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Human myostatin negatively regulates human myoblast growth and differentiation
Craig McFarlane1, Gu Zi Hui, Wong Zhi Wei Amanda
1Growth, Development and Metabolism Program, Singapore Institute for Clinical Sciences, Singapore.
Abstract:
Myostatin, a member of the transforming growth factor-β superfamily, has been implicated in the potent negative regulation of myogenesis in murine models. However, little is known about the mechanism(s) through which human myostatin negatively regulates human skeletal muscle growth. Using human primary myoblasts and recombinant human myostatin protein, we show here that myostatin blocks human myoblast proliferation by regulating cell cycle progression through targeted upregulation of p21. We further show that myostatin regulates myogenic differentiation through the inhibition of key myogenic regulatory factors including MyoD, via canonical Smad signaling. In addition, we have for the first time demonstrated the capability of myostatin to regulate the Notch signaling pathway during inhibition of human myoblast differentiation. Treatment with myostatin results in the upregulation of Hes1, Hes5, and Hey1 expression during differentiation; moreover, when we interfere with Notch signaling, through treatment with the γ-secretase inhibitor L-685,458, we find enhanced myotube formation despite the presence of excess myostatin. Therefore, blockade of the Notch pathway relieves myostatin repression of differentiation, and myostatin upregulates Notch downstream target genes. Immunoprecipitation studies demonstrate that myostatin treatment of myoblasts results in enhanced association of Notch1-intracellular domain with Smad3, providing an additional mechanism through which myostatin targets and represses the activity of the myogenic regulatory factor MyoD. On the basis of these results, we suggest that myostatin function and mechanism of action are very well conserved between species, and that myostatin regulation of postnatal myogenesis involves interactions with numerous downstream signaling mediators, including the Notch pathway.
Insights
Myostatin inhibits human skeletal muscle growth by blocking cell proliferation and myogenic differentiation. Blocking the Notch pathway can overcome myostatin
Area of Science:
- Muscle biology
- Cell signaling
- Molecular mechanisms of myogenesis
Background:
- Myostatin negatively regulates muscle growth in animal models.
- Mechanisms of human myostatin action on skeletal muscle are not fully understood.
Purpose of the Study:
- To elucidate the molecular mechanisms by which human myostatin inhibits skeletal muscle growth.
- To investigate the role of the Notch signaling pathway in myostatin-mediated muscle growth inhibition.
Main Methods:
- Utilized human primary myoblasts and recombinant human myostatin.
- Analyzed cell cycle progression, myogenic regulatory factors (e.g., MyoD), and Smad signaling.
- Investigated Notch signaling pathway components (Hes1, Hes5, Hey1) and used a γ-secretase inhibitor.
Main Results:
- Myostatin inhibits human myoblast proliferation by upregulating p21 and blocks differentiation by inhibiting MyoD via Smad signaling.
- Myostatin upregulates Notch pathway targets (Hes1, Hes5, Hey1) and inhibits differentiation.
- Interfering with Notch signaling enhances myotube formation despite myostatin presence, indicating Notch pathway involvement in myostatin's repression of differentiation.
Conclusions:
- Myostatin's inhibitory effects on human skeletal muscle growth are conserved across species.
- Myostatin utilizes multiple downstream mediators, including the Notch pathway, to regulate postnatal myogenesis.
- Targeting the Notch pathway may offer a therapeutic strategy to counteract myostatin's effects.
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