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Updated: May 3, 2026

Electromechanical Assessment of Optogenetically Modulated Cardiomyocyte Activity
Published on: March 5, 2020
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.).
Rationale:
β-Adrenoceptor activation contributes to sudden death risk in heart failure. Chronic β-adrenergic stimulation, as occurs in patients with heart failure, causes potentially arrhythmogenic reductions in slow delayed-rectifier K(+) current (IKs).
Objective:
To assess the molecular mechanisms of IKs downregulation caused by chronic β-adrenergic activation, particularly the role of exchange protein directly activated by cAMP (Epac).
Methods And Results:
Isolated guinea pig left ventricular cardiomyocytes were incubated in primary culture and exposed to isoproterenol (1 μmol/L) or vehicle for 30 hours. Sustained isoproterenol exposure decreased IKs density (whole cell patch clamp) by 58% (P<0.0001), with corresponding decreases in potassium voltage-gated channel subfamily E member 1 (KCNE1) mRNA and membrane protein expression (by 45% and 51%, respectively). Potassium voltage-gated channel, KQT-like subfamily, member 1 (KCNQ1) mRNA expression was unchanged. The β1-adrenoceptor antagonist 1-[2-((3-Carbamoyl-4-hydroxy)phenoxy)ethylamino]-3-[4-(1-methyl-4-trifluoromethyl-2-imidazolyl)phenoxy]-2-propanol dihydrochloride (CGP-20712A) prevented isoproterenol-induced IKs downregulation, whereas the β2-antagonist ICI-118551 had no effect. The selective Epac activator 8-pCPT-2'-O-Me-cAMP decreased IKs density to an extent similar to isoproterenol exposure, and adenoviral-mediated knockdown of Epac1 prevented isoproterenol-induced IKs/KCNE1 downregulation. In contrast, protein kinase A inhibition with a cell-permeable highly selective peptide blocker did not affect IKs downregulation. 1,2-Bis(o-aminophenoxy)ethane-N,N,N',N'-tetraacetate-AM acetoxymethyl ester (BAPTA-AM), cyclosporine, and inhibitor of nuclear factor of activated T cell (NFAT)-calcineurin association-6 (INCA6) prevented IKs reduction by isoproterenol and INCA6 suppressed isoproterenol-induced KCNE1 downregulation, consistent with signal-transduction via the Ca(2+)/calcineurin/NFAT pathway. Isoproterenol induced nuclear NFATc3/c4 translocation (immunofluorescence), which was suppressed by Epac1 knockdown. Chronic in vivo administration of isoproterenol to guinea pigs reduced IKs density and KCNE1 mRNA and protein expression while inducing cardiac dysfunction and action potential prolongation. Selective in vivo activation of Epac via sp-8-pCPT-2'-O-Me-cAMP infusion decreased IKs density and KCNE1 mRNA/protein expression.
Conclusions:
Prolonged β1-adrenoceptor stimulation suppresses IKs by downregulating KCNE1 mRNA and protein via Epac-mediated Ca(2+)/calcineurin/NFAT signaling. These results provide new insights into the molecular basis of K(+) channel remodeling under sustained adrenergic stimulation.
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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