Altered skeletal muscle phenotypes in calcineurin Aalpha and Abeta gene-targeted mice

Stephanie A Parsons1, Benjamin J Wilkins, Orlando F Bueno

  • 1Department of Pediatrics, Children's Hospital Medical Center, University of Cincinnati, Cincinnati, Ohio 45229-3039, USA.

Insights

Calcineurin signaling is crucial for skeletal muscle fiber type switching, but not muscle hypertrophy. This process appears to occur independently of the nuclear factor of activated T cells (NFAT) pathway.

Area of Science:

  • Skeletal muscle physiology
  • Molecular biology
  • Calcium signaling

Background:

  • Calcineurin, a calcium-regulated phosphatase, influences cellular responses via transcription factors like NFAT.
  • Its role in skeletal muscle processes including differentiation, hypertrophy, and fiber type switching is debated.
  • Understanding calcineurin's specific functions in skeletal muscle is essential for elucidating muscle adaptation.

Purpose of the Study:

  • To investigate the specific roles of calcineurin Aalpha and Abeta isoforms in skeletal muscle.
  • To determine calcineurin's involvement in muscle hypertrophy and fiber type determination.
  • To clarify the contribution of NFAT signaling in calcineurin-mediated muscle effects.

Main Methods:

  • Analysis of skeletal muscle phenotypes in calcineurin Aalpha and Abeta gene-targeted mice.
  • Assessment of myofiber number, size, and fiber type composition.
  • Evaluation of NFAT activity using NFAT-luciferase reporter transgenic mice.

Main Results:

  • Calcineurin Aalpha is the predominant catalytic isoform in most skeletal muscles.
  • Neither Aalpha nor Abeta null mice exhibited gross growth alterations or changes in fast-twitch fiber size/number.
  • Both gene-targeted mice showed altered myofiber number in slow-twitch soleus muscle and a significant downregulation of the oxidative/slow fiber type program.
  • NFAT activity was higher in slow-twitch muscles, but only calcineurin Aalpha null mice showed impaired NFAT nuclear occupancy and reporter activity.

Conclusions:

  • Calcineurin signaling critically regulates skeletal muscle fiber type switching.
  • Calcineurin does not appear to regulate skeletal muscle hypertrophy.
  • Skeletal muscle fiber type switching is regulated by calcineurin through an NFAT-independent mechanism.

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