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Filamin C regulates skeletal muscle atrophy by stabilizing dishevelled-2 to inhibit autophagy and mitophagy

FilaminC (Flnc) is a member of the actin binding protein family, which is preferentially expressed in the cardiac and skeletal muscle tissues. Although it is known to interact with proteins associated with myofibrillar myopathy, its unique role in skeletal muscle remains largely unknown. In this stu...

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Autores principales: Han, Shunshun, Cui, Can, Zhao, Xiyu, Zhang, Yao, Zhang, Yun, Zhao, Jing, Shen, Xiaoxu, He, Haorong, Wang, Jianping, Ma, Menggen, Li, Diyan, Zhu, Qing, Yin, Huadong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society of Gene & Cell Therapy 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8683659/
https://www.ncbi.nlm.nih.gov/pubmed/34976434
http://dx.doi.org/10.1016/j.omtn.2021.11.022
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author Han, Shunshun
Cui, Can
Zhao, Xiyu
Zhang, Yao
Zhang, Yun
Zhao, Jing
Shen, Xiaoxu
He, Haorong
Wang, Jianping
Ma, Menggen
Li, Diyan
Zhu, Qing
Yin, Huadong
author_facet Han, Shunshun
Cui, Can
Zhao, Xiyu
Zhang, Yao
Zhang, Yun
Zhao, Jing
Shen, Xiaoxu
He, Haorong
Wang, Jianping
Ma, Menggen
Li, Diyan
Zhu, Qing
Yin, Huadong
author_sort Han, Shunshun
collection PubMed
description FilaminC (Flnc) is a member of the actin binding protein family, which is preferentially expressed in the cardiac and skeletal muscle tissues. Although it is known to interact with proteins associated with myofibrillar myopathy, its unique role in skeletal muscle remains largely unknown. In this study, we identify the biological functions of Flnc in vitro and in vivo using chicken primary myoblast cells and animal models, respectively. From the results, we observe that the growth rate and mass of the skeletal muscle of fast-growing chickens (broilers) were significantly higher than those in slow-growing chickens (layers). Furthermore, we find that the expression of Flnc in the skeletal muscle of broilers was higher than that in the layers. Our results indicated that Flnc was highly expressed in the skeletal muscle, especially in the skeletal muscle of broilers than in layers. This suggests that Flnc plays a positive regulatory role in myoblast development. Flnc knockdown resulted in muscle atrophy, whereas the overexpression of Flnc promotes muscle hypertrophy in vivo in an animal model. We also found that Flnc interacted with dishevelled-2 (Dvl2), activated the wnt/β-catenin signaling pathway, and controlled skeletal muscle development. Flnc also antagonized the LC3-mediated autophagy system by decreasing Dvl2 ubiquitination. Moreover, Flnc knockdown activated and significantly increased mitophagy. In summary, these results indicate that the absence of Flnc induces autophagy or mitophagy and regulates muscle atrophy.
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spelling pubmed-86836592021-12-30 Filamin C regulates skeletal muscle atrophy by stabilizing dishevelled-2 to inhibit autophagy and mitophagy Han, Shunshun Cui, Can Zhao, Xiyu Zhang, Yao Zhang, Yun Zhao, Jing Shen, Xiaoxu He, Haorong Wang, Jianping Ma, Menggen Li, Diyan Zhu, Qing Yin, Huadong Mol Ther Nucleic Acids Original Article FilaminC (Flnc) is a member of the actin binding protein family, which is preferentially expressed in the cardiac and skeletal muscle tissues. Although it is known to interact with proteins associated with myofibrillar myopathy, its unique role in skeletal muscle remains largely unknown. In this study, we identify the biological functions of Flnc in vitro and in vivo using chicken primary myoblast cells and animal models, respectively. From the results, we observe that the growth rate and mass of the skeletal muscle of fast-growing chickens (broilers) were significantly higher than those in slow-growing chickens (layers). Furthermore, we find that the expression of Flnc in the skeletal muscle of broilers was higher than that in the layers. Our results indicated that Flnc was highly expressed in the skeletal muscle, especially in the skeletal muscle of broilers than in layers. This suggests that Flnc plays a positive regulatory role in myoblast development. Flnc knockdown resulted in muscle atrophy, whereas the overexpression of Flnc promotes muscle hypertrophy in vivo in an animal model. We also found that Flnc interacted with dishevelled-2 (Dvl2), activated the wnt/β-catenin signaling pathway, and controlled skeletal muscle development. Flnc also antagonized the LC3-mediated autophagy system by decreasing Dvl2 ubiquitination. Moreover, Flnc knockdown activated and significantly increased mitophagy. In summary, these results indicate that the absence of Flnc induces autophagy or mitophagy and regulates muscle atrophy. American Society of Gene & Cell Therapy 2021-11-29 /pmc/articles/PMC8683659/ /pubmed/34976434 http://dx.doi.org/10.1016/j.omtn.2021.11.022 Text en © 2021 The Authors https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Original Article
Han, Shunshun
Cui, Can
Zhao, Xiyu
Zhang, Yao
Zhang, Yun
Zhao, Jing
Shen, Xiaoxu
He, Haorong
Wang, Jianping
Ma, Menggen
Li, Diyan
Zhu, Qing
Yin, Huadong
Filamin C regulates skeletal muscle atrophy by stabilizing dishevelled-2 to inhibit autophagy and mitophagy
title Filamin C regulates skeletal muscle atrophy by stabilizing dishevelled-2 to inhibit autophagy and mitophagy
title_full Filamin C regulates skeletal muscle atrophy by stabilizing dishevelled-2 to inhibit autophagy and mitophagy
title_fullStr Filamin C regulates skeletal muscle atrophy by stabilizing dishevelled-2 to inhibit autophagy and mitophagy
title_full_unstemmed Filamin C regulates skeletal muscle atrophy by stabilizing dishevelled-2 to inhibit autophagy and mitophagy
title_short Filamin C regulates skeletal muscle atrophy by stabilizing dishevelled-2 to inhibit autophagy and mitophagy
title_sort filamin c regulates skeletal muscle atrophy by stabilizing dishevelled-2 to inhibit autophagy and mitophagy
topic Original Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8683659/
https://www.ncbi.nlm.nih.gov/pubmed/34976434
http://dx.doi.org/10.1016/j.omtn.2021.11.022
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