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Published on: November 29, 2011
Caveolin-1 modulates cardiac gap junction homeostasis and arrhythmogenecity by regulating cSrc tyrosine kinase
Kai-Chien Yang1, Cody A Rutledge1, Mao Mao1
1From the Lifespan Cardiovascular Research Center, Department of Medicine, Warren Alpert School of Medicine, Brown University, Providence Veterans Administration Medical Center, RI (K.-C.Y., C.A.R., A.X., H.L., S.C.D.); Department of Medicine (K.-C.Y., C.A.R.), Department of Pharmacology (M.M., M.G.B., R.D.M.), and Department of Anesthesiology (F.R.B., R.D.M.), University of Illinois at Chicago; and Department of Anesthesiology, VA San Diego Healthcare Systems, University of California (H.H.P.).
Background:
Genome-wide association studies have revealed significant association of caveolin-1 (Cav1) gene variants with increased risk of cardiac arrhythmias. Nevertheless, the mechanism for this linkage is unclear.
Methods And Results:
Using adult Cav1(-/-) mice, we revealed a marked reduction in the left ventricular conduction velocity in the absence of myocardial Cav1, which is accompanied with increased inducibility of ventricular arrhythmias. Further studies demonstrated that loss of Cav1 leads to the activation of cSrc tyrosine kinase, resulting in the downregulation of connexin 43 and subsequent electric abnormalities. Pharmacological inhibition of cSrc mitigates connexin 43 downregulation, slowed conduction, and arrhythmia inducibility in Cav1(-/-) animals. Using a transgenic mouse model with cardiac-specific overexpression of angiotensin-converting enzyme (ACE8/8), we demonstrated that, on enhanced cardiac renin-angiotensin system activity, Cav1 dissociated from cSrc because of increased Cav1 S-nitrosation at Cys(156), leading to cSrc activation, connexin 43 reduction, impaired gap junction function, and subsequent increase in the propensity for ventricular arrhythmias and sudden cardiac death. Renin-angiotensin system-induced Cav1 S-nitrosation was associated with increased Cav1-endothelial nitric oxide synthase binding in response to increased mitochondrial reactive oxidative species generation.
Conclusions:
The present studies reveal the critical role of Cav1 in modulating cSrc activation, gap junction remodeling, and ventricular arrhythmias. These data provide a mechanistic explanation for the observed genetic link between Cav1 and cardiac arrhythmias in humans and suggest that targeted regulation of Cav1 may reduce arrhythmic risk in cardiac diseases associated with renin-angiotensin system activation.
Insights
Caveolin-1 (Cav1) deficiency impairs cardiac electrical conduction and increases arrhythmia risk by activating cSrc kinase. Targeting Cav1 may prevent arrhythmias in conditions with activated renin-angiotensin system.
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Genetics
Background:
- Genome-wide association studies link caveolin-1 (Cav1) gene variants to cardiac arrhythmia risk.
- The underlying molecular mechanisms remain largely unknown.
Purpose of the Study:
- To elucidate the role of Cav1 in cardiac electrical function and arrhythmia susceptibility.
- To investigate the molecular pathways linking Cav1 to cardiac arrhythmias.
Main Methods:
- Utilized Cav1 knockout (Cav1(-/-)) and cardiac-specific angiotensin-converting enzyme (ACE8/8) transgenic mouse models.
- Assessed left ventricular conduction velocity, arrhythmia inducibility, and molecular signaling pathways including cSrc tyrosine kinase and connexin 43.
- Investigated the impact of pharmacological cSrc inhibition and renin-angiotensin system activation.
Main Results:
- Cav1 deficiency significantly reduced cardiac conduction velocity and increased ventricular arrhythmia inducibility.
- Loss of Cav1 led to cSrc activation, connexin 43 downregulation, and impaired gap junction function.
- In a model of enhanced renin-angiotensin system activity, Cav1 S-nitrosation at Cys(156) caused cSrc activation, exacerbating arrhythmias.
Conclusions:
- Cav1 plays a critical role in regulating cSrc activity, gap junction remodeling, and ventricular arrhythmia susceptibility.
- These findings provide a mechanistic link between Cav1 genetic variations and human cardiac arrhythmias.
- Targeting Cav1 presents a potential therapeutic strategy for reducing arrhythmic risk in cardiovascular diseases associated with renin-angiotensin system activation.
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