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Zfp423 Regulates Skeletal Muscle Regeneration and Proliferation

Satellite cells (SCs) are skeletal muscle stem cells that proliferate in response to injury and provide myogenic precursors for growth and repair. Zfp423 is a transcriptional cofactor expressed in multiple immature cell populations, such as neuronal precursors, mesenchymal stem cells, and preadipocy...

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Detalles Bibliográficos
Autores principales: Addison, William N., Hall, Katherine C., Kokabu, Shoichiro, Matsubara, Takuma, Fu, Martin M., Gori, Francesca, Baron, Roland
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Microbiology 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6447414/
https://www.ncbi.nlm.nih.gov/pubmed/30692273
http://dx.doi.org/10.1128/MCB.00447-18
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author Addison, William N.
Hall, Katherine C.
Kokabu, Shoichiro
Matsubara, Takuma
Fu, Martin M.
Gori, Francesca
Baron, Roland
author_facet Addison, William N.
Hall, Katherine C.
Kokabu, Shoichiro
Matsubara, Takuma
Fu, Martin M.
Gori, Francesca
Baron, Roland
author_sort Addison, William N.
collection PubMed
description Satellite cells (SCs) are skeletal muscle stem cells that proliferate in response to injury and provide myogenic precursors for growth and repair. Zfp423 is a transcriptional cofactor expressed in multiple immature cell populations, such as neuronal precursors, mesenchymal stem cells, and preadipocytes, where it regulates lineage allocation, proliferation, and differentiation. Here, we show that Zfp423 regulates myogenic progression during muscle regeneration. Zfp423 is undetectable in quiescent SCs but becomes expressed during SC activation. After expansion, Zfp423 is gradually downregulated as committed SCs terminally differentiate. Mice with satellite-cell-specific Zfp423 deletion exhibit severely impaired muscle regeneration following injury, with aberrant SC expansion, defective cell cycle exit, and failure to transition efficiently from the proliferative stage toward commitment. Consistent with a cell-autonomous role of Zfp423, shRNA-mediated knockdown of Zfp423 in myoblasts inhibits differentiation. Surprisingly, forced expression of Zfp423 in myoblasts induces differentiation into adipocytes and arrests myogenesis. Affinity purification of Zfp423 in myoblasts identified Satb2 as a nuclear partner of Zfp423 that cooperatively enhances Zfp423 transcriptional activity, which in turn affects myoblast differentiation. In conclusion, by controlling SC expansion and proliferation, Zfp423 is essential for muscle regeneration. Tight regulation of Zfp423 expression is essential for normal progression of muscle progenitors from proliferation to differentiation.
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spelling pubmed-64474142019-04-12 Zfp423 Regulates Skeletal Muscle Regeneration and Proliferation Addison, William N. Hall, Katherine C. Kokabu, Shoichiro Matsubara, Takuma Fu, Martin M. Gori, Francesca Baron, Roland Mol Cell Biol Research Article Satellite cells (SCs) are skeletal muscle stem cells that proliferate in response to injury and provide myogenic precursors for growth and repair. Zfp423 is a transcriptional cofactor expressed in multiple immature cell populations, such as neuronal precursors, mesenchymal stem cells, and preadipocytes, where it regulates lineage allocation, proliferation, and differentiation. Here, we show that Zfp423 regulates myogenic progression during muscle regeneration. Zfp423 is undetectable in quiescent SCs but becomes expressed during SC activation. After expansion, Zfp423 is gradually downregulated as committed SCs terminally differentiate. Mice with satellite-cell-specific Zfp423 deletion exhibit severely impaired muscle regeneration following injury, with aberrant SC expansion, defective cell cycle exit, and failure to transition efficiently from the proliferative stage toward commitment. Consistent with a cell-autonomous role of Zfp423, shRNA-mediated knockdown of Zfp423 in myoblasts inhibits differentiation. Surprisingly, forced expression of Zfp423 in myoblasts induces differentiation into adipocytes and arrests myogenesis. Affinity purification of Zfp423 in myoblasts identified Satb2 as a nuclear partner of Zfp423 that cooperatively enhances Zfp423 transcriptional activity, which in turn affects myoblast differentiation. In conclusion, by controlling SC expansion and proliferation, Zfp423 is essential for muscle regeneration. Tight regulation of Zfp423 expression is essential for normal progression of muscle progenitors from proliferation to differentiation. American Society for Microbiology 2019-04-02 /pmc/articles/PMC6447414/ /pubmed/30692273 http://dx.doi.org/10.1128/MCB.00447-18 Text en Copyright © 2019 Addison et al. https://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution 4.0 International license (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research Article
Addison, William N.
Hall, Katherine C.
Kokabu, Shoichiro
Matsubara, Takuma
Fu, Martin M.
Gori, Francesca
Baron, Roland
Zfp423 Regulates Skeletal Muscle Regeneration and Proliferation
title Zfp423 Regulates Skeletal Muscle Regeneration and Proliferation
title_full Zfp423 Regulates Skeletal Muscle Regeneration and Proliferation
title_fullStr Zfp423 Regulates Skeletal Muscle Regeneration and Proliferation
title_full_unstemmed Zfp423 Regulates Skeletal Muscle Regeneration and Proliferation
title_short Zfp423 Regulates Skeletal Muscle Regeneration and Proliferation
title_sort zfp423 regulates skeletal muscle regeneration and proliferation
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6447414/
https://www.ncbi.nlm.nih.gov/pubmed/30692273
http://dx.doi.org/10.1128/MCB.00447-18
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