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Fibroblast growth factor–inducible 14 regulates satellite cell self-renewal and expansion during skeletal muscle repair
Meiricris Tomaz da Silva, Aniket S. Joshi, Ashok Kumar
Meiricris Tomaz da Silva, Aniket S. Joshi, Ashok Kumar
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Research Article Cell biology Muscle biology Stem cells

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

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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.

Authors

Meiricris Tomaz da Silva, Aniket S. Joshi, Ashok Kumar

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Figure 2

Satellite cell–specific ablation of Fn14 inhibits muscle regeneration.

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Satellite cell–specific ablation of Fn14 inhibits muscle regeneration.
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(A) Schematic representation of the experimental design. (B) Body weight of Fn14fl/fl and Fn14scKO mice. (C) Uninjured and 5-day-injured TA muscle wet weight normalized by body weight (BW) of Fn14fl/fl and Fn14scKO mice. (D) Uninjured and 14-day-injured TA muscle wet weight normalized by BW of Fn14fl/fl and Fn14scKO mice. (E) Representative photomicrographs of H&E-stained transverse sections of TA muscle of Fn14fl/fl and Fn14scKO mice at indicated time points after injury. Scale bars: 50 μm. (F–H) Quantitative analysis of average myofiber cross-sectional area (CSA) in TA muscle of Fn14fl/fl and Fn14scKO mice on (F) day 0, (G) day 5, and (H) day 14 after injury. (I) Representative photomicrographs of transverse sections of 5-day-injured TA muscle of Fn14fl/fl and Fn14scKO mice after immunostaining for eMyHC and laminin protein. Nuclei were identified by staining with DAPI. Scale bars: 50 μm. (J and K) Quantification of (J) average CSA of eMyHC+ laminin+ myofibers, and (K) percentage of eMyHC+ laminin+ myofibers containing 2 or more centrally located nuclei in 5-day-injured TA muscle of Fn14fl/fl and Fn14scKO mice. n = 3–6 mice in each group. All data are presented as mean ± SEM. *P ≤ 0.05, values significantly different from contralateral uninjured muscle of Fn14fl/fl or Fn14scKO mice. #P ≤ 0.05, values significantly different from corresponding 5-day- or 14-day-injured TA muscle of Fn14fl/fl mice analyzed by 2-way ANOVA followed by Tukey’s multiple-comparison test. @P ≤ 0.05, values significantly different from corresponding Fn14fl/fl mice analyzed by unpaired Student’s t test.

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