Transmural electrophysiological heterogeneities in action potential duration increase the upper limit of vulnerability.

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 A...

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Κύριοι συγγραφείς: Maharaj, T, Rodriguez, B, Blake, R, Trayanova, N, Gavaghan, D
Μορφή: Journal article
Γλώσσα:English
Έκδοση: 2006
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author Maharaj, T
Rodriguez, B
Blake, R
Trayanova, N
Gavaghan, D
author_facet Maharaj, T
Rodriguez, B
Blake, R
Trayanova, N
Gavaghan, D
author_sort Maharaj, T
collection OXFORD
description 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.
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spelling oxford-uuid:d901541e-d073-4792-a9a3-7bce268f43472022-03-27T08:52:48ZTransmural electrophysiological heterogeneities in action potential duration increase the upper limit of vulnerability.Journal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:d901541e-d073-4792-a9a3-7bce268f4347EnglishSymplectic Elements at Oxford2006Maharaj, TRodriguez, BBlake, RTrayanova, NGavaghan, DTransmural 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.
spellingShingle Maharaj, T
Rodriguez, B
Blake, R
Trayanova, N
Gavaghan, D
Transmural electrophysiological heterogeneities in action potential duration increase the upper limit of vulnerability.
title Transmural electrophysiological heterogeneities in action potential duration increase the upper limit of vulnerability.
title_full Transmural electrophysiological heterogeneities in action potential duration increase the upper limit of vulnerability.
title_fullStr Transmural electrophysiological heterogeneities in action potential duration increase the upper limit of vulnerability.
title_full_unstemmed Transmural electrophysiological heterogeneities in action potential duration increase the upper limit of vulnerability.
title_short Transmural electrophysiological heterogeneities in action potential duration increase the upper limit of vulnerability.
title_sort transmural electrophysiological heterogeneities in action potential duration increase the upper limit of vulnerability
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AT blaker transmuralelectrophysiologicalheterogeneitiesinactionpotentialdurationincreasetheupperlimitofvulnerability
AT trayanovan transmuralelectrophysiologicalheterogeneitiesinactionpotentialdurationincreasetheupperlimitofvulnerability
AT gavaghand transmuralelectrophysiologicalheterogeneitiesinactionpotentialdurationincreasetheupperlimitofvulnerability