Detailed Information

Cited 0 time in webofscience Cited 0 time in scopus
Metadata Downloads

V241F KCNQ1 Mutation Shortens Electrical Wavelength and Reduces Ventricular Pumping Capabilities: A Simulation Study With an Electro-Mechanical Model

Authors
Heikhmakhtiar, Aulia KhamasRasyidin, Fakhmi AdiLim, Ki Moo
Issue Date
18-Dec-2018
Publisher
FRONTIERS MEDIA SA
Keywords
V241F KCNQ1 mutation; electromechanical model; sinus rhythm; ventricular fibrillation; computational model
Citation
FRONTIERS IN PHYSICS, v.6
Journal Title
FRONTIERS IN PHYSICS
Volume
6
URI
https://scholarworks.bwise.kr/kumoh/handle/2020.sw.kumoh/21934
DOI
10.3389/fphy.2018.00147
ISSN
2296-424X
Abstract
Death due to ventricular fibrillation (VF) can occur over a relatively short time period. During the first stage, an irregular heartbeat or arrhythmia of the heart may occur. Therefore, studying arrhythmia could reveal important insights relevant to the prevention of VF. One of the factors known to cause arrhythmia is the generation of mutations in the ion channels of myocytes. The current experimental methods to monitor and observe subjects with arrhythmia are invasive, and could possibly harm the subject with no guarantee of obtaining good results. These limitations could be overcome by using an extensively validated computational simulation study. This study aims to enhance our understanding of the effect of the V241F mutation on electromechanical behavior in the heart. We simulated three conditions; wild-type (WT), heterozygous/intermediate V241F, and pure V241F conditions in an electrophysiological single cell model and three-dimensional electro-mechanics ventricular model. The electro-mechanics model is a one-way coupling of the electrical compartment to the mechanical compartment by Ca2+ transient concentration. Consistent with a previous study, the V241F mutation significantly shortened the action potential duration at 90% repolarization (APD(90)) under pure V241F mutation conditions, due to the gain of function of the slow delayed rectifier potassium (I-Ks) channel. This APD(90) shortening is associated with a short electrical wavelength, which shortens the Ca2+ activation time as well. The hemodynamic responses showed that the V241F mutation lowered ventricular contraction under normal sinus rhythm conditions by decreasing the stroke volume, stroke work, and ejection fraction. During reentry, the V241F mutation significantly reduced the ventricular contractility compared with the WT condition. In conclusions, the effect of the two variants of V241F (intermediate and pure) mutation not only disturbed the electrophysiological events but also affected the mechanical behavior significantly. The result of this study can be used as a reference for the cardiovascular expert to decide the appropriate pharmacology of I-Ks conductance block for the patient.
Files in This Item
There are no files associated with this item.
Appears in
Collections
Department of Medical IT Convergence Engineering > 1. Journal Articles

qrcode

Items in ScholarWorks are protected by copyright, with all rights reserved, unless otherwise indicated.

Altmetrics

Total Views & Downloads

BROWSE