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Updated: Mar 23, 2026

Isolation, Culture, and Functional Characterization of Adult Mouse Cardiomyoctyes
Published on: September 24, 2013
Electrophysiology and metabolism of caveolin-3-overexpressing mice
Jan M Schilling1,2, Yousuke T Horikawa3,4, Alice E Zemljic-Harpf1,2
1Veterans Affairs San Diego Healthcare System, San Diego, CA, USA.
Abstract:
Caveolin-3 (Cav-3) plays a critical role in organizing signaling molecules and ion channels involved in cardiac conduction and metabolism. Mutations in Cav-3 are implicated in cardiac conduction abnormalities and myopathies. Additionally, cardiac-specific overexpression of Cav-3 (Cav-3 OE) is protective against ischemic and hypertensive injury, suggesting a potential role for Cav-3 in basal cardiac electrophysiology and metabolism involved in stress adaptation. We hypothesized that overexpression of Cav-3 may alter baseline cardiac conduction and metabolism. We examined: (1) ECG telemetry recordings at baseline and during pharmacological interventions, (2) ion channels involved in cardiac conduction with immunoblotting and computational modeling, and (3) baseline metabolism in Cav-3 OE and transgene-negative littermate control mice. Cav-3 OE mice had decreased heart rates, prolonged PR intervals, and shortened QTc intervals with no difference in activity compared to control mice. Dobutamine or propranolol did not cause significant changes between experimental groups in maximal (dobutamine) or minimal (propranolol) heart rate. Cav-3 OE mice had an overall lower chronotropic response to atropine. The expression of Kv1.4 and Kv4.3 channels, Nav1.5 channels, and connexin 43 were increased in Cav-3 OE mice. A computational model integrating the immunoblotting results indicated shortened action potential duration in Cav-3 OE mice linking the change in channel expression to the observed electrophysiology phenotype. Metabolic profiling showed no gross differences in VO2, VCO2, respiratory exchange ratio, heat generation, and feeding or drinking. In conclusion, Cav-3 OE mice have changes in ECG intervals, heart rates, and cardiac ion channel expression. These findings give novel mechanistic insights into previously reported Cav-3 dependent cardioprotection.
Insights
Overexpressing caveolin-3 (Cav-3) in mice alters cardiac electrophysiology and ion channel expression, impacting heart rate and conduction. This provides new insights into Cav-3
Area of Science:
- Cardiovascular Physiology
- Molecular Cardiology
- Biophysics
Background:
- Caveolin-3 (Cav-3) is crucial for cardiac signaling and ion channel organization.
- Cav-3 mutations are linked to cardiac conduction disorders and myopathies.
- Cardiac-specific Cav-3 overexpression (Cav-3 OE) shows protection against cardiac injury.
Purpose of the Study:
- To investigate the effects of Cav-3 OE on baseline cardiac electrophysiology and metabolism.
- To determine if Cav-3 OE alters cardiac conduction and metabolic pathways.
Main Methods:
- ECG telemetry recordings in Cav-3 OE and control mice.
- Immunoblotting and computational modeling to analyze cardiac ion channel expression.
- Metabolic profiling, including VO2, VCO2, and respiratory exchange ratio.
Main Results:
- Cav-3 OE mice exhibited decreased heart rates, prolonged PR intervals, and shortened QTc intervals.
- Expression of Kv1.4, Kv4.3, Nav1.5, and connexin 43 ion channels were increased in Cav-3 OE mice.
- Computational modeling suggested shortened action potential duration in Cav-3 OE mice; no significant metabolic differences were observed.
Conclusions:
- Cav-3 OE alters cardiac electrophysiology, including heart rate and ECG intervals.
- Changes in cardiac ion channel expression are linked to the observed electrophysiological phenotype.
- These findings offer mechanistic insights into Cav-3-mediated cardioprotection.

