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Myostatin gene deletion prevents glucocorticoid-induced muscle atrophy
H Gilson1, O Schakman, L Combaret
1Unité de Diabétologie et Nutrition, Université Catholique de Louvain, B-1200 Brussels, Belgium.
Abstract:
Glucocorticoids mediate muscle atrophy in many catabolic states. Myostatin expression, a negative regulator of muscle growth, is increased by glucocorticoids and myostatin overexpression is associated with lower muscle mass. This suggests that myostatin is required for the catabolic effects of glucocorticoids. We therefore investigated whether myostatin gene disruption could prevent muscle atrophy caused by glucocorticoids. Male myostatin knockout (KO) and wild-type mice were subjected to dexamethasone treatment (1 mg/kg.d for 10 d or 5 mg/kg.d for 4 d). In wild-type mice, daily administration of low-dose dexamethasone for 10 d resulted in muscle atrophy (tibialis anterior: -15%; gastrocnemius: -13%; P < 0.01) due to 15% decrease in the muscle fiber cross-sectional area (1621 +/- 31 vs. 1918 +/- 64 microm(2), P < 0.01). In KO mice, there was no reduction of muscle mass nor fiber cross-sectional area after dexamethasone treatment. Muscle atrophy after 4 d of high-dose dexamethasone was associated with increased mRNA of enzymes involved in proteolytic pathways (atrogin-1, muscle ring finger 1, and cathepsin L) and increased chymotrypsin-like proteasomal activity. In contrast, the mRNA of these enzymes and the proteasomal activity were not significantly affected by dexamethasone in KO mice. Muscle IGF-I mRNA was paradoxically decreased in KO mice (-35%, P < 0.05); this was associated with a potentially compensatory increase of IGF-II expression in both saline and dexamethasone-treated KO mice (2-fold, P < 0.01). In conclusion, our results show that myostatin deletion prevents muscle atrophy in glucocorticoid-treated mice, by blunting the glucocorticoid-induced enhanced proteolysis, and suggest an important role of myostatin in muscle atrophy caused by glucocorticoids.
Insights
Myostatin gene disruption prevents glucocorticoid-induced muscle atrophy by inhibiting proteolysis. This study highlights myostatin's crucial role in glucocorticoid-mediated muscle wasting.
Area of Science:
- Biochemistry
- Molecular Biology
- Physiology
Background:
- Glucocorticoids cause muscle atrophy in catabolic states.
- Myostatin, a negative regulator of muscle growth, is upregulated by glucocorticoids, suggesting its involvement in glucocorticoid-induced muscle wasting.
Purpose of the Study:
- To investigate if myostatin gene disruption can prevent glucocorticoid-induced muscle atrophy.
- To elucidate the role of myostatin in the catabolic effects of glucocorticoids on muscle.
Main Methods:
- Male myostatin knockout (KO) and wild-type mice were treated with dexamethasone.
- Muscle mass, fiber cross-sectional area, proteolytic pathway gene expression (atrogin-1, muscle ring finger 1, cathepsin L), and proteasomal activity were assessed.
- Insulin-like growth factor (IGF) mRNA levels were also analyzed.
Main Results:
- Dexamethasone induced significant muscle atrophy and decreased muscle fiber size in wild-type mice.
- Myostatin KO mice showed no muscle atrophy or reduction in fiber size after dexamethasone treatment.
- Glucocorticoid-induced increases in proteolytic enzymes and proteasomal activity were abolished in myostatin KO mice.
- Muscle IGF-I mRNA decreased, while IGF-II mRNA increased in KO mice.
Conclusions:
- Myostatin deletion effectively prevents muscle atrophy caused by glucocorticoids.
- This prevention is achieved by blunting the glucocorticoid-induced enhancement of proteolysis.
- Myostatin plays a critical role in mediating the muscle-wasting effects of glucocorticoids.
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