Determinants of early afterdepolarization properties in ventricular myocyte models.

Early afterdepolarizations (EADs) are spontaneous depolarizations during the repolarization phase of an action potential in cardiac myocytes. It is widely known that EADs are promoted by increasing inward currents and/or decreasing outward currents, a condition called reduced repolarization reserve....

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Main Authors: Xiaodong Huang, Zhen Song, Zhilin Qu
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2018-11-01
Series:PLoS Computational Biology
Online Access:https://doi.org/10.1371/journal.pcbi.1006382
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spelling doaj-c10d5885d0a54ae2957470cbc25db85c2021-04-21T15:12:34ZengPublic Library of Science (PLoS)PLoS Computational Biology1553-734X1553-73582018-11-011411e100638210.1371/journal.pcbi.1006382Determinants of early afterdepolarization properties in ventricular myocyte models.Xiaodong HuangZhen SongZhilin QuEarly afterdepolarizations (EADs) are spontaneous depolarizations during the repolarization phase of an action potential in cardiac myocytes. It is widely known that EADs are promoted by increasing inward currents and/or decreasing outward currents, a condition called reduced repolarization reserve. Recent studies based on bifurcation theories show that EADs are caused by a dual Hopf-homoclinic bifurcation, bringing in further mechanistic insights into the genesis and dynamics of EADs. In this study, we investigated the EAD properties, such as the EAD amplitude, the inter-EAD interval, and the latency of the first EAD, and their major determinants. We first made predictions based on the bifurcation theory and then validated them in physiologically more detailed action potential models. These properties were investigated by varying one parameter at a time or using parameter sets randomly drawn from assigned intervals. The theoretical and simulation results were compared with experimental data from the literature. Our major findings are that the EAD amplitude and takeoff potential exhibit a negative linear correlation; the inter-EAD interval is insensitive to the maximum ionic current conductance but mainly determined by the kinetics of ICa,L and the dual Hopf-homoclinic bifurcation; and both inter-EAD interval and latency vary largely from model to model. Most of the model results generally agree with experimental observations in isolated ventricular myocytes. However, a major discrepancy between modeling results and experimental observations is that the inter-EAD intervals observed in experiments are mainly between 200 and 500 ms, irrespective of species, while those of the mathematical models exhibit a much wider range with some models exhibiting inter-EAD intervals less than 100 ms. Our simulations show that the cause of this discrepancy is likely due to the difference in ICa,L recovery properties in different mathematical models, which needs to be addressed in future action potential model development.https://doi.org/10.1371/journal.pcbi.1006382
collection DOAJ
language English
format Article
sources DOAJ
author Xiaodong Huang
Zhen Song
Zhilin Qu
spellingShingle Xiaodong Huang
Zhen Song
Zhilin Qu
Determinants of early afterdepolarization properties in ventricular myocyte models.
PLoS Computational Biology
author_facet Xiaodong Huang
Zhen Song
Zhilin Qu
author_sort Xiaodong Huang
title Determinants of early afterdepolarization properties in ventricular myocyte models.
title_short Determinants of early afterdepolarization properties in ventricular myocyte models.
title_full Determinants of early afterdepolarization properties in ventricular myocyte models.
title_fullStr Determinants of early afterdepolarization properties in ventricular myocyte models.
title_full_unstemmed Determinants of early afterdepolarization properties in ventricular myocyte models.
title_sort determinants of early afterdepolarization properties in ventricular myocyte models.
publisher Public Library of Science (PLoS)
series PLoS Computational Biology
issn 1553-734X
1553-7358
publishDate 2018-11-01
description Early afterdepolarizations (EADs) are spontaneous depolarizations during the repolarization phase of an action potential in cardiac myocytes. It is widely known that EADs are promoted by increasing inward currents and/or decreasing outward currents, a condition called reduced repolarization reserve. Recent studies based on bifurcation theories show that EADs are caused by a dual Hopf-homoclinic bifurcation, bringing in further mechanistic insights into the genesis and dynamics of EADs. In this study, we investigated the EAD properties, such as the EAD amplitude, the inter-EAD interval, and the latency of the first EAD, and their major determinants. We first made predictions based on the bifurcation theory and then validated them in physiologically more detailed action potential models. These properties were investigated by varying one parameter at a time or using parameter sets randomly drawn from assigned intervals. The theoretical and simulation results were compared with experimental data from the literature. Our major findings are that the EAD amplitude and takeoff potential exhibit a negative linear correlation; the inter-EAD interval is insensitive to the maximum ionic current conductance but mainly determined by the kinetics of ICa,L and the dual Hopf-homoclinic bifurcation; and both inter-EAD interval and latency vary largely from model to model. Most of the model results generally agree with experimental observations in isolated ventricular myocytes. However, a major discrepancy between modeling results and experimental observations is that the inter-EAD intervals observed in experiments are mainly between 200 and 500 ms, irrespective of species, while those of the mathematical models exhibit a much wider range with some models exhibiting inter-EAD intervals less than 100 ms. Our simulations show that the cause of this discrepancy is likely due to the difference in ICa,L recovery properties in different mathematical models, which needs to be addressed in future action potential model development.
url https://doi.org/10.1371/journal.pcbi.1006382
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AT zhilinqu determinantsofearlyafterdepolarizationpropertiesinventricularmyocytemodels
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