Yuniarti Ana Rahma, Setianto Febrian, Marcellinus Aroli, Hwang Han Jeong, Choi Seong Wook, Trayanova Natalia, Lim Ki Moo
Department of IT Convergence Engineering, Kumoh National Institute of Technology, Gumi, South Korea.
Department of Mechanical & Biomedical Engineering, Kangwon National University, Chuncheon, South Korea.
Int J Numer Method Biomed Eng. 2018 Jun;34(6):e2970. doi: 10.1002/cnm.2970. Epub 2018 Apr 11.
There is growing interest in genetic arrhythmia since mutations in gene which encodes the ion channel underlie numerous arrhythmias. Hasegawa et al reported that G229D mutation in KCNQ1 underlies atrial fibrillation due to significant shortening of action potential duration (APD) in atrial cells. Here, we predicted whether KCNQ1 G229D mutation affects ventricular fibrillation generation, although it shortens APD slightly compared with the atrial cell. We analyzed the effects of G229D mutation on electrical and mechanical ventricle behaviors (not considered in previous studies). We compared action potential shapes under wild-type and mutant conditions. Electrical wave propagations through ventricles were analyzed during sinus rhythm and reentrant conditions. I enhancement due to G229D mutation shortened the APD in the ventricular cells (6%, 0.3%, and 8% for endo, M, and epi-cells, respectively). The shortened APD contributed to 7% shortening of QT intervals, 29% shortening of wavelengths, 20% decrease in intraventricular pressure, and increase in end-systolic volume 17%, end-diastolic volume 7%, and end-diastolic pressure 11%, which further resulted in reduction in stroke volume as well as cardiac output (28%), ejection fraction 33% stroke work 44%, and ATP consumption 28%. In short, using computational model of the ventricle, we predicted that G229D mutation decreased cardiac pumping efficacy and increased the vulnerability of ventricular fibrillation.
由于编码离子通道的基因突变是众多心律失常的基础,因此人们对遗传性心律失常的兴趣与日俱增。长谷川等人报告称,KCNQ1基因中的G229D突变是心房颤动的基础,因为心房细胞的动作电位持续时间(APD)显著缩短。在此,我们预测KCNQ1 G229D突变是否会影响心室颤动的发生,尽管与心房细胞相比,它对APD的缩短作用较小。我们分析了G229D突变对心室电和机械行为的影响(此前的研究未涉及)。我们比较了野生型和突变型条件下的动作电位形态。在窦性心律和折返条件下分析了心室中的电波传播情况。G229D突变导致的I增强缩短了心室细胞的APD(内膜、中层和外膜细胞分别缩短6%、0.3%和8%)。APD缩短导致QT间期缩短7%、波长缩短29%、心室内压降低20%,同时收缩末期容积增加17%、舒张末期容积增加7%、舒张末期压力增加11%,进而导致每搏输出量以及心输出量减少(28%)、射血分数降低33%、每搏功降低44%以及ATP消耗减少28%。简而言之,我们利用心室计算模型预测,G229D突变会降低心脏泵血效率并增加心室颤动的易感性。