Mechano-electric feedbacks (MEFs), which model how mechanical stimuli are transduced into electrical signals, have received sparse investigation by considering electromechanical simulations in simplified scenarios. In this paper, we study the effects of different MEFs modeling choices for myocardial deformation and nonselective stretch-activated channels (SACs) in the monodomain equation. We perform numerical simulations during ventricular tachycardia (VT) by employing a biophysically detailed and anatomically accurate 3D electromechanical model for the left ventricle (LV) coupled with a 0D closed-loop model of the cardiocirculatory system. We model the electromechanical substrate responsible for scar-related VT with a distribution of infarct and peri-infarct zones. Our mathematical framework takes into account the hemodynamic effects of VT due to myocardial impairment and allows for the classification of their hemodynamic nature, which can be either stable or unstable. By combining electrophysiological, mechanical and hemodynamic models, we observe that all MEFs may alter the propagation of the action potential and the morphology of the VT. In particular, we notice that the presence of myocardial deformation in the monodomain equation may change the VT basis cycle length and the conduction velocity but do not affect the hemodynamic nature of the VT. Finally, nonselective SACs may affect wavefront stability, by possibly turning a hemodynamically stable VT into a hemodynamically unstable one and vice versa.
翻译:机械电路反馈(MEFs)是机械性刺激如何转换成电信号的模型,但通过考虑在简化情景中进行电动机械模拟而得到的调查很少。在本文中,我们研究了单体外方程式中不同MEFs模拟心肌畸形和非选择性伸展活化通道选择模型(SACs)的影响。我们通过对左心室(LV)使用生物物理详细和解剖精确的3D直流电动机动模型,加上心电动系统0D闭路电动模型。我们研究了单体外方程式中不同MEFs模拟心肌畸形和非选择性伸展动通道选择模型(SACs)的模型。我们数学框架考虑到心电图心电动心电图(VT)由于心电图损伤而导致的心血管运动动力效应,并允许其心电动力学特性的分类,这既可以稳定,也可以不稳定。通过将电物理、机械性和心电流流模型的0-loop 将硬性模型转换成不稳定的VEFslal,我们观测到S- 的心电图上的所有运动的形态可能改变。