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.).

Abstract

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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