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Rbm24 modulates adult skeletal muscle regeneration via regulation of alternative splicing

Rationale: The adult skeletal muscle can self-repair efficiently following mechanical or pathological damage due to its remarkable regenerative capacity. However, regulatory mechanisms underlying muscle regeneration are complicated and have not been fully elucidated. Alternative splicing (AS) is a m...

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Autores principales: Zhang, Mengkai, Han, Yue, Liu, Jing, Liu, Lefeng, Zheng, Longqing, Chen, Yongxiong, Xia, Rongmu, Yao, Dongbo, Cai, Xuemin, Xu, Xiuqin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7532667/
https://www.ncbi.nlm.nih.gov/pubmed/33042276
http://dx.doi.org/10.7150/thno.44389
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author Zhang, Mengkai
Han, Yue
Liu, Jing
Liu, Lefeng
Zheng, Longqing
Chen, Yongxiong
Xia, Rongmu
Yao, Dongbo
Cai, Xuemin
Xu, Xiuqin
author_facet Zhang, Mengkai
Han, Yue
Liu, Jing
Liu, Lefeng
Zheng, Longqing
Chen, Yongxiong
Xia, Rongmu
Yao, Dongbo
Cai, Xuemin
Xu, Xiuqin
author_sort Zhang, Mengkai
collection PubMed
description Rationale: The adult skeletal muscle can self-repair efficiently following mechanical or pathological damage due to its remarkable regenerative capacity. However, regulatory mechanisms underlying muscle regeneration are complicated and have not been fully elucidated. Alternative splicing (AS) is a major mechanism responsible for post-transcriptional regulation. Many aberrant AS events have been identified in patients with muscular dystrophy which is accompanied by abnormal muscle regeneration. However, little is known about the correlation between AS and muscle regeneration. It has been reported that RNA binding motif protein 24 (Rbm24), a tissue-specific splicing factor, is involved in embryo myogenesis while the role of Rbm24 in adult myogenesis (also called muscle regeneration) is poorly understood. Methods: To investigate the role of Rbm24 in adult skeletal muscle, we generated Rbm24 conditional knockout mice and satellite cell-specific knockout mice. Furthermore, a cardiotoxin (CTX)-induced injury model was utilized to assess the effects of Rbm24 on skeletal muscle regeneration. Genome-wide RNA-Seq was performed to identify the changes in AS following loss of Rbm24. Results: Rbm24 knockout mice displayed abnormal regeneration 4 months after tamoxifen treatment. Using RNA-Seq, we found that Rbm24 regulated a complex network of AS events involved in multiple biological processes, including myogenesis, muscle regeneration and muscle hypertrophy. Moreover, using a CTX-induced injury model, we showed that loss of Rbm24 in skeletal muscle resulted in myogenic fusion and differentiation defects and significantly delayed muscle regeneration. Furthermore, satellite cell-specific Rbm24 knockout mice recapitulated the defects in regeneration seen in the global Rbm24 knockout mice. Importantly, we demonstrated that Rbm24 regulated AS of Mef2d, Naca, Rock2 and Lrrfip1 which are essential for myogenic differentiation and muscle regeneration. Conclusions: The present study demonstrated that Rbm24 regulates dynamic changes in AS and is essential for adult skeletal muscle regeneration.
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spelling pubmed-75326672020-10-08 Rbm24 modulates adult skeletal muscle regeneration via regulation of alternative splicing Zhang, Mengkai Han, Yue Liu, Jing Liu, Lefeng Zheng, Longqing Chen, Yongxiong Xia, Rongmu Yao, Dongbo Cai, Xuemin Xu, Xiuqin Theranostics Research Paper Rationale: The adult skeletal muscle can self-repair efficiently following mechanical or pathological damage due to its remarkable regenerative capacity. However, regulatory mechanisms underlying muscle regeneration are complicated and have not been fully elucidated. Alternative splicing (AS) is a major mechanism responsible for post-transcriptional regulation. Many aberrant AS events have been identified in patients with muscular dystrophy which is accompanied by abnormal muscle regeneration. However, little is known about the correlation between AS and muscle regeneration. It has been reported that RNA binding motif protein 24 (Rbm24), a tissue-specific splicing factor, is involved in embryo myogenesis while the role of Rbm24 in adult myogenesis (also called muscle regeneration) is poorly understood. Methods: To investigate the role of Rbm24 in adult skeletal muscle, we generated Rbm24 conditional knockout mice and satellite cell-specific knockout mice. Furthermore, a cardiotoxin (CTX)-induced injury model was utilized to assess the effects of Rbm24 on skeletal muscle regeneration. Genome-wide RNA-Seq was performed to identify the changes in AS following loss of Rbm24. Results: Rbm24 knockout mice displayed abnormal regeneration 4 months after tamoxifen treatment. Using RNA-Seq, we found that Rbm24 regulated a complex network of AS events involved in multiple biological processes, including myogenesis, muscle regeneration and muscle hypertrophy. Moreover, using a CTX-induced injury model, we showed that loss of Rbm24 in skeletal muscle resulted in myogenic fusion and differentiation defects and significantly delayed muscle regeneration. Furthermore, satellite cell-specific Rbm24 knockout mice recapitulated the defects in regeneration seen in the global Rbm24 knockout mice. Importantly, we demonstrated that Rbm24 regulated AS of Mef2d, Naca, Rock2 and Lrrfip1 which are essential for myogenic differentiation and muscle regeneration. Conclusions: The present study demonstrated that Rbm24 regulates dynamic changes in AS and is essential for adult skeletal muscle regeneration. Ivyspring International Publisher 2020-09-11 /pmc/articles/PMC7532667/ /pubmed/33042276 http://dx.doi.org/10.7150/thno.44389 Text en © The author(s) This is an open access article distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/). See http://ivyspring.com/terms for full terms and conditions.
spellingShingle Research Paper
Zhang, Mengkai
Han, Yue
Liu, Jing
Liu, Lefeng
Zheng, Longqing
Chen, Yongxiong
Xia, Rongmu
Yao, Dongbo
Cai, Xuemin
Xu, Xiuqin
Rbm24 modulates adult skeletal muscle regeneration via regulation of alternative splicing
title Rbm24 modulates adult skeletal muscle regeneration via regulation of alternative splicing
title_full Rbm24 modulates adult skeletal muscle regeneration via regulation of alternative splicing
title_fullStr Rbm24 modulates adult skeletal muscle regeneration via regulation of alternative splicing
title_full_unstemmed Rbm24 modulates adult skeletal muscle regeneration via regulation of alternative splicing
title_short Rbm24 modulates adult skeletal muscle regeneration via regulation of alternative splicing
title_sort rbm24 modulates adult skeletal muscle regeneration via regulation of alternative splicing
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7532667/
https://www.ncbi.nlm.nih.gov/pubmed/33042276
http://dx.doi.org/10.7150/thno.44389
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