Dou Jianhong, Xia Ling, Zhang Yu, Shou Guofa, Wei Qing, Liu Feng, Crozier Stuart
Department of Biomedical Engineering, Zhejiang University, Hangzhou 310027, People's Republic of China. Guangzhou General Army Hospital, Guangzhou 510010, People's Republic of China.
Phys Med Biol. 2009 Jan 21;54(2):353-71. doi: 10.1088/0031-9155/54/2/012. Epub 2008 Dec 19.
Asynchronous electrical activation, induced by bundle branch block (BBB), can cause reduced ventricular function. However, the effects of BBB on the mechanical function of heart are difficult to assess experimentally. Many heart models have been developed to investigate cardiac properties during BBB but have mainly focused on the electrophysiological properties. To date, the mechanical function of BBB has not been well investigated. Based on a three-dimensional electromechanical canine heart model, the mechanical properties of complete left and right bundle branch block (LBBB and RBBB) were simulated. The anatomical model as well as the fiber orientations of a dog heart was reconstructed from magnetic resonance imaging (MRI) and diffusion tensor MRI (DT-MRI). Using the solutions of reaction-diffusion equations and with a strategy of parallel computation, the asynchronous excitation propagation and intraventricular conduction in BBB was simulated. The mechanics of myocardial tissues were computed with time-, sarcomere length-dependent uniaxial active stress initiated at the time of depolarization. The quantification of mechanical intra- and interventricular asynchrony of BBB was then investigated using the finite-element method with an eight-node isoparametric element. The simulation results show that (1) there exists inter- and intraventricular systolic dyssynchrony during BBB; (2) RBBB may have more mechanical synchrony and better systolic function of the left ventricle (LV) than LBBB; (3) the ventricles always move toward the early-activated ventricle; and (4) the septum experiences higher stress than left and right ventricular free walls in BBB. The simulation results validate clinical and experimental recordings of heart deformation and provide regional quantitative estimates of ventricular wall strain and stress. The present work suggests that an electromechanical heart model, incorporating real geometry and fiber orientations, may be helpful for better understanding of the mechanical implications of congestive heart failure (CHF) caused by BBB.
由束支传导阻滞(BBB)引起的异步电激活可导致心室功能降低。然而,BBB对心脏机械功能的影响很难通过实验进行评估。已经开发了许多心脏模型来研究BBB期间的心脏特性,但主要集中在电生理特性上。迄今为止,BBB的机械功能尚未得到充分研究。基于三维机电犬心脏模型,模拟了完全性左束支传导阻滞和右束支传导阻滞(LBBB和RBBB)的机械特性。从磁共振成像(MRI)和扩散张量MRI(DT-MRI)重建了犬心脏的解剖模型以及纤维方向。利用反应扩散方程的解并采用并行计算策略,模拟了BBB中的异步兴奋传播和心室内传导。在去极化时开始,用时变、肌节长度依赖性单轴主动应力计算心肌组织的力学。然后使用八节点等参元的有限元方法研究BBB的机械性心室内和心室间不同步的量化。模拟结果表明:(1)BBB期间存在心室内和心室间收缩不同步;(2)与LBBB相比,RBBB可能具有更多的机械同步性和更好的左心室(LV)收缩功能;(3)心室总是朝着早期激活的心室移动;(4)在BBB中,室间隔承受的应力高于左、右心室游离壁。模拟结果验证了心脏变形的临床和实验记录,并提供了心室壁应变和应力的区域定量估计。目前的工作表明,结合真实几何形状和纤维方向的机电心脏模型可能有助于更好地理解由BBB引起的充血性心力衰竭(CHF)的机械影响。