Tetrodotoxin‐Sensitive Neuronal‐Type Na + Channels: A Novel and Druggable Target for Prevention of Atrial Fibrillation

Author:

Munger Mark A.1,Olğar Yusuf23,Koleske Megan L.23,Struckman Heather L.4,Mandrioli Jessica5,Lou Qing26,Bonila Ingrid26,Kim Kibum7,Ramos Mondragon Roberto8,Priori Silvia G.910,Volpe Pompeo11,Valdivia Héctor H.8,Biskupiak Joseph7,Carnes Cynthia A.23,Veeraraghavan Rengasayee42,Györke Sándor26,Radwański Przemysław B.236

Affiliation:

1. Departments of Pharmacotherapy and Internal Medicine University of Utah Health Sciences Center Salt Lake City UT

2. Dorothy M. Davis Heart and Lung Research Institute College of Medicine The Ohio State University Wexner Medical Center Columbus OH

3. Division of Pharmacy Practice and Sciences College of Pharmacy The Ohio State University Columbus OH

4. Department of Biomedical Engineering College of Engineering The Ohio State University Columbus OH

5. Department of Neuroscience St. Agostino Estense Hospital Azienda Ospedaliero Universitaria di Modena Italy

6. Department of Physiology and Cell Biology College of Medicine The Ohio State University Columbus OH

7. Department of Pharmacotherapy University of Utah Health Sciences Center Salt Lake City UT

8. Department of Internal Medicine and of Molecular & Integrative Physiology University of Michigan Ann Arbor MI

9. Molecular Cardiology Istituti Clinici Scientifici Maugeri IRCCS University of Pavia Italy

10. Department of Molecular Medicine University of Pavia Italy

11. Department of Biomedical Sciences University of Padova Italy

Abstract

Background Atrial fibrillation (AF) is a comorbidity associated with heart failure and catecholaminergic polymorphic ventricular tachycardia. Despite the Ca 2+ ‐dependent nature of both of these pathologies, AF often responds to Na + channel blockers. We investigated how targeting interdependent Na + /Ca 2+ dysregulation might prevent focal activity and control AF. Methods and Results We studied AF in 2 models of Ca 2+ ‐dependent disorders, a murine model of catecholaminergic polymorphic ventricular tachycardia and a canine model of chronic tachypacing‐induced heart failure. Imaging studies revealed close association of neuronal‐type Na + channels (nNa v ) with ryanodine receptors and Na + /Ca 2+ exchanger. Catecholamine stimulation induced cellular and in vivo atrial arrhythmias in wild‐type mice only during pharmacological augmentation of nNa v activity. In contrast, catecholamine stimulation alone was sufficient to elicit atrial arrhythmias in catecholaminergic polymorphic ventricular tachycardia mice and failing canine atria. Importantly, these were abolished by acute nNa v inhibition (tetrodotoxin or riluzole) implicating Na + /Ca 2+ dysregulation in AF. These findings were then tested in 2 nonrandomized retrospective cohorts: an amyotrophic lateral sclerosis clinic and an academic medical center. Riluzole‐treated patients adjusted for baseline characteristics evidenced significantly lower incidence of arrhythmias including new‐onset AF, supporting the preclinical results. Conclusions These data suggest that nNa V s mediate Na + ‐Ca 2+ crosstalk within nanodomains containing Ca 2+ release machinery and, thereby, contribute to AF triggers. Disruption of this mechanism by nNa v inhibition can effectively prevent AF arising from diverse causes.

Publisher

Ovid Technologies (Wolters Kluwer Health)

Subject

Cardiology and Cardiovascular Medicine

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