Population of computational rabbit-specific ventricular action potential models for investigating sources of variability in cellular repolarisation.

Variability is observed at all levels of cardiac electrophysiology. Yet, the underlying causes and importance of this variability are generally unknown, and difficult to investigate with current experimental techniques. The aim of the present study was to generate populations of computational ventri...

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Main Authors: Philip Gemmell, Kevin Burrage, Blanca Rodriguez, T Alexander Quinn
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2014-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC3938586?pdf=render
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author Philip Gemmell
Kevin Burrage
Blanca Rodriguez
T Alexander Quinn
author_facet Philip Gemmell
Kevin Burrage
Blanca Rodriguez
T Alexander Quinn
author_sort Philip Gemmell
collection DOAJ
description Variability is observed at all levels of cardiac electrophysiology. Yet, the underlying causes and importance of this variability are generally unknown, and difficult to investigate with current experimental techniques. The aim of the present study was to generate populations of computational ventricular action potential models that reproduce experimentally observed intercellular variability of repolarisation (represented by action potential duration) and to identify its potential causes. A systematic exploration of the effects of simultaneously varying the magnitude of six transmembrane current conductances (transient outward, rapid and slow delayed rectifier K(+), inward rectifying K(+), L-type Ca(2+), and Na(+)/K(+) pump currents) in two rabbit-specific ventricular action potential models (Shannon et al. and Mahajan et al.) at multiple cycle lengths (400, 600, 1,000 ms) was performed. This was accomplished with distributed computing software specialised for multi-dimensional parameter sweeps and grid execution. An initial population of 15,625 parameter sets was generated for both models at each cycle length. Action potential durations of these populations were compared to experimentally derived ranges for rabbit ventricular myocytes. 1,352 parameter sets for the Shannon model and 779 parameter sets for the Mahajan model yielded action potential duration within the experimental range, demonstrating that a wide array of ionic conductance values can be used to simulate a physiological rabbit ventricular action potential. Furthermore, by using clutter-based dimension reordering, a technique that allows visualisation of multi-dimensional spaces in two dimensions, the interaction of current conductances and their relative importance to the ventricular action potential at different cycle lengths were revealed. Overall, this work represents an important step towards a better understanding of the role that variability in current conductances may play in experimentally observed intercellular variability of rabbit ventricular action potential repolarisation.
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spelling doaj.art-8e86a4cf395744318dd0155c7bb26d862022-12-22T01:13:49ZengPublic Library of Science (PLoS)PLoS ONE1932-62032014-01-0192e9011210.1371/journal.pone.0090112Population of computational rabbit-specific ventricular action potential models for investigating sources of variability in cellular repolarisation.Philip GemmellKevin BurrageBlanca RodriguezT Alexander QuinnVariability is observed at all levels of cardiac electrophysiology. Yet, the underlying causes and importance of this variability are generally unknown, and difficult to investigate with current experimental techniques. The aim of the present study was to generate populations of computational ventricular action potential models that reproduce experimentally observed intercellular variability of repolarisation (represented by action potential duration) and to identify its potential causes. A systematic exploration of the effects of simultaneously varying the magnitude of six transmembrane current conductances (transient outward, rapid and slow delayed rectifier K(+), inward rectifying K(+), L-type Ca(2+), and Na(+)/K(+) pump currents) in two rabbit-specific ventricular action potential models (Shannon et al. and Mahajan et al.) at multiple cycle lengths (400, 600, 1,000 ms) was performed. This was accomplished with distributed computing software specialised for multi-dimensional parameter sweeps and grid execution. An initial population of 15,625 parameter sets was generated for both models at each cycle length. Action potential durations of these populations were compared to experimentally derived ranges for rabbit ventricular myocytes. 1,352 parameter sets for the Shannon model and 779 parameter sets for the Mahajan model yielded action potential duration within the experimental range, demonstrating that a wide array of ionic conductance values can be used to simulate a physiological rabbit ventricular action potential. Furthermore, by using clutter-based dimension reordering, a technique that allows visualisation of multi-dimensional spaces in two dimensions, the interaction of current conductances and their relative importance to the ventricular action potential at different cycle lengths were revealed. Overall, this work represents an important step towards a better understanding of the role that variability in current conductances may play in experimentally observed intercellular variability of rabbit ventricular action potential repolarisation.http://europepmc.org/articles/PMC3938586?pdf=render
spellingShingle Philip Gemmell
Kevin Burrage
Blanca Rodriguez
T Alexander Quinn
Population of computational rabbit-specific ventricular action potential models for investigating sources of variability in cellular repolarisation.
PLoS ONE
title Population of computational rabbit-specific ventricular action potential models for investigating sources of variability in cellular repolarisation.
title_full Population of computational rabbit-specific ventricular action potential models for investigating sources of variability in cellular repolarisation.
title_fullStr Population of computational rabbit-specific ventricular action potential models for investigating sources of variability in cellular repolarisation.
title_full_unstemmed Population of computational rabbit-specific ventricular action potential models for investigating sources of variability in cellular repolarisation.
title_short Population of computational rabbit-specific ventricular action potential models for investigating sources of variability in cellular repolarisation.
title_sort population of computational rabbit specific ventricular action potential models for investigating sources of variability in cellular repolarisation
url http://europepmc.org/articles/PMC3938586?pdf=render
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