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Updated: Sep 25, 2026

Skeletal Phenotype Analysis of a Conditional Stat3 Deletion Mouse Model
Published on: July 3, 2020
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.
Abstract:
Calcineurin is a calcium-regulated serine-threonine protein phosphatase that controls developmental and inducible biological responses in diverse cell types, in part through activation of the transcription factor nuclear factor of activated T cells (NFAT). In skeletal muscle, calcineurin has been implicated in the regulation of myoblast differentiation, hypertrophy of mature myofibers, and fiber type switching in response to alterations in intracellular calcium concentration. However, considerable disagreement persists about the functional role of calcineurin signaling in each of these processes. Here we evaluated the molecular phenotypes of skeletal muscle from both calcineurin Aalpha and calcineurin Abeta gene-targeted mice. Calcineurin Aalpha was observed to be the predominant catalytic isoform expressed in nearly all skeletal muscles examined. Neither calcineurin Aalpha or Abeta null mice showed any gross growth-related alterations in skeletal muscle, nor was fiber size or number altered in glycolytic/fast muscle types. In contrast, both calcineurin Aalpha and Abeta gene-targeted mice demonstrated an alteration in myofiber number in the soleus, an oxidative/slow-type muscle. More significantly, calcineurin Aalpha and Abeta gene-targeted mice showed a dramatic down-regulation in the oxidative/slow fiber type program in multiple muscles (both slow and fast). Associated with this observation, NFAT-luciferase reporter transgenic mice showed significantly greater activity in slow fiber-containing muscles than in fast. However, only calcineurin Aalpha null mice showed a defect in NFAT nuclear occupancy or NFAT-luciferase transgene activity in vivo. Collectively, our results suggest that calcineurin signaling plays a critical role in regulating skeletal muscle fiber type switching but not hypertrophy. Our results also suggest that fiber type switching occurs through an NFAT-independent mechanism.
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.

