TY - GEN
T1 - Pro-arrhythmic effects of increased late sodium current in failing human heart
AU - Bai, Jieyun
AU - Wang, Kuanquan
AU - Bai, Xiangyun
AU - Yuan, Yongfeng
AU - Zhang, Henggui
PY - 2014
Y1 - 2014
N2 - Heart failure (HF) induces remodeling in cellular ionic channel kinetics, calcium and sodium cycling in the ventricle. In the present study, we investigated the effects of late Na+ current (INaL) on rate-dependent electrical activity of failing human ventricle by characterizing ratedependent INaL and [Na+]i, action potential duration (APD) prolongation, and early aJterdepolarizations (EADs). Transmural ventricular APD dispersion and conduction velocity restitution (CVr) of J-D virtual tissue were also investigated. In addition, the developed model was used to simulate ventricular electrocardiograms (ECG) under normal and HF conditions by using a 2-D idealized model. The results were in good accordance with experimental observations: under the HF condition, enhanced INaL contributed to the reverse rate-dependent (RRD) effects, APD prolongation and EADs generation in cells, and increased dispersion of APD and slowed down conduction in J-D tissue. ECGs under normal and HF conditions were compared, demonstrating the importance of enhanced INaL which could be responsible for the increased arrhythmia susceptibility in human HF.
AB - Heart failure (HF) induces remodeling in cellular ionic channel kinetics, calcium and sodium cycling in the ventricle. In the present study, we investigated the effects of late Na+ current (INaL) on rate-dependent electrical activity of failing human ventricle by characterizing ratedependent INaL and [Na+]i, action potential duration (APD) prolongation, and early aJterdepolarizations (EADs). Transmural ventricular APD dispersion and conduction velocity restitution (CVr) of J-D virtual tissue were also investigated. In addition, the developed model was used to simulate ventricular electrocardiograms (ECG) under normal and HF conditions by using a 2-D idealized model. The results were in good accordance with experimental observations: under the HF condition, enhanced INaL contributed to the reverse rate-dependent (RRD) effects, APD prolongation and EADs generation in cells, and increased dispersion of APD and slowed down conduction in J-D tissue. ECGs under normal and HF conditions were compared, demonstrating the importance of enhanced INaL which could be responsible for the increased arrhythmia susceptibility in human HF.
UR - https://www.scopus.com/pages/publications/84931354549
M3 - 会议稿件
AN - SCOPUS:84931354549
T3 - Computing in Cardiology
SP - 857
EP - 860
BT - Computing in Cardiology 2014, CinC 2014
A2 - Murray, Alan
PB - IEEE Computer Society
T2 - 41st Computing in Cardiology Conference, CinC 2014
Y2 - 7 September 2014 through 10 September 2014
ER -