DocumentCode :
471929
Title :
Transmural electrophysiological heterogeneities in action potential duration increase the upper limit of vulnerability
Author :
Maharaj, T. ; Rodriguez, B. ; Blake, R. ; Trayanova, N.A. ; Gavaghan, D.J.
fYear :
2006
fDate :
Aug. 30 2006-Sept. 3 2006
Firstpage :
4043
Lastpage :
4046
Abstract :
Transmural dispersion in action potential duration (APD) has been shown to contribute to arrhythmia induction in the heart. However, its role in termination of lethal arrhythmias by defibrillation shocks has never been examined. The goal of this study is to investigate how transmural dispersion in APD affects 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 rabbit ventricular model. Transmural heterogeneities in ionic currents were incorporated based on experimental data to generate the transmural APD profile recorded in adult rabbits during pacing. Results show that the incorporation of transmural APD heterogeneities in the model causes an increase in the upper limit of vulnerability from 26.7 V/cm in the homogeneous APD ventricles to 30.5 V/cm in the ventricles with heterogeneous transmural APD profile. Examination of shock-end virtual electrode polarisation and postshock electrical activity reveals that the higher ULV in the heterogeneous model is caused by increased dispersion in postshock repolarisation within the LV wall, which increases the likelihood of the establishment of intramural re-entrant circuits
Keywords :
bioelectric potentials; biomedical electrodes; biomembrane transport; cardiovascular system; diseases; finite element analysis; physiological models; action potential duration; arrhythmia induction; defibrillation failure; defibrillation shocks; finite element bidomain rabbit ventricular model; heart; intramural reentrant circuits; ionic current; lethal arrhythmias; postshock electrical activity; postshock repolarisation; shock-end virtual electrode polarisation; transmural electrophysiological heterogeneities; vulnerability transmural dispersion; Cities and towns; Computational modeling; Defibrillation; Electric shock; Electrodes; Finite element methods; Indium tin oxide; Kinetic theory; Rabbits; USA Councils; bidomain simulations; cardiac vulnerability; defibrillation; electrophysiological heterogeneities;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Engineering in Medicine and Biology Society, 2006. EMBS '06. 28th Annual International Conference of the IEEE
Conference_Location :
New York, NY
ISSN :
1557-170X
Print_ISBN :
1-4244-0032-5
Electronic_ISBN :
1557-170X
Type :
conf
DOI :
10.1109/IEMBS.2006.259345
Filename :
4462687
Link To Document :
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