Key result
Numerical simulations demonstrated that surface polarization from a monophasic transmural electrical shock is sufficient to induce delayed termination of a 3D reentrant scroll wave.
Why the study?
Does surface polarization due to an electrical shock terminate a reentrant scroll wave in a 3D numerical model?
Does surface polarization due to an electrical shock terminate a reentrant scroll wave in a 3D numerical model?
Numerical simulations demonstrate that surface polarization from an electrical shock can alter the scroll wave filament shape, providing a mechanistic explanation for delayed success in defibrillation.
May explain delayed defibrillation in models; hypothesis-generating and leaves open clinical translation.
INTRODUCTION: Defibrillation shocks slightly stronger than cardioversion threshold may defibrillate not immediately but after a transient period of postshock activity (delayed success). The effect of a defibrillation shock is that it polarizes the tissue, primarily at the surfaces; therefore, surface polarization may play an important role at near-threshold shock intensities. METHODS AND RESULTS: We numerically investigate the effect of a monophasic transmural electrical shock on a three-dimensional (3D) reentrant wave (scroll wave). For simplicity, we assume uniform polarization of the epicardial and endocardial surfaces. We demonstrate that the effect of surface polarization alone is sufficient to induce delayed termination of self-sustained activity (3-4 beats after the shock). In agreement with experimental observations, both successful and failed shocks cause prolongation of the action potentials on the depolarized side and shortening on the hyperpolarized side, while at the same time inducing a shift from a reentrant to a focal activation pattern. Our simulations suggest that the outcome of the shock is determined by its effect on the shape of the scroll wave's center of rotation (filament). We propose a simple rule to predict the postshock filament shape that allows us to make accurate predictions of success and failure of a termination attempt. CONCLUSION: Surface polarization due to an electrical shock can terminate a reentrant scroll wave. This mechanism may explain the phenomenon of delayed success in defibrillation.
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Zemlin et al. (2003) studied Defibrillation / Reentrant wave. Monophasic transmural electrical shock was evaluated on Termination of self-sustained activity (delayed termination). Numerical simulations demonstrated that surface polarization from a monophasic transmural electrical shock is sufficient to induce delayed termination of a 3D reentrant scroll wave.
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