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Extracellular vesicle-derived miRNAs improve stem cell-based therapeutic approaches in muscle wasting conditions

Skeletal muscle holds an intrinsic capability of growth and regeneration both in physiological conditions and in case of injury. Chronic muscle illnesses, generally caused by genetic and acquired factors, lead to deconditioning of the skeletal muscle structure and function, and are associated with a...

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Autores principales: Yedigaryan, Laura, Martínez-Sarrà, Ester, Giacomazzi, Giorgia, Giarratana, Nefele, van der Veer, Bernard K., Rotini, Alessio, Querceto, Silvia, Grosemans, Hanne, Cortés-Calabuig, Álvaro, Salucci, Sara, Battistelli, Michela, Falcieri, Elisabetta, Gijsbers, Rik, Quattrocelli, Mattia, Peng Koh, Kian, De Waele, Liesbeth, Buyse, Gunnar M., Derua, Rita, Sampaolesi, Maurilio
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9702803/
https://www.ncbi.nlm.nih.gov/pubmed/36451814
http://dx.doi.org/10.3389/fimmu.2022.977617
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author Yedigaryan, Laura
Martínez-Sarrà, Ester
Giacomazzi, Giorgia
Giarratana, Nefele
van der Veer, Bernard K.
Rotini, Alessio
Querceto, Silvia
Grosemans, Hanne
Cortés-Calabuig, Álvaro
Salucci, Sara
Battistelli, Michela
Falcieri, Elisabetta
Gijsbers, Rik
Quattrocelli, Mattia
Peng Koh, Kian
De Waele, Liesbeth
Buyse, Gunnar M.
Derua, Rita
Sampaolesi, Maurilio
author_facet Yedigaryan, Laura
Martínez-Sarrà, Ester
Giacomazzi, Giorgia
Giarratana, Nefele
van der Veer, Bernard K.
Rotini, Alessio
Querceto, Silvia
Grosemans, Hanne
Cortés-Calabuig, Álvaro
Salucci, Sara
Battistelli, Michela
Falcieri, Elisabetta
Gijsbers, Rik
Quattrocelli, Mattia
Peng Koh, Kian
De Waele, Liesbeth
Buyse, Gunnar M.
Derua, Rita
Sampaolesi, Maurilio
author_sort Yedigaryan, Laura
collection PubMed
description Skeletal muscle holds an intrinsic capability of growth and regeneration both in physiological conditions and in case of injury. Chronic muscle illnesses, generally caused by genetic and acquired factors, lead to deconditioning of the skeletal muscle structure and function, and are associated with a significant loss in muscle mass. At the same time, progressive muscle wasting is a hallmark of aging. Given the paracrine properties of myogenic stem cells, extracellular vesicle-derived signals have been studied for their potential implication in both the pathogenesis of degenerative neuromuscular diseases and as a possible therapeutic target. In this study, we screened the content of extracellular vesicles from animal models of muscle hypertrophy and muscle wasting associated with chronic disease and aging. Analysis of the transcriptome, protein cargo, and microRNAs (miRNAs) allowed us to identify a hypertrophic miRNA signature amenable for targeting muscle wasting, consisting of miR-1 and miR-208a. We tested this signature among others in vitro on mesoangioblasts (MABs), vessel-associated adult stem cells, and we observed an increase in the efficiency of myogenic differentiation. Furthermore, injections of miRNA-treated MABs in aged mice resulted in an improvement in skeletal muscle features, such as muscle weight, strength, cross-sectional area, and fibrosis compared to controls. Overall, we provide evidence that the extracellular vesicle-derived miRNA signature we identified enhances the myogenic potential of myogenic stem cells.
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spelling pubmed-97028032022-11-29 Extracellular vesicle-derived miRNAs improve stem cell-based therapeutic approaches in muscle wasting conditions Yedigaryan, Laura Martínez-Sarrà, Ester Giacomazzi, Giorgia Giarratana, Nefele van der Veer, Bernard K. Rotini, Alessio Querceto, Silvia Grosemans, Hanne Cortés-Calabuig, Álvaro Salucci, Sara Battistelli, Michela Falcieri, Elisabetta Gijsbers, Rik Quattrocelli, Mattia Peng Koh, Kian De Waele, Liesbeth Buyse, Gunnar M. Derua, Rita Sampaolesi, Maurilio Front Immunol Immunology Skeletal muscle holds an intrinsic capability of growth and regeneration both in physiological conditions and in case of injury. Chronic muscle illnesses, generally caused by genetic and acquired factors, lead to deconditioning of the skeletal muscle structure and function, and are associated with a significant loss in muscle mass. At the same time, progressive muscle wasting is a hallmark of aging. Given the paracrine properties of myogenic stem cells, extracellular vesicle-derived signals have been studied for their potential implication in both the pathogenesis of degenerative neuromuscular diseases and as a possible therapeutic target. In this study, we screened the content of extracellular vesicles from animal models of muscle hypertrophy and muscle wasting associated with chronic disease and aging. Analysis of the transcriptome, protein cargo, and microRNAs (miRNAs) allowed us to identify a hypertrophic miRNA signature amenable for targeting muscle wasting, consisting of miR-1 and miR-208a. We tested this signature among others in vitro on mesoangioblasts (MABs), vessel-associated adult stem cells, and we observed an increase in the efficiency of myogenic differentiation. Furthermore, injections of miRNA-treated MABs in aged mice resulted in an improvement in skeletal muscle features, such as muscle weight, strength, cross-sectional area, and fibrosis compared to controls. Overall, we provide evidence that the extracellular vesicle-derived miRNA signature we identified enhances the myogenic potential of myogenic stem cells. Frontiers Media S.A. 2022-11-14 /pmc/articles/PMC9702803/ /pubmed/36451814 http://dx.doi.org/10.3389/fimmu.2022.977617 Text en Copyright © 2022 Yedigaryan, Martínez-Sarrà, Giacomazzi, Giarratana, van der Veer, Rotini, Querceto, Grosemans, Cortés-Calabuig, Salucci, Battistelli, Falcieri, Gijsbers, Quattrocelli, Peng Koh, De Waele, Buyse, Derua and Sampaolesi https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Immunology
Yedigaryan, Laura
Martínez-Sarrà, Ester
Giacomazzi, Giorgia
Giarratana, Nefele
van der Veer, Bernard K.
Rotini, Alessio
Querceto, Silvia
Grosemans, Hanne
Cortés-Calabuig, Álvaro
Salucci, Sara
Battistelli, Michela
Falcieri, Elisabetta
Gijsbers, Rik
Quattrocelli, Mattia
Peng Koh, Kian
De Waele, Liesbeth
Buyse, Gunnar M.
Derua, Rita
Sampaolesi, Maurilio
Extracellular vesicle-derived miRNAs improve stem cell-based therapeutic approaches in muscle wasting conditions
title Extracellular vesicle-derived miRNAs improve stem cell-based therapeutic approaches in muscle wasting conditions
title_full Extracellular vesicle-derived miRNAs improve stem cell-based therapeutic approaches in muscle wasting conditions
title_fullStr Extracellular vesicle-derived miRNAs improve stem cell-based therapeutic approaches in muscle wasting conditions
title_full_unstemmed Extracellular vesicle-derived miRNAs improve stem cell-based therapeutic approaches in muscle wasting conditions
title_short Extracellular vesicle-derived miRNAs improve stem cell-based therapeutic approaches in muscle wasting conditions
title_sort extracellular vesicle-derived mirnas improve stem cell-based therapeutic approaches in muscle wasting conditions
topic Immunology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9702803/
https://www.ncbi.nlm.nih.gov/pubmed/36451814
http://dx.doi.org/10.3389/fimmu.2022.977617
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