Fibroblast growth factor-inducible 14 regulates satellite cell self-renewal and expansion during skeletal muscle repair.

IF 6.1 1区 医学 Q1 MEDICINE, RESEARCH & EXPERIMENTAL JCI insight Pub Date : 2025-01-28 DOI:10.1172/jci.insight.187825
Meiricris Tomaz da Silva, Aniket S Joshi, Ashok Kumar
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Abstract

Skeletal muscle regeneration in adults is predominantly driven by satellite cells. Loss of satellite cell pool and function leads to skeletal muscle wasting in many conditions and disease states. Here, we demonstrate that the levels of fibroblast growth factor-inducible 14 (Fn14) were increased in satellite cells after muscle injury. Conditional ablation of Fn14 in Pax7-expressing satellite cells drastically reduced their expansion and skeletal muscle regeneration following injury. Fn14 was required for satellite cell self-renewal and proliferation as well as to prevent precocious differentiation. Targeted deletion of Fn14 inhibited Notch signaling but led to the spurious activation of STAT3 signaling in regenerating skeletal muscle and in cultured muscle progenitor cells. Silencing of STAT3 improved proliferation and inhibited premature differentiation of Fn14-deficient satellite cells. Furthermore, conditional ablation of Fn14 in satellite cells exacerbated myopathy in the mdx mouse model of Duchenne muscular dystrophy (DMD), whereas its overexpression improved the engraftment of exogenous muscle progenitor cells into the dystrophic muscle of mdx mice. Altogether, our study highlights the crucial role of Fn14 in the regulation of satellite cell fate and function and suggests that Fn14 can be a potential molecular target to improve muscle regeneration in muscular disorders.

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成纤维细胞生长因子诱导14调节骨骼肌修复过程中卫星细胞的自我更新和扩张。
成人骨骼肌再生主要由卫星细胞驱动。卫星细胞池和功能的丧失导致骨骼肌在许多情况和疾病状态下的萎缩。在这里,我们证明了成纤维细胞生长因子诱导14 (Fn14)的水平在肌肉损伤后的卫星细胞中增加。条件消融表达pax7的卫星细胞中的Fn14,可显著降低其扩张和骨骼肌损伤后的再生。Fn14是卫星细胞自我更新和增殖以及防止早熟分化所必需的。Fn14的靶向缺失抑制了Notch信号,但在再生骨骼肌和培养的肌肉祖细胞中导致STAT3信号的虚假激活。STAT3的沉默改善了fn14缺陷卫星细胞的增殖并抑制了其过早分化。此外,卫星细胞中Fn14的条件消融加重了mdx小鼠杜氏肌营养不良(DMD)模型的肌病,而其过表达促进了外源性肌肉祖细胞在mdx小鼠营养不良肌肉中的植入。总之,我们的研究强调了Fn14在调节卫星细胞命运和功能中的关键作用,并表明Fn14可能是改善肌肉疾病中肌肉再生的潜在分子靶点。
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来源期刊
JCI insight
JCI insight Medicine-General Medicine
CiteScore
13.70
自引率
1.20%
发文量
543
审稿时长
6 weeks
期刊介绍: JCI Insight is a Gold Open Access journal with a 2022 Impact Factor of 8.0. It publishes high-quality studies in various biomedical specialties, such as autoimmunity, gastroenterology, immunology, metabolism, nephrology, neuroscience, oncology, pulmonology, and vascular biology. The journal focuses on clinically relevant basic and translational research that contributes to the understanding of disease biology and treatment. JCI Insight is self-published by the American Society for Clinical Investigation (ASCI), a nonprofit honor organization of physician-scientists founded in 1908, and it helps fulfill the ASCI's mission to advance medical science through the publication of clinically relevant research reports.
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