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Altered functional differentiation of mesoangioblasts in a genetic myopathy

Mutations underlying genetic cardiomyopathies might affect differentiation commitment of resident progenitor cells. Cardiac mesoangioblasts (cMabs) are multipotent progenitor cells resident in the myocardium. A switch from cardiac to skeletal muscle differentiation has been recently described in cMa...

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Autores principales: Altomare, Claudia, Barile, Lucio, Rocchetti, Marcella, Sala, Luca, Crippa, Stefania, Sampaolesi, Maurilio, Zaza, Antonio
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Blackwell Publishing Ltd 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3823023/
https://www.ncbi.nlm.nih.gov/pubmed/23387296
http://dx.doi.org/10.1111/jcmm.12023
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author Altomare, Claudia
Barile, Lucio
Rocchetti, Marcella
Sala, Luca
Crippa, Stefania
Sampaolesi, Maurilio
Zaza, Antonio
author_facet Altomare, Claudia
Barile, Lucio
Rocchetti, Marcella
Sala, Luca
Crippa, Stefania
Sampaolesi, Maurilio
Zaza, Antonio
author_sort Altomare, Claudia
collection PubMed
description Mutations underlying genetic cardiomyopathies might affect differentiation commitment of resident progenitor cells. Cardiac mesoangioblasts (cMabs) are multipotent progenitor cells resident in the myocardium. A switch from cardiac to skeletal muscle differentiation has been recently described in cMabs from β-sarcoglycan-null mice (βSG(−/−)), a murine model of genetic myopathy with early myocardial involvement. Although complementation with βSG gene was inconsequential, knock-in of miRNA669a (missing in βSG(−/−) cMabs) partially rescued the mutation-induced molecular phenotype. Here, we undertook a detailed evaluation of functional differentiation of βSG(−/−) cMabs and tested the effects of miRNA669a-induced rescue in vitro. To this end, cMabs were compared with neonatal cardiomyocytes (CMs) and skeletal muscle C2C12 cells, representative of cardiac and skeletal muscle respectively. Consistent with previous data on molecular patterns, electrophysiological and Ca(2+)-handling properties of βSG(−/−) cMabs were closer to C2C12 cells than to CM ones. Nevertheless, subtler aspects, including action potential contour, Ca(2+)-spark properties and RyR isoform expression, distinguished βSG(−/−) cMabs from C2C12 cells. Contrary to previous reports, wild-type cMabs failed to show functional differentiation towards either cell type. Knock-in of miRNA669a in βSG(−/−) cMabs rescued the wild-type functional phenotype, i.e. it completely prevented development of skeletal muscle functional responses. We conclude that miRNA669a expression, ablated by βSG deletion, may prevent functional differentiation of cMabs towards the skeletal muscle phenotype.
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spelling pubmed-38230232014-12-03 Altered functional differentiation of mesoangioblasts in a genetic myopathy Altomare, Claudia Barile, Lucio Rocchetti, Marcella Sala, Luca Crippa, Stefania Sampaolesi, Maurilio Zaza, Antonio J Cell Mol Med Original Articles Mutations underlying genetic cardiomyopathies might affect differentiation commitment of resident progenitor cells. Cardiac mesoangioblasts (cMabs) are multipotent progenitor cells resident in the myocardium. A switch from cardiac to skeletal muscle differentiation has been recently described in cMabs from β-sarcoglycan-null mice (βSG(−/−)), a murine model of genetic myopathy with early myocardial involvement. Although complementation with βSG gene was inconsequential, knock-in of miRNA669a (missing in βSG(−/−) cMabs) partially rescued the mutation-induced molecular phenotype. Here, we undertook a detailed evaluation of functional differentiation of βSG(−/−) cMabs and tested the effects of miRNA669a-induced rescue in vitro. To this end, cMabs were compared with neonatal cardiomyocytes (CMs) and skeletal muscle C2C12 cells, representative of cardiac and skeletal muscle respectively. Consistent with previous data on molecular patterns, electrophysiological and Ca(2+)-handling properties of βSG(−/−) cMabs were closer to C2C12 cells than to CM ones. Nevertheless, subtler aspects, including action potential contour, Ca(2+)-spark properties and RyR isoform expression, distinguished βSG(−/−) cMabs from C2C12 cells. Contrary to previous reports, wild-type cMabs failed to show functional differentiation towards either cell type. Knock-in of miRNA669a in βSG(−/−) cMabs rescued the wild-type functional phenotype, i.e. it completely prevented development of skeletal muscle functional responses. We conclude that miRNA669a expression, ablated by βSG deletion, may prevent functional differentiation of cMabs towards the skeletal muscle phenotype. Blackwell Publishing Ltd 2013-03 2013-02-07 /pmc/articles/PMC3823023/ /pubmed/23387296 http://dx.doi.org/10.1111/jcmm.12023 Text en Copyright © 2013 Foundation for Cellular and Molecular Medicine/Blackwell Publishing Ltd. http://creativecommons.org/licenses/by/2.5/ Re-use of this article is permitted in accordance with the Creative Commons Deed, Attribution 2.5, which does not permit commercial exploitation.
spellingShingle Original Articles
Altomare, Claudia
Barile, Lucio
Rocchetti, Marcella
Sala, Luca
Crippa, Stefania
Sampaolesi, Maurilio
Zaza, Antonio
Altered functional differentiation of mesoangioblasts in a genetic myopathy
title Altered functional differentiation of mesoangioblasts in a genetic myopathy
title_full Altered functional differentiation of mesoangioblasts in a genetic myopathy
title_fullStr Altered functional differentiation of mesoangioblasts in a genetic myopathy
title_full_unstemmed Altered functional differentiation of mesoangioblasts in a genetic myopathy
title_short Altered functional differentiation of mesoangioblasts in a genetic myopathy
title_sort altered functional differentiation of mesoangioblasts in a genetic myopathy
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3823023/
https://www.ncbi.nlm.nih.gov/pubmed/23387296
http://dx.doi.org/10.1111/jcmm.12023
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