Anode/cathode make and break phenomena in a model of defibrillation
- 1 July 1999
- journal article
- Published by Institute of Electrical and Electronics Engineers (IEEE) in IEEE Transactions on Biomedical Engineering
- Vol. 46 (7) , 769-777
- https://doi.org/10.1109/10.771186
Abstract
The goal of this simulation study is to examine, in a sheet of myocardium, the contribution of anode and cathode break phenomena in terminating a spiral wave reentry by the defibrillation shock. The tissue is represented as a homogeneous bidomain with unequal anisotropy ratios. Two case studies are presented in this article: tissue that can electroporate at high levels of transmembrane potential, and model tissue that does not support electroporation. In both cases, the spiral wave is initiated via cross-field stimulation of the bidomain sheet. The extracellular defibrillation shock is delivered via two small electrodes located at opposite tissue boundaries. Modifications in the active membrane kinetics enable the delivery of high-strength defibrillation shocks. Numerical solutions are obtained using an efficient semi-implicit predictor-corrector scheme that allows one to execute the simulations within reasonable time. The simulation results demonstrate that anode and/or cathode break excitations contribute significantly to the activity during and after the shock. For a successful defibrillation shock, the virtual electrodes and the break excitations restrict the spiral wave and render the tissue refractory so it cannot further maintain the reentry. The results also indicate that electroporation alters the anode/cathode break phenomena, the major impact being on the timing of the cathode-break excitations. Thus, electroporation results in different patterns of transmembrane potential distribution after the shock. This difference in patterns may or may not result in change of the outcome of the shock.Keywords
This publication has 29 references indexed in Scilit:
- Virtual electrode effects in a bidomain model with electroporating membranePublished by Institute of Electrical and Electronics Engineers (IEEE) ,2002
- The role of cardiac tissue structure in defibrillationChaos: An Interdisciplinary Journal of Nonlinear Science, 1998
- A generalized activating function for predicting virtual electrodes in cardiac tissueBiophysical Journal, 1997
- Strength‐Interval Curves for Cardiac Tissue Predicted Using the Bidomain ModelJournal of Cardiovascular Electrophysiology, 1996
- A mathematical model of make and break electrical stimulation of cardiac tissue by a unipolar anode or cathodeIEEE Transactions on Biomedical Engineering, 1995
- Refractory period prolongation by biphasic defibrillator waveforms is associated with enhanced sodium current in a computer model of the ventricular action potentialIEEE Transactions on Biomedical Engineering, 1994
- Three-dimensional potential gradient fields generated by intracardiac catheter and cutaneous patch electrodes.Circulation, 1992
- Cardiac potential and potential gradient fields generated by single, combined, and sequential shocks during ventricular defibrillation.Circulation, 1992
- Cell-attached patch clamp study of the electropermeabilization of amphibian cardiac cellsBiophysical Journal, 1991
- Changes in membrane structure induced by electroporation as revealed by rapid-freezing electron microscopyBiophysical Journal, 1990