Sodium Channel Isoform Diversity Underlies Chamber-Specific Cardiac Excitability.

Clark, Colin J; Anderson, Christian E; Dou, Alex; Dierdorff, Jason M; Galpin, Jason D; Gissot, Lionel; Thompson, Samantha G; Choi, Hannah et al. · Circ Res · 2026

basic_science · Level V

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Abstract

Na<sub>V</sub> (voltage-gated sodium) channels drive cardiac excitability. Although Na<sub>V</sub>1.5 is the primary cardiac isoform, the composition and functional contributions of non-Na<sub>V</sub>1.5 isoforms in the heart remain unclear. Here, we developed a chemical-genetic mouse model (Na<sub>V</sub>1.5<sup>GX/GX</sup>) in which Na<sub>V</sub>1.5 can be selectively and reversibly inhibited by acyl- and aryl-sulfonamide compounds (GX [acyl- and aryl-sulfonamide compounds typically denoted by the name GX-### and associated items] drugs). Cardiac activity was assessed by electrocardiograms in vivo, and optical mapping was used for imaging of ex vivo hearts. Whole-cell voltage-clamp in tandem with validated toxins and isoform-selective inhibitors were used to examine sodium current composition. Na<sub>V</sub>1.5<sup>GX/GX</sup> mice exhibited normal cardiac function at baseline, but acute GX drug administration caused profound conduction defects and arrhythmias. Whole-heart optical mapping revealed dose-dependent chamber-specific sensitivity to Na<sub>V</sub>1.5 inhibition, with the right ventricle being the most sensitive, followed by the left ventricle, left atrium, and right atrium. Patch-clamp recordings of isolated cardiomyocytes with application of Na<sub>V</sub> isoform-selective inhibitors showed that Na<sub>V</sub>1.5 contributed 93% of sodium current in the left ventricle, 79% in the right ventricle, and 78% in the atria. Non-Na<sub>V</sub>1.5 isoforms were differentially enriched across chambers: Na<sub>V</sub>1.8 in the left ventricle, Na<sub>V</sub>1.1/1.3 in the right ventricle, and Na<sub>V</sub>1.2/1.6/1.7 in the atria. These results reveal a surprising chamber-specific isoform landscape of cardiac sodium currents, which may underlie the right ventricular predominant phenotype of Brugada syndrome. These data highlight non-Na<sub>V</sub>1.5 isoforms as potential mediators of chamber-specific cardiac pathologies and as pharmacological targets.

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