedmicroenvironmentstiffnessindamagedmyofiberspromotesmyogenicprogenitorcellproliferation
AT sollraldthomas increasedmicroenvironmentstiffnessindamagedmyofiberspromotesmyogenicprogenitorcellproliferation
AT drouingenevieve increasedmicroenvironmentstiffnessindamagedmyofiberspromotesmyogenicprogenitorcellproliferation
AT rouleauandrejean increasedmicroenvironmentstiffnessindamagedmyofiberspromotesmyogenicprogenitorcellproliferation
AT grandboismichel increasedmicroenvironmentstiffnessindamagedmyofiberspromotesmyogenicprogenitorcellproliferation
AT lacrazgregory increasedmicroenvironmentstiffnessindamagedmyofiberspromotesmyogenicprogenitorcellproliferation
AT grenierguillaume increasedmicroenvironmentstiffnessindamagedmyofiberspromotesmyogenicprogenitorcellproliferation