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Updated: May 26, 2026

Measuring Fast Calcium Fluxes in Cardiomyocytes
Published on: November 29, 2011
A computational investigation of cardiac caveolae as a source of persistent sodium current
Ian M Besse1, Colleen C Mitchell, Thomas J Hund
1Department of Mathematics and Statistics, The University of Missouri-Kansas City Kansas City, MO, USA.
Abstract:
Recent studies of cholesterol-rich membrane microdomains, called caveolae, reveal that caveolae are reservoirs of "recruitable" sodium ion channels. Caveolar channels constitute a substantial and previously unrecognized source of sodium current in cardiac cells. In this paper we model for the first time caveolar sodium currents and their contributions to cardiac action potential morphology. We show that the β-agonist-induced opening of caveolae may have substantial impacts on peak overshoot, maximum upstroke velocity, and ultimately conduction velocity. Additionally, we show that prolonged action potentials and the formation of potentially arrhythmogenic afterdepolarizations, can arise if caveolae open intermittently throughout the action potential. Our simulations suggest that caveolar sodium current may constitute a route, which is independent of channelopathies, to delayed repolarization and the arrhythmias associated with such delays.
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