Fluids and Complex Systems Center, Faculty of Engineering, Environment and Computing, Coventry University, Coventry, CV1 5FB, UK.
Centre for Sport, Exercise and Life Sciences, Research Institute for Health and Well-being, Coventry University, Coventry, CV1 5FB, UK.
Comput Biol Med. 2023 Jun;159:106697. doi: 10.1016/j.compbiomed.2023.106697. Epub 2023 Feb 17.
Numerical models of the cardiovascular system have largely focused on the function of the ventricles, with atrial function often neglected. Furthermore, the time-varying elastance method that prescribes the pressure-volume relationship rather than calculating it consistently is frequently used for the ventricles and atrium. This method has yet to be validated however, so its applicability for cardiac modelling is frequently questioned. To overcome this challenge, we propose a synergistic model of left atrium (LA) and left ventricle (LV) by self-consistently integrating various feedback mechanisms among the electro-mechanical and chemical functions of the micro-scale myofiber, the macro-scale dynamics of the LA and LV, the atrioventricular node (AV), and circulation. The model is tested and shown to reproduce the essential features of the atrium cycling, such as the characteristic figure of eight pressure-volume loops. Our model is further developed to investigate the effect of dysfunctions of the mechanical-electric feedback (MEF) in the atrium. Our model not only successfully reproduces key experimental MEF observations such as prolonged action-potential and increases in action-potential magnitude induced by atrial stretch but also shows how MEF and arrhythmia of the atrium lead to a degradation of cardiac output and pumping power with significant consequences. In particular, MEF reproduces arrhythmia such as ectopic and erratic cycling, missed heart beats and restricted function.
心血管系统的数值模型主要集中在心室的功能上,而常常忽略了心房的功能。此外,用于心室和心房的时变顺应性方法通常规定了压力-容积关系,而不是一致地计算它。然而,该方法尚未得到验证,因此其在心脏建模中的适用性经常受到质疑。为了克服这一挑战,我们通过自洽地整合微尺度肌纤维的机电和化学功能、左心房和左心室的宏观动力学、房室结和循环之间的各种反馈机制,提出了左心房和左心室的协同模型。该模型经过测试,能够再现心房循环的基本特征,例如特征性的八字形压力-容积环。我们的模型进一步发展,以研究心房机械-电反馈(MEF)功能障碍的影响。我们的模型不仅成功地再现了关键的实验 MEF 观察结果,如心房拉伸引起的动作电位延长和动作电位幅度增加,还展示了 MEF 和心房的心律失常如何导致心输出量和泵送功率下降,并产生重大影响。特别是,MEF 再现了心律失常,如异位和不规则循环、漏搏和功能受限。