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April 19, 2026Advanced Science1 citationsOpen Access

Mechanosensitive Piezo1/Osteocalcin/Irisin Axis Protects Against Disuse‐Induced Muscle Atrophy

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ZWZhaolu WangJiangsu Province HospitalXJXiuying JiangNorthwest A&F UniversityXSXi SunNorthwest A&F University

Key Points

  • To investigate the role of the Piezo1/osteocalcin/Irisin axis in muscle atrophy due to disuse.
  • Identified mechanosensitive axis linking bone and muscle functions.
  • Used bilateral hindlimb immobilization to induce muscle atrophy in animal models.
  • Administered exogenous osteocalcin and activated Piezo1 to assess effects on muscle atrophy.
  • Conducted pair-feeding experiments to evaluate osteocalcin's independent effects on muscle atrophy.
  • Bilateral hindlimb immobilization reduced circulating undercarboxylated osteocalcin levels.
  • Osteocalcin deficiency worsened muscle atrophy, while exogenous osteocalcin improved recovery.
  • Pharmacological activation of Piezo1 reduced muscle atrophy in an osteocalcin-dependent manner.
  • Knockdown of Piezo1 or muscle receptors gprc6a or fndc5 abolished protective effects of osteocalcin.
  • Functional conservation of this axis was demonstrated in porcine myotubes.

Abstract

Disuse-induced muscle atrophy remains a therapeutic challenge due to its complex etiology. Osteocalcin (OCN) is a bone-derived hormone with metabolic functions, while its role in muscle atrophy remains poorly understood. Here, we identified a mechanosensitive Piezo1/osteocalcin/Irisin axis linking bone mechanotransduction to muscle homeostasis. We showed that bilateral hindlimb immobilization (IMM) markedly reduced circulating undercarboxylated OCN. OCN deficiency exacerbated IMM-induced muscle atrophy, whereas exogenous OCN attenuated muscle atrophy and promoted recovery. Mechanistically, Piezo1 acted as an upstream regulator of OCN, as pharmacological Piezo1 activation attenuated muscle atrophy in an OCN-dependent manner, whereas bone-specific Piezo1 knockdown abolished these protective effects. Furthermore, OCN exerted protective effects through the muscle receptor Gprc6a and the downstream effector Fndc5/Irisin, muscle-specific knockdown of either Gprc6a or Fndc5 abolished OCN-mediated protective effects. Notably, pair-feeding experiments demonstrated that OCN directly protects against muscle atrophy independent of increased food intake. Finally, we demonstrated functional conservation of this axis in porcine myotubes. Notably, only animal models were used in the current study, and future studies are needed to test if the signaling axis has relevance to humans. Collectively, this work establishes that the Piezo1/Osteocalcin/Irisin axis mediates mechanical unloading-induced muscle atrophy and highlights this axis as a promising therapeutic target for disuse-induced muscle atrophy.

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Cite This Study

Wang et al. (2026) studied this question.

synapsesocial.com/papers/69e47282010ef96374d8e8afhttps://doi.org/10.1002/advs.75355
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