The effect of myocardial action potential duration on cardiac pumping efficacy: a computational study

Abstract Background and aims Although studies on the relation between arrhythmias and the action potential duration (APD) have been carried out, most of them are based only on electrophysiological factors of the heart and lack experiments that consider cardiac mechanical and electromechanical charac...

Full description

Bibliographic Details
Main Authors: Da Un Jeong, Ki Moo Lim
Format: Article
Language:English
Published: BMC 2018-06-01
Series:BioMedical Engineering OnLine
Subjects:
Online Access:http://link.springer.com/article/10.1186/s12938-018-0508-2
id doaj-bd35d0510bc14588a59f4c63818155b1
record_format Article
spelling doaj-bd35d0510bc14588a59f4c63818155b12020-11-25T00:45:15ZengBMCBioMedical Engineering OnLine1475-925X2018-06-0117111610.1186/s12938-018-0508-2The effect of myocardial action potential duration on cardiac pumping efficacy: a computational studyDa Un Jeong0Ki Moo Lim1Department of IT Convergence Engineering, Kumoh National Institute of TechnologyDepartment of IT Convergence Engineering, Kumoh National Institute of TechnologyAbstract Background and aims Although studies on the relation between arrhythmias and the action potential duration (APD) have been carried out, most of them are based only on electrophysiological factors of the heart and lack experiments that consider cardiac mechanical and electromechanical characteristics. Therefore, we conducted this study to clarify the relevance of the shortening of APD of a cell in relation to the mechanical contraction activity of the heart and the associated risk of arrhythmia. Methods The human ventricular model used in this study has two dynamic characteristics: electrophysiological conduction and mechanical contraction. The model simulating electrophysiological characteristics was consisted of lumped parameter circuit that can mimic the phenomenon of ion exchange through the cell membrane of myocyte and consisted of 214,319 tetrahedral finite elements. In contrast, the model simulating mechanical contraction characteristics was constructed to mimic cardiac contraction by means of the crossbridge of a myofilament and consisted of 14,720 hermite-based finite elements to represent a natural 3D curve of the cardiac surface. First, we performed a single cell simulation and the electrophysiological simulation according to the change of the APD by changing the electrical conductivity of the I Ks channel. Thus, we confirmed the correlation between APD and intracellular Ca2+ concentration. Then, we compared mechanical response through mechanical simulation using Ca2+ data from electrical simulation. Results The APD and the sum of the intracellular Ca2+ concentrations showed a positive correlation. The shortened APD reduced the conduction wavelength of ventricular cells by shortening the plateau and early repolarization in myocardial cells. The decrease in APD reduced ventricular pumping efficiency by more than 60% as compared with the normal group (normal conditions). This change is caused by the decline of ventricular output owing to reduced ATP consumption during the crossbridge of myofilaments and decreased tension. Conclusion The shortening of APD owing to increased electrical conductivity of a protein channel on myocardial cells likely decreases the wavelength and the pumping efficiency of the ventricles. Additionally, it may increase tissue sensitivity to ventricular fibrillation, including reentry, and cause symptoms such as dyspnea and dizziness.http://link.springer.com/article/10.1186/s12938-018-0508-2Myocardial action potentialAction potential durationIKs channelConductivityCardiac pumpingArrhythmia
collection DOAJ
language English
format Article
sources DOAJ
author Da Un Jeong
Ki Moo Lim
spellingShingle Da Un Jeong
Ki Moo Lim
The effect of myocardial action potential duration on cardiac pumping efficacy: a computational study
BioMedical Engineering OnLine
Myocardial action potential
Action potential duration
IKs channel
Conductivity
Cardiac pumping
Arrhythmia
author_facet Da Un Jeong
Ki Moo Lim
author_sort Da Un Jeong
title The effect of myocardial action potential duration on cardiac pumping efficacy: a computational study
title_short The effect of myocardial action potential duration on cardiac pumping efficacy: a computational study
title_full The effect of myocardial action potential duration on cardiac pumping efficacy: a computational study
title_fullStr The effect of myocardial action potential duration on cardiac pumping efficacy: a computational study
title_full_unstemmed The effect of myocardial action potential duration on cardiac pumping efficacy: a computational study
title_sort effect of myocardial action potential duration on cardiac pumping efficacy: a computational study
publisher BMC
series BioMedical Engineering OnLine
issn 1475-925X
publishDate 2018-06-01
description Abstract Background and aims Although studies on the relation between arrhythmias and the action potential duration (APD) have been carried out, most of them are based only on electrophysiological factors of the heart and lack experiments that consider cardiac mechanical and electromechanical characteristics. Therefore, we conducted this study to clarify the relevance of the shortening of APD of a cell in relation to the mechanical contraction activity of the heart and the associated risk of arrhythmia. Methods The human ventricular model used in this study has two dynamic characteristics: electrophysiological conduction and mechanical contraction. The model simulating electrophysiological characteristics was consisted of lumped parameter circuit that can mimic the phenomenon of ion exchange through the cell membrane of myocyte and consisted of 214,319 tetrahedral finite elements. In contrast, the model simulating mechanical contraction characteristics was constructed to mimic cardiac contraction by means of the crossbridge of a myofilament and consisted of 14,720 hermite-based finite elements to represent a natural 3D curve of the cardiac surface. First, we performed a single cell simulation and the electrophysiological simulation according to the change of the APD by changing the electrical conductivity of the I Ks channel. Thus, we confirmed the correlation between APD and intracellular Ca2+ concentration. Then, we compared mechanical response through mechanical simulation using Ca2+ data from electrical simulation. Results The APD and the sum of the intracellular Ca2+ concentrations showed a positive correlation. The shortened APD reduced the conduction wavelength of ventricular cells by shortening the plateau and early repolarization in myocardial cells. The decrease in APD reduced ventricular pumping efficiency by more than 60% as compared with the normal group (normal conditions). This change is caused by the decline of ventricular output owing to reduced ATP consumption during the crossbridge of myofilaments and decreased tension. Conclusion The shortening of APD owing to increased electrical conductivity of a protein channel on myocardial cells likely decreases the wavelength and the pumping efficiency of the ventricles. Additionally, it may increase tissue sensitivity to ventricular fibrillation, including reentry, and cause symptoms such as dyspnea and dizziness.
topic Myocardial action potential
Action potential duration
IKs channel
Conductivity
Cardiac pumping
Arrhythmia
url http://link.springer.com/article/10.1186/s12938-018-0508-2
work_keys_str_mv AT daunjeong theeffectofmyocardialactionpotentialdurationoncardiacpumpingefficacyacomputationalstudy
AT kimoolim theeffectofmyocardialactionpotentialdurationoncardiacpumpingefficacyacomputationalstudy
AT daunjeong effectofmyocardialactionpotentialdurationoncardiacpumpingefficacyacomputationalstudy
AT kimoolim effectofmyocardialactionpotentialdurationoncardiacpumpingefficacyacomputationalstudy
_version_ 1725271257793953792