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The hepatokine TSK maintains myofiber integrity and exercise endurance and contributes to muscle regeneration
Qiuyu Wang, Xiaoxue Qiu, Tongyu Liu, Cheehoon Ahn, Jeffrey F. Horowitz, Jiandie D. Lin
Qiuyu Wang, Xiaoxue Qiu, Tongyu Liu, Cheehoon Ahn, Jeffrey F. Horowitz, Jiandie D. Lin
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Research Article Muscle biology

The hepatokine TSK maintains myofiber integrity and exercise endurance and contributes to muscle regeneration

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Abstract

Mammalian skeletal muscle contains heterogenous myofibers with different contractile and metabolic properties that sustain muscle mass and endurance capacity. The transcriptional regulators that govern these myofiber gene programs have been elucidated. However, the hormonal cues that direct the specification of myofiber types and muscle endurance remain largely unknown. Here, we uncover the secreted factor Tsukushi (TSK) as an extracellular signal that is required for maintaining muscle mass, strength, and endurance capacity and that contributes to muscle regeneration. Mice lacking TSK exhibited reduced grip strength and impaired exercise capacity. Muscle transcriptomic analysis revealed that TSK deficiency results in a remarkably selective impairment in the expression of myofibrillar genes, characteristic of slow-twitch muscle fibers, that is associated with abnormal neuromuscular junction formation. AAV-mediated overexpression of TSK failed to rescue these myofiber defects in adult mice, suggesting that the effects of TSK on myofibers are likely restricted to certain developmental stages. Finally, mice lacking TSK exhibited diminished muscle regeneration following cardiotoxin-induced muscle injury. These findings support a crucial role of TSK as a hormonal cue in the regulation of contractile gene expression, endurance capacity, and muscle regeneration.

Authors

Qiuyu Wang, Xiaoxue Qiu, Tongyu Liu, Cheehoon Ahn, Jeffrey F. Horowitz, Jiandie D. Lin

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Figure 6

TSK deficiency impairs muscle regeneration following cardiotoxin-induced injury.

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TSK deficiency impairs muscle regeneration following cardiotoxin-induced...
(A) H&E staining of TA muscle from WT and TSK-KO mice 8 days following intramuscular cardiotoxin treatment. (B) Anti-desmin immunofluorescence staining of TA muscle sections from treated mice. (C) F4/80 immunofluorescence staining. (D) qPCR analysis of muscle gene expression. (E) A schematic diagram illustrating the role of TSK in muscle development and function. Data in D represent mean ± SEM and were analyzed by 2-tailed unpaired Student’s t test. Scale bars: 100 µm.

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