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Published on: August 10, 2018
[Myostatin blockade therapy for muscular atrophy]
1Department of Neurology, Kawasaki Medical School, Kurashiki-City, Okayama, Japan.
Abstract:
Myostatin, a member of the muscle-specific transforming growth factor (TGF)-β family, negatively regulates skeletal muscle growth. It inhibits muscle stem cell proliferation and differentiation and attenuates adult muscle fiber protein accretion, resulting in decreased skeletal muscle mass. As such, it has been considered a therapeutic target of muscular dystrophy. Notably, administration of a blocking antibody against myostatin ameliorated the pathophysiology of dystrophin-deficient mdx mice. Although a clinical trial of anti-myostatin antibody MYO-029 failed to achieve a significant outcome in patients with muscular dystrophies, various distinct approaches have been taken to establish anti-myostatin therapy, including myostatin decoy receptor ACE-031, small-molecule inhibitors against the myostatin receptor, and myostatin short intertering RNA with collagen-derived carrier particles. The clinical application of anti-myostatin therapeutics in treatment of patients with muscular dystrophy needs further evaluation for safety and specification of the target disease types among the various muscular dystrophies. In addition, myostatin inhibition could be effective for muscle-wasting conditions other than muscular dystrophy- for instance, steroid-induced myopathy, mitochondrial myopathy, or sarcopenia in elderly patients. Moreover, considerable evidence shows that myostatin regulates energy metabolism and that its inhibition can significantly attenuate the progression of obesity and diabetes. It may also be applicable for the prevention of metabolic syndrome. Thus, safe and potent anti-myostatin therapy will have a wide variety of applications in modern medicine.
Insights
Myostatin negatively regulates muscle growth, making it a therapeutic target for muscular dystrophy and other muscle-wasting conditions. Inhibiting myostatin also shows potential for treating obesity, diabetes, and metabolic syndrome.
Area of Science:
- Molecular Biology
- Muscle Physiology
Context:
- Myostatin, a TGF-β family member, inhibits skeletal muscle growth by suppressing stem cell activity and protein accretion.
- It is a key target for treating muscular dystrophies, with early antibody trials showing mixed results.
Purpose:
- To explore the therapeutic potential of myostatin inhibition beyond muscular dystrophy.
- To evaluate diverse anti-myostatin strategies and their applicability in various conditions.
Summary:
- Myostatin inhibition strategies, including antibodies, decoy receptors, and RNA interference, are being developed for muscular dystrophy.
- Evidence suggests myostatin also impacts energy metabolism, offering therapeutic avenues for obesity, diabetes, and metabolic syndrome.
Impact:
- Safe and effective anti-myostatin therapies could revolutionize treatment for muscle-wasting diseases.
- Myostatin inhibition holds promise for managing metabolic disorders and age-related muscle loss (sarcopenia).
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