Modeling hypothermia induced effects for the heterogeneous ventricular tissue from cellular level to the impact on the ECG.

Hypothermia has a profound impact on the electrophysiological mechanisms of the heart. Experimental investigations provide a better understanding of electrophysiological alterations associated with cooling. However, there is a lack of computer models suitable for simulating the effects of hypothermi...

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Main Authors: Roland Kienast, Michael Handler, Markus Stöger, Daniel Baumgarten, Friedrich Hanser, Christian Baumgartner
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2017-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC5558962?pdf=render
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spelling doaj-34e1452aa1c04c6f89f25db1f40c4ccf2020-11-25T01:42:33ZengPublic Library of Science (PLoS)PLoS ONE1932-62032017-01-01128e018297910.1371/journal.pone.0182979Modeling hypothermia induced effects for the heterogeneous ventricular tissue from cellular level to the impact on the ECG.Roland KienastMichael HandlerMarkus StögerDaniel BaumgartenFriedrich HanserChristian BaumgartnerHypothermia has a profound impact on the electrophysiological mechanisms of the heart. Experimental investigations provide a better understanding of electrophysiological alterations associated with cooling. However, there is a lack of computer models suitable for simulating the effects of hypothermia in cardio-electrophysiology. In this work, we propose a model that describes the cooling-induced electrophysiological alterations in ventricular tissue in a temperature range from 27°C to 37°C. To model the electrophysiological conditions in a 3D left ventricular tissue block it was essential to consider the following anatomical and physiological parameters in the model: the different cell types (endocardial, M, epicardial), the heterogeneous conductivities in longitudinal, transversal and transmural direction depending on the prevailing temperature, the distinct fiber orientations and the transmural repolarization sequences. Cooling-induced alterations on the morphology of the action potential (AP) of single myocardial cells thereby are described by an extension of the selected Bueno-Orovio model for human ventricular tissue using Q10 temperature coefficients. To evaluate alterations on tissue level, the corresponding pseudo electrocardiogram (pECG) was calculated. Simulations show that cooling-induced AP and pECG-related parameters, i.e. AP duration, morphology of the notch of epicardial AP, maximum AP upstroke velocity, AP rise time, QT interval, QRS duration and J wave formation are in good accordance with literature and our experimental data. The proposed model enables us to further enhance our knowledge of cooling-induced electrophysiological alterations from cellular to tissue level in the heart and may help to better understand electrophysiological mechanisms, e.g. in arrhythmias, during hypothermia.http://europepmc.org/articles/PMC5558962?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Roland Kienast
Michael Handler
Markus Stöger
Daniel Baumgarten
Friedrich Hanser
Christian Baumgartner
spellingShingle Roland Kienast
Michael Handler
Markus Stöger
Daniel Baumgarten
Friedrich Hanser
Christian Baumgartner
Modeling hypothermia induced effects for the heterogeneous ventricular tissue from cellular level to the impact on the ECG.
PLoS ONE
author_facet Roland Kienast
Michael Handler
Markus Stöger
Daniel Baumgarten
Friedrich Hanser
Christian Baumgartner
author_sort Roland Kienast
title Modeling hypothermia induced effects for the heterogeneous ventricular tissue from cellular level to the impact on the ECG.
title_short Modeling hypothermia induced effects for the heterogeneous ventricular tissue from cellular level to the impact on the ECG.
title_full Modeling hypothermia induced effects for the heterogeneous ventricular tissue from cellular level to the impact on the ECG.
title_fullStr Modeling hypothermia induced effects for the heterogeneous ventricular tissue from cellular level to the impact on the ECG.
title_full_unstemmed Modeling hypothermia induced effects for the heterogeneous ventricular tissue from cellular level to the impact on the ECG.
title_sort modeling hypothermia induced effects for the heterogeneous ventricular tissue from cellular level to the impact on the ecg.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2017-01-01
description Hypothermia has a profound impact on the electrophysiological mechanisms of the heart. Experimental investigations provide a better understanding of electrophysiological alterations associated with cooling. However, there is a lack of computer models suitable for simulating the effects of hypothermia in cardio-electrophysiology. In this work, we propose a model that describes the cooling-induced electrophysiological alterations in ventricular tissue in a temperature range from 27°C to 37°C. To model the electrophysiological conditions in a 3D left ventricular tissue block it was essential to consider the following anatomical and physiological parameters in the model: the different cell types (endocardial, M, epicardial), the heterogeneous conductivities in longitudinal, transversal and transmural direction depending on the prevailing temperature, the distinct fiber orientations and the transmural repolarization sequences. Cooling-induced alterations on the morphology of the action potential (AP) of single myocardial cells thereby are described by an extension of the selected Bueno-Orovio model for human ventricular tissue using Q10 temperature coefficients. To evaluate alterations on tissue level, the corresponding pseudo electrocardiogram (pECG) was calculated. Simulations show that cooling-induced AP and pECG-related parameters, i.e. AP duration, morphology of the notch of epicardial AP, maximum AP upstroke velocity, AP rise time, QT interval, QRS duration and J wave formation are in good accordance with literature and our experimental data. The proposed model enables us to further enhance our knowledge of cooling-induced electrophysiological alterations from cellular to tissue level in the heart and may help to better understand electrophysiological mechanisms, e.g. in arrhythmias, during hypothermia.
url http://europepmc.org/articles/PMC5558962?pdf=render
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