Title of article :
Success and failure of biphasic shocks: results of bidomain simulations
Author/Authors :
Anderson، نويسنده , , Cory and Trayanova، نويسنده , , Natalia A، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2001
Abstract :
The mechanisms behind the superiority of optimal biphasic defibrillation shocks over monophasic are not fully understood. This simulation study examines how the shock polarity and second-phase magnitude of biphasic shocks influence the virtual electrode polarization (VEP) pattern, and thus the outcome of the shock in a bidomain model representation of ventricular myocardium. A single spiral wave is initiated in a two-dimensional sheet of myocardium that measures 2×2 cm2. The model incorporates non-uniform fiber curvature, membrane kinetics suitable for high strength shocks, and electroporation. Line electrodes deliver a spatially uniform extracellular field. The shocks are biphasic, each phase lasting 10 ms. Two different polarities of biphasic shocks are examined as the first-phase configuration is held constant and the second-phase magnitude is varied between 1 and 10 V/cm. The results show that for each polarity, varying the second-phase magnitude reverses the VEP induced by the first phase in an asymmetric fashion. Further, the size of the post-shock excitable gap is dependent upon the second-phase magnitude and is a factor in determining the success or failure of the shock. The maximum size of a post-shock excitable gap that results in defibrillation success depends on the polarity of the shock, indicating that the refractoriness of the tissue surrounding the gap also contributes to the outcome of the shock.
Keywords :
defibrillation , Biphasic shock , Spiral Wave , Post-shock excitable gap , SIMULATION , Virtual electrode polarization
Journal title :
Mathematical Biosciences
Journal title :
Mathematical Biosciences