Title :
Mechanisms underlying cardiac vulnerability to electric shocks within the three-dimensional volume of the rabbit ventricles
Author :
Maharaj, T. ; Rodriguez, B. ; Blake, R. ; Trayanova, N.A. ; Gavaghan, D.J.
Author_Institution :
Univ. of Oxford, Oxford
Abstract :
The goal of this study is to investigate the contribution of transmural heterogeneities in action potential duration (APD) to the mechanisms of cardiac vulnerability to electric shocks, in an attempt to better understand the mechanisms behind defibrillation failure. This study used a three-dimensional, geometrically accurate finite element bidomain model of the rabbit ventricles. Transmural heterogeneities in ionic currents were incorporated based on experimental data to generate the transmural APD profile recorded in adult rabbits during pacing. Results reveal that the upper limit of vulnerability (ULV) is 30.5 V/cm and the vulnerable window (VW) extends from CI=120 ms to CI=190 ms. Examination of shock-end virtual electrode polarisation and postshock electrical activity reveals that increased dispersion in postshock repolarisation within the LV wall play a key role in the existence of the ULV whereas mechanisms underlying the existence of the VW are determined by shock-end refractoriness in the septum.
Keywords :
bioelectric potentials; biomedical equipment; cardiology; defibrillators; electric shocks; finite element analysis; patient treatment; action potential duration; cardiac vulnerability; defibrillation failure; electric shocks; finite element bidomain model; postshock electrical activity; postshock repolarisation; rabbit ventricles; shock-end refractoriness; shock-end virtual electrode polarisation; transmural heterogeneity; Computational modeling; Defibrillation; Electric shock; Electrodes; Indium tin oxide; Myocardium; Optical polarization; Optical recording; Rabbits; Solid modeling;
Conference_Titel :
Computers in Cardiology, 2006
Conference_Location :
Valencia
Print_ISBN :
978-1-4244-2532-7