Title :
Simulation of KCNJ2-linked Short QT syndrome in human ventricular tissue
Author :
Kuanquan Wang ; Cunjin Luo ; Wei Wang ; Henggui Zhang ; Yongfeng Yuan
Author_Institution :
Sch. of Comput. Sci. & Technol., Harbin Inst. of Technol., Harbin, China
Abstract :
In the present study we developed a computer models of human ventricular cell and tissue to simulate SQT3 syndrome that is associated with gain-in-function of IK1 channel arising from KCNJ2 gene mutation. We explored the functional effects of Kir2.1 D172N mutation-induced changes in IK1 on the electrical action potentials (APs) of cardiac cells and electrical wave conduction in ventricular tissues. Two scenarios were considered: one considered wild type (WT), heterozygous (WT-D172N) and homozygous (D172N), the other considered EPI, MIDDLE, ENDO cell types in heterogeneous ventricular wall. In cellular simulations, we computed action potential duration (APD), current traces of Ik1 during APs. In 2D tissue simulations, the functional effects of the SQT3 on the characteristics of ECG were computed. It was shown that under the SQT3 condition, the action potential duration was abbreviated, magnitude of Ik1 current during APs was increased and QT interval in pseudo- ECG was abbreviated dramatically. Such changes under the D172N condition were more remarkable than those under the WT-D172N condition. In conclusion, increased Ik1 associated with SQT3 condition accelerates ventricular repolarization, which may increase arrhythmogeneity of ventricular fibrillation leading to sudden cardiac death.
Keywords :
bioelectric potentials; biological tissues; cellular biophysics; diseases; electrocardiography; genetics; medical disorders; physiological models; polarisation; 2D tissue simulations; ECG characteristic computation; ENDO cell types; EPI cell types; IK1 channel gain-in-function; KCNJ2 gene mutation; KCNJ2-linked short QT syndrome; Kir2.1 D172N mutation-induced changes; MIDDLE cell types; SQT3 syndrome; arrhythmogeneity; cardiac cells; computer models; electrical action potential duration; electrical wave conduction; electrocardiography; heterogeneous ventricular wall; heterozygous WT-D172N condition; homozygous D172N condition; human ventricular cell; human ventricular tissue; sudden cardiac death; ventricular fibrillation; ventricular repolarization; Abstracts; Electric potential; Electrodes; IP networks; Lead;
Conference_Titel :
Computing in Cardiology Conference (CinC), 2013
Conference_Location :
Zaragoza
Print_ISBN :
978-1-4799-0884-4