Exchange protein directly activated by cAMP mediates slow delayed-rectifier current remodeling by sustained

Mona Aflaki1, Xiao-Yan Qi, Ling Xiao

  • 1From the Department of Medicine, Research Center, Montreal Heart Institute, Université de Montréal, Montreal, Quebec, Canada (M.A., X.-Y.Q., L.X., B.O., A.T., X.L., A.M., Y.S., J.-C.T., S.N.); and Department of Pharmacology and Therapeutics, McGill University, Montreal, Quebec, Canada (M.A., S.N.).

Circulation Research
|February 11, 2014
PubMed
Abstract

Insights

Chronic beta-adrenergic stimulation in heart failure reduces slow delayed-rectifier K(+) current (IKs) by downregulating KCNE1. This occurs via Epac-mediated Ca(2+)/calcineurin/NFAT signaling, offering new insights into cardiac remodeling.

Area of Science:

  • Cardiology
  • Molecular Biology
  • Electrophysiology

Background:

  • Beta-adrenoceptor activation is linked to sudden cardiac death risk in heart failure.
  • Sustained beta-adrenergic stimulation in heart failure reduces the slow delayed-rectifier K(+) current (IKs), potentially causing arrhythmias.

Purpose of the Study:

  • To investigate the molecular mechanisms behind IKs downregulation due to chronic beta-adrenergic activation.
  • To determine the specific role of exchange protein directly activated by cAMP (Epac) in this process.

Main Methods:

  • Utilized isolated guinea pig cardiomyocytes and in vivo guinea pig models.
  • Employed whole-cell patch clamp, mRNA/protein expression analysis, and adenoviral-mediated knockdown.
  • Investigated the involvement of Epac, Ca(2+)/calcineurin/NFAT pathways, and protein kinase A.

Main Results:

  • Chronic isoproterenol exposure significantly decreased IKs density and KCNE1 expression.
  • Epac activation mimicked isoproterenol's effect, while Epac1 knockdown prevented IKs/KCNE1 downregulation.
  • The Ca(2+)/calcineurin/NFAT pathway was implicated, with isoproterenol inducing NFAT translocation.

Conclusions:

  • Prolonged beta1-adrenoceptor stimulation suppresses IKs by reducing KCNE1 via Epac-mediated Ca(2+)/calcineurin/NFAT signaling.
  • These findings elucidate molecular mechanisms of K(+) channel remodeling in sustained adrenergic states.
  • The study highlights Epac as a key mediator in beta-adrenergic-induced cardiac ion channel dysfunction.

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