Cargando…

Inactivating IL34 promotes regenerating muscle stem cell expansion and attenuates Duchenne muscular dystrophy in mouse models

Background: The balance between the differentiation and self-renewal of satellite cells (SCs) is essential for skeletal muscle homeostasis and regeneration. Our knowledge of this regulatory process is incomplete. Methods: Using global and conditional knockout mice as in vivo models and isolated sate...

Descripción completa

Detalles Bibliográficos
Autores principales: Su, Yang, Cao, Yuxin, Liu, Chang, Xu, Qing, Li, Na, Lan, Miaomiao, Li, Lei, Wang, Kun, Zhang, Zeyu, Meng, Qingyong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Ivyspring International Publisher 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10196826/
https://www.ncbi.nlm.nih.gov/pubmed/37215564
http://dx.doi.org/10.7150/thno.83817
_version_ 1785044427687854080
author Su, Yang
Cao, Yuxin
Liu, Chang
Xu, Qing
Li, Na
Lan, Miaomiao
Li, Lei
Wang, Kun
Zhang, Zeyu
Meng, Qingyong
author_facet Su, Yang
Cao, Yuxin
Liu, Chang
Xu, Qing
Li, Na
Lan, Miaomiao
Li, Lei
Wang, Kun
Zhang, Zeyu
Meng, Qingyong
author_sort Su, Yang
collection PubMed
description Background: The balance between the differentiation and self-renewal of satellite cells (SCs) is essential for skeletal muscle homeostasis and regeneration. Our knowledge of this regulatory process is incomplete. Methods: Using global and conditional knockout mice as in vivo models and isolated satellite cells as in vitro system, we investigated the regulatory mechanisms of IL34 in the process of skeletal muscle regeneration in vivo and in vitro. Results: Myocytes and regenerating fibers are major source of IL34. Deletion of interleukin 34 (IL34) sustains expansion by sacrificing the differentiation of SCs and leads to significant muscle regeneration defects. We further found that inactivating IL34 in SCs leads to hyperactivation of NFKB1 signaling; NFKB1 translocates to the nucleus and binds to the promoter region of Igfbp5 to synergistically disturb protein kinase B (Akt) activity. Notably, augmented Igfbp5 function in SCs led to deficient differentiation and Akt activity. Furthermore, disrupting Akt activity both in vivo and in vitro mimicked the phenotype of IL34 knockout. Finally, deleting IL34 or interfering Akt in mdx mice ameliorates dystrophic muscles. Conclusion: We comprehensively characterized regenerating myofibers-expressed IL34 plays a pivotal role in controlling myonuclear domain. The results also indicate that impairing IL34 function by promoting SC maintenance can lead to improved muscular performance in mdx mice in which the stem cell pool is compromised.
format Online
Article
Text
id pubmed-10196826
institution National Center for Biotechnology Information
language English
publishDate 2023
publisher Ivyspring International Publisher
record_format MEDLINE/PubMed
spelling pubmed-101968262023-05-20 Inactivating IL34 promotes regenerating muscle stem cell expansion and attenuates Duchenne muscular dystrophy in mouse models Su, Yang Cao, Yuxin Liu, Chang Xu, Qing Li, Na Lan, Miaomiao Li, Lei Wang, Kun Zhang, Zeyu Meng, Qingyong Theranostics Research Paper Background: The balance between the differentiation and self-renewal of satellite cells (SCs) is essential for skeletal muscle homeostasis and regeneration. Our knowledge of this regulatory process is incomplete. Methods: Using global and conditional knockout mice as in vivo models and isolated satellite cells as in vitro system, we investigated the regulatory mechanisms of IL34 in the process of skeletal muscle regeneration in vivo and in vitro. Results: Myocytes and regenerating fibers are major source of IL34. Deletion of interleukin 34 (IL34) sustains expansion by sacrificing the differentiation of SCs and leads to significant muscle regeneration defects. We further found that inactivating IL34 in SCs leads to hyperactivation of NFKB1 signaling; NFKB1 translocates to the nucleus and binds to the promoter region of Igfbp5 to synergistically disturb protein kinase B (Akt) activity. Notably, augmented Igfbp5 function in SCs led to deficient differentiation and Akt activity. Furthermore, disrupting Akt activity both in vivo and in vitro mimicked the phenotype of IL34 knockout. Finally, deleting IL34 or interfering Akt in mdx mice ameliorates dystrophic muscles. Conclusion: We comprehensively characterized regenerating myofibers-expressed IL34 plays a pivotal role in controlling myonuclear domain. The results also indicate that impairing IL34 function by promoting SC maintenance can lead to improved muscular performance in mdx mice in which the stem cell pool is compromised. Ivyspring International Publisher 2023-04-23 /pmc/articles/PMC10196826/ /pubmed/37215564 http://dx.doi.org/10.7150/thno.83817 Text en © The author(s) https://creativecommons.org/licenses/by/4.0/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
Su, Yang
Cao, Yuxin
Liu, Chang
Xu, Qing
Li, Na
Lan, Miaomiao
Li, Lei
Wang, Kun
Zhang, Zeyu
Meng, Qingyong
Inactivating IL34 promotes regenerating muscle stem cell expansion and attenuates Duchenne muscular dystrophy in mouse models
title Inactivating IL34 promotes regenerating muscle stem cell expansion and attenuates Duchenne muscular dystrophy in mouse models
title_full Inactivating IL34 promotes regenerating muscle stem cell expansion and attenuates Duchenne muscular dystrophy in mouse models
title_fullStr Inactivating IL34 promotes regenerating muscle stem cell expansion and attenuates Duchenne muscular dystrophy in mouse models
title_full_unstemmed Inactivating IL34 promotes regenerating muscle stem cell expansion and attenuates Duchenne muscular dystrophy in mouse models
title_short Inactivating IL34 promotes regenerating muscle stem cell expansion and attenuates Duchenne muscular dystrophy in mouse models
title_sort inactivating il34 promotes regenerating muscle stem cell expansion and attenuates duchenne muscular dystrophy in mouse models
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10196826/
https://www.ncbi.nlm.nih.gov/pubmed/37215564
http://dx.doi.org/10.7150/thno.83817
work_keys_str_mv AT suyang inactivatingil34promotesregeneratingmusclestemcellexpansionandattenuatesduchennemusculardystrophyinmousemodels
AT caoyuxin inactivatingil34promotesregeneratingmusclestemcellexpansionandattenuatesduchennemusculardystrophyinmousemodels
AT liuchang inactivatingil34promotesregeneratingmusclestemcellexpansionandattenuatesduchennemusculardystrophyinmousemodels
AT xuqing inactivatingil34promotesregeneratingmusclestemcellexpansionandattenuatesduchennemusculardystrophyinmousemodels
AT lina inactivatingil34promotesregeneratingmusclestemcellexpansionandattenuatesduchennemusculardystrophyinmousemodels
AT lanmiaomiao inactivatingil34promotesregeneratingmusclestemcellexpansionandattenuatesduchennemusculardystrophyinmousemodels
AT lilei inactivatingil34promotesregeneratingmusclestemcellexpansionandattenuatesduchennemusculardystrophyinmousemodels
AT wangkun inactivatingil34promotesregeneratingmusclestemcellexpansionandattenuatesduchennemusculardystrophyinmousemodels
AT zhangzeyu inactivatingil34promotesregeneratingmusclestemcellexpansionandattenuatesduchennemusculardystrophyinmousemodels
AT mengqingyong inactivatingil34promotesregeneratingmusclestemcellexpansionandattenuatesduchennemusculardystrophyinmousemodels