Usyk Taras P, McCulloch Andrew D
Department of Bioengineering, The Whitaker Institute for Biomedical Engineering, University of California, San Diego, La Jolla 92093-0412, USA.
J Electrocardiol. 2003;36 Suppl:57-61. doi: 10.1016/j.jelectrocard.2003.09.015.
Experimental studies have shown that biventricular pacing can improve systolic function in the failing heart with bundle branch block. The goal of this study was to develop and validate a three-dimensional computational model of the dilated failing heart with left bundle branch block to investigate how biventricular pacing can improve systolic mechanical performance and synchrony. In an anatomically detailed model of canine ventricular geometry, fiber architecture and Purkinje fiber network structure, a monodomain solution for anisotropic impulse conduction gave rise to electrical activation sequences that were consistent with experimentally observed patterns. Coupling this with regional myocardial mechanics computed for left branch bundle block and biventricular pacing showed good agreement with published regional fiber strains measured in dogs by using magnetic resonance imaging tagging. Biventricular pacing improved mechanical synchrony and systolic function in the computational model. The model may be a useful tool for investigating the pacing conditions required to achieve optimal mechanical improvement in the failing heart, especially because electrical synchrony does not correlate directly with mechanical synchrony and performance.
实验研究表明,双心室起搏可改善存在束支传导阻滞的衰竭心脏的收缩功能。本研究的目的是建立并验证一个患有左束支传导阻滞的扩张型衰竭心脏的三维计算模型,以研究双心室起搏如何改善收缩期机械性能和同步性。在一个具有详细解剖结构的犬心室几何形状、纤维结构和浦肯野纤维网络结构的模型中,用于各向异性冲动传导的单域解产生了与实验观察模式一致的电激活序列。将其与为左束支传导阻滞和双心室起搏计算的局部心肌力学相结合,结果与已发表的通过磁共振成像标记测量的犬局部纤维应变显示出良好的一致性。双心室起搏在计算模型中改善了机械同步性和收缩功能。该模型可能是一个有用的工具,用于研究在衰竭心脏中实现最佳机械改善所需的起搏条件,特别是因为电同步性与机械同步性和性能并不直接相关。