The G-protein–gated K+ channel, IKACh, is required for regulation of pacemaker activity and recovery of resting heart rate after sympathetic stimulation

Author:

Mesirca Pietro123,Marger Laurine123,Toyoda Futoshi4,Rizzetto Riccardo123,Audoubert Matthieu123,Dubel Stefan123,Torrente Angelo G.123,DiFrancesco Mattia L.123,Muller Jana Christina123,Leoni Anne-Laure5,Couette Brigitte123,Nargeot Joël123,Clapham David E.667,Wickman Kevin8,Mangoni Matteo E.123

Affiliation:

1. Centre National de la Recherche Scientifique (CNRS) UMR 5203, Institut de Génomique Fonctionnelle, Département de Physiologie, Laboratoire d’Excellence Canaux Ioniques d’Intérêt Thérapeutique, 34094 Montpellier, France

2. Institut National de la Santé et de la Recherche Médicale (INSERM) U661, 34094 Montpellier, France

3. Universités de Montpellier 1 & 2, 34094 Montpellier, France

4. Department of Physiology, Shiga University of Medical Science, Otsu, Shiga 520-2192, Japan

5. INSERM UMR 1087, CNRS UMR 6291, l’institut du thorax, Université de Nantes, 44007 Nantes, France

6. Howard Hughes Medical Institute and Manton Center for Orphan Disease Research, Boston Children’s Hospital, Boston, MA 02115

7. Department of Neurobiology, Harvard Medical School, Boston, MA 02115

8. Department of Pharmacology, University of Minnesota, Minneapolis, MN 55455

Abstract

Parasympathetic regulation of sinoatrial node (SAN) pacemaker activity modulates multiple ion channels to temper heart rate. The functional role of the G-protein–activated K+ current (IKACh) in the control of SAN pacemaking and heart rate is not completely understood. We have investigated the functional consequences of loss of IKACh in cholinergic regulation of pacemaker activity of SAN cells and in heart rate control under physiological situations mimicking the fight or flight response. We used knockout mice with loss of function of the Girk4 (Kir3.4) gene (Girk4−/− mice), which codes for an integral subunit of the cardiac IKACh channel. SAN pacemaker cells from Girk4−/− mice completely lacked IKACh. Loss of IKACh strongly reduced cholinergic regulation of pacemaker activity of SAN cells and isolated intact hearts. Telemetric recordings of electrocardiograms of freely moving mice showed that heart rate measured over a 24-h recording period was moderately increased (10%) in Girk4−/− animals. Although the relative extent of heart rate regulation of Girk4−/− mice was similar to that of wild-type animals, recovery of resting heart rate after stress, physical exercise, or pharmacological β-adrenergic stimulation of SAN pacemaking was significantly delayed in Girk4−/− animals. We conclude that IKACh plays a critical role in the kinetics of heart rate recovery to resting levels after sympathetic stimulation or after direct β-adrenergic stimulation of pacemaker activity. Our study thus uncovers a novel role for IKACh in SAN physiology and heart rate regulation.

Publisher

Rockefeller University Press

Subject

Physiology

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