Related Experiment Video
Updated: Jun 22, 2026

Preparation of Primary Myogenic Precursor Cell/Myoblast Cultures from Basal Vertebrate Lineages
Published on: April 30, 2014
Skeletal muscle gene expression after myostatin knockout in mature mice
Stephen Welle1, Andrew Cardillo, Michelle Zanche
1Department of Medicine, University of Rochester, Rochester, New York, USA. stephen_welle@urmc.rochester.edu
Abstract:
There is much interest in developing anti-myostatin agents to reverse or prevent muscle atrophy in adults, so it is important to characterize the effects of reducing myostatin activity after normal muscle development. For assessment of the effect of loss of myostatin signaling on gene expression in muscle, RNA from mice with postdevelopmental myostatin knockout was analyzed with oligonucleotide microarrays. Myostatin was undetectable in muscle within 2 wk after Cre recombinase activation in 4-month-old male mice with floxed myostatin genes. Three months after myostatin depletion, muscle mass had increased 26% (vs. 2% after induction of Cre activity in mice with normal myostatin genes), at which time the expression of several hundred genes differed in knockout and control mice at nominal P < 0.01. In contrast to previously reported effects of constitutive myostatin knockout, postdevelopmental knockout did not downregulate expression of genes encoding slow isoforms of contractile proteins or genes encoding proteins involved in energy metabolism. Several collagen genes were expressed at 20-50% lower levels in the myostatin-deficient muscles, which had approximately 25% less collagen than normal muscles as reflected by hydroxyproline content. Most of the other genes affected by myostatin depletion have not been previously linked to myostatin signaling. Gene set enrichment analysis suggested that Smads are not the only transcription factors with reduced activity after myostatin depletion. These data reinforce other evidence that myostatin regulates collagen production in muscle and demonstrate that many of the previously reported effects of constitutive myostatin deficiency do not occur when myostatin is knocked out in mature muscles.
Insights
Reducing myostatin in adult mice increased muscle mass significantly. This postdevelopmental myostatin knockout impacted collagen gene expression but not slow-twitch muscle or energy metabolism genes.
Area of Science:
- Muscle physiology
- Molecular biology
- Gene expression analysis
Background:
- Myostatin is a key regulator of muscle mass.
- Developing anti-myostatin agents is a therapeutic goal for muscle atrophy.
- Understanding myostatin's role post-development is crucial.
Purpose of the Study:
- To investigate the effects of reducing myostatin activity after normal muscle development.
- To analyze gene expression changes in muscle following postdevelopmental myostatin knockout.
Main Methods:
- Utilized oligonucleotide microarrays to assess gene expression.
- Generated mice with postdevelopmental myostatin knockout via Cre-lox system.
- Measured muscle mass and collagen content (hydroxyproline).
Main Results:
- Myostatin was undetectable in muscle within 2 weeks of knockout.
- Muscle mass increased by 26% three months post-knockout.
- Downregulation of collagen genes and reduced collagen content observed.
- Unlike constitutive knockout, no downregulation of slow-twitch muscle or energy metabolism genes occurred.
- Hundreds of genes showed altered expression, many not previously linked to myostatin.
Conclusions:
- Postdevelopmental myostatin depletion increases muscle mass.
- Myostatin regulates collagen production in mature muscle.
- Many effects of constitutive myostatin deficiency are absent when myostatin is depleted in adult muscle.

