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Updated: May 27, 2026

Isolation, Culture, and Functional Characterization of Adult Mouse Cardiomyoctyes
Published on: September 24, 2013
Decreased cardiac L-type Ca²⁺ channel activity induces hypertrophy and heart failure in mice
Sanjeewa A Goonasekera1, Karin Hammer, Mannix Auger-Messier
1Department of Pediatrics, University of Cincinnati, Cincinnati Children's Hospital Medical Center, Howard Hughes Medical Institute, Cincinnati, Ohio 45229, USA.
Insights
Reducing L-type Ca²⁺ channel activity paradoxically worsens heart failure. Lowering calcium channel, voltage-dependent, L type, α1C subunit (LTCC) function in mice led to hypertrophy and reduced cardiac function under stress, challenging therapeutic assumptions.
Area of Science:
- Cardiovascular Physiology
- Molecular Cardiology
- Pharmacology
Background:
- L-type Ca²⁺ channel (LTCC) antagonists are used for cardiovascular diseases.
- Their efficacy and safety in heart failure remain unclear due to varied effects in the heart versus vasculature.
Purpose of the Study:
- To investigate the role of LTCCs in cardiac function and disease progression.
- To examine the consequences of reduced LTCC function in cardiomyocytes.
Main Methods:
- Utilized mice heterozygous for Cacna1c (α1C⁻/⁺) and cardiomyocyte-specific gene deletion (α1C-loxP) models.
- Assessed cardiac function and hypertrophy under pressure overload, isoproterenol infusion, and swimming stress.
Main Results:
- Reduced LTCC current in α1C⁻/⁺ mice initially showed modest cardiac dysfunction.
- LTCC reduction exacerbated cardiac hypertrophy, ventricular dysfunction, and dilation under stress.
- Severe LTCC reduction caused spontaneous hypertrophy and early lethality.
Conclusions:
- Decreased LTCC function triggers neuroendocrine stress and compensatory sarcoplasmic reticulum Ca²⁺ release.
- This leads to calcineurin/NFAT signaling, promoting cardiac hypertrophy and disease.
- LTCCs are crucial for maintaining cardiac homeostasis, and their inhibition may be detrimental in heart failure.
Abstract:
Antagonists of L-type Ca²⁺ channels (LTCCs) have been used to treat human cardiovascular diseases for decades. However, these inhibitors can have untoward effects in patients with heart failure, and their overall therapeutic profile remains nebulous given differential effects in the vasculature when compared with those in cardiomyocytes. To investigate this issue, we examined mice heterozygous for the gene encoding the pore-forming subunit of LTCC (calcium channel, voltage-dependent, L type, α1C subunit [Cacna1c mice; referred to herein as α1C⁻/⁺ mice]) and mice in which this gene was loxP targeted to achieve graded heart-specific gene deletion (termed herein α1C-loxP mice). Adult cardiomyocytes from the hearts of α1C⁻/⁺ mice at 10 weeks of age showed a decrease in LTCC current and a modest decrease in cardiac function, which we initially hypothesized would be cardioprotective. However, α1C⁻/⁺ mice subjected to pressure overload stimulation, isoproterenol infusion, and swimming showed greater cardiac hypertrophy, greater reductions in ventricular performance, and greater ventricular dilation than α1C⁺/⁺ controls. The same detrimental effects were observed in α1C-loxP animals with a cardiomyocyte-specific deletion of one allele. More severe reductions in α1C protein levels with combinatorial deleted alleles produced spontaneous cardiac hypertrophy before 3 months of age, with early adulthood lethality. Mechanistically, our data suggest that a reduction in LTCC current leads to neuroendocrine stress, with sensitized and leaky sarcoplasmic reticulum Ca²⁺ release as a compensatory mechanism to preserve contractility. This state results in calcineurin/nuclear factor of activated T cells signaling that promotes hypertrophy and disease.
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