• DocumentCode
    1522457
  • Title

    Anode/cathode make and break phenomena in a model of defibrillation

  • Author

    Skouibine, Kirill B. ; Trayanova, Natalia A. ; Moore, Peter K.

  • Author_Institution
    Dept. of Math., Tulane Univ., New Orleans, LA, USA
  • Volume
    46
  • Issue
    7
  • fYear
    1999
  • fDate
    7/1/1999 12:00:00 AM
  • Firstpage
    769
  • Lastpage
    777
  • 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
    anodes; biomedical electrodes; cathodes; defibrillators; electric shocks; physiological models; active membrane kinetics modifications; anode/cathode make/break phenomena; cardiac electrophysiology; defibrillation model; electroporation; extracellular defibrillation shock; homogeneous bidomain; myocardium sheet; numerical solutions; reentry; refractory tissue; transmembrane potential; unequal anisotropy ratios; virtual electrodes; Anisotropic magnetoresistance; Anodes; Biomembranes; Cathodes; Defibrillation; Electric shock; Electrodes; Extracellular; Myocardium; Spirals; Action Potentials; Anisotropy; Electric Countershock; Electroporation; Membrane Potentials; Models, Cardiovascular; Myocardium;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/10.771186
  • Filename
    771186