Lipopolysaccharide-induced sepsis impairs M2R-GIRK signaling in the mouse sinoatrial node

Author:

Shrestha Niroj1ORCID,Zorn-Pauly Klaus1ORCID,Mesirca Pietro23ORCID,Koyani Chintan N.4ORCID,Wölkart Gerald5ORCID,Di Biase Valentina6,Torre Eleonora23ORCID,Lang Petra1ORCID,Gorischek Astrid1,Schreibmayer Wolfgang1,Arnold Robert1ORCID,Maechler Heinrich7ORCID,Mayer Bernd5ORCID,von Lewinski Dirk4ORCID,Torrente Angelo G.23ORCID,Mangoni Matteo E.23ORCID,Pelzmann Brigitte1ORCID,Scheruebel Susanne1ORCID

Affiliation:

1. Gottfried Schatz Research Center for Cell Signaling, Metabolism and Aging, Medical Physics and Biophysics, Medical University of Graz, 8010 Graz, Austria

2. Institut de Génomique Fonctionnelle, Université de Montpellier, CNRS, Inserm, 34094 Montpellier, France

3. Laboratory of Excellence in Ion Channels Science and Therapeutics, 34094 Montpellier, France

4. Division of Cardiology, Medical University of Graz, 8036 Graz, Austria

5. Department of Pharmacology and Toxicology, University of Graz, 8010 Graz, Austria

6. Institute of Pharmacology, Medical University of Innsbruck, 6020 Innsbruck, Austria

7. Division of Cardiac Surgery, Medical University of Graz, 8036 Graz, Austria

Abstract

Sepsis has emerged as a global health burden associated with multiple organ dysfunction and 20% mortality rate in patients. Numerous clinical studies over the past two decades have correlated the disease severity and mortality in septic patients with impaired heart rate variability (HRV), as a consequence of impaired chronotropic response of sinoatrial node (SAN) pacemaker activity to vagal/parasympathetic stimulation. However, the molecular mechanism(s) downstream to parasympathetic inputs have not been investigated yet in sepsis, particularly in the SAN. Based on electrocardiography, fluorescence Ca 2+ imaging, electrophysiology, and protein assays from organ to subcellular level, we report that impaired muscarinic receptor subtype 2-G protein-activated inwardly-rectifying potassium channel (M2R-GIRK) signaling in a lipopolysaccharide-induced proxy septic mouse model plays a critical role in SAN pacemaking and HRV. The parasympathetic responses to a muscarinic agonist, namely I KACh activation in SAN cells, reduction in Ca 2+ mobilization of SAN tissues, lowering of heart rate and increase in HRV, were profoundly attenuated upon lipopolysaccharide-induced sepsis. These functional alterations manifested as a direct consequence of reduced expression of key ion-channel components (GIRK1, GIRK4, and M2R) in the mouse SAN tissues and cells, which was further evident in the human right atrial appendages of septic patients and likely not mediated by the common proinflammatory cytokines elevated in sepsis.

Funder

Austrian Science Fund

Fondation Leducq

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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