Department of Physics, South China University of Technology, Guangzhou 510640, China.
Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences, Fuzhou 350002, China.
Chaos. 2020 Apr;30(4):043105. doi: 10.1063/1.5133086.
Early afterdepolarization (EAD) is a major arrhythmogenic factor in the long QT syndrome (LQTS), whose conditions for genesis have puzzled people for several decades. Here, we employ the phase I Luo-Rudy ventricular myocyte model to investigate EAD using methods from nonlinear dynamics and provide valuable insights into EAD genesis from a physical perspective. Two major results are obtained: (i) Sufficient parametric conditions for EAD are analytically determined and then used to analyze in detail the effects of the physiological parameters. (ii) The normal form of the Hopf bifurcation that leads to EAD is derived and then used to determine whether the Hopf bifurcation is subcritical or supercritical for EAD genesis and the corresponding amplitude and period of the EAD oscillation. Our work here paves the way for further studies of more complicated multi-scale dynamics of EAD and may lead to effective treatments for LQTS arrhythmias.
早期后除极(EAD)是长 QT 综合征(LQTS)中的主要致心律失常因素,其产生条件几十年来一直困扰着人们。在这里,我们采用 I 期 Luo-Rudy 心室肌细胞模型,运用非线性动力学方法研究 EAD,并从物理角度提供对 EAD 产生的有价值的见解。得到了两个主要结果:(i)解析确定了 EAD 的充分参数条件,然后详细分析了生理参数的影响。(ii)推导出导致 EAD 的 Hopf 分岔的正规形式,然后用于确定 Hopf 分岔对 EAD 产生是亚临界还是超临界的,以及 EAD 振荡的相应幅度和周期。我们的工作为进一步研究 EAD 的更复杂的多尺度动力学铺平了道路,并可能为 LQTS 心律失常的有效治疗提供依据。