Potse Mark, Dubé Bruno, Richer Jacques, Vinet Alain, Gulrajani Ramesh M
Department of Physiology, Institute of Biomedical Engineering, Université de Montréal, P.O. Box 6128, Station Centre-ville, Montréal, QC H3C 3J7, Canada.
IEEE Trans Biomed Eng. 2006 Dec;53(12 Pt 1):2425-35. doi: 10.1109/TBME.2006.880875.
A bidomain reaction-diffusion model of the human heart was developed, and potentials resulting from normal depolarization and repolarization were compared with results from a compatible monodomain model. Comparisons were made for an empty isolated heart and for a heart with fluid-filled ventricles. Both sinus rhythm and ectopic activation were simulated. The bidomain model took 2 days on 32 processors to simulate a complete cardiac cycle. Differences between monodomain and bidomain results were extremely small, even for the extracellular potentials, which in case of the monodomain model were computed with a high-resolution forward model. Propagation of activation was 2% faster in the bidomain model than in the monodomain model. Electrograms computed with monodomain and bidomain models were visually indistinguishable. We conclude that, in the absence of applied currents, propagating action potentials on the scale of a human heart can be studied with a monodomain model.
开发了一种人类心脏的双域反应扩散模型,并将正常去极化和复极化产生的电位与兼容的单域模型的结果进行了比较。对空的离体心脏和心室充满液体的心脏进行了比较。模拟了窦性心律和异位激活。双域模型在32个处理器上花费2天来模拟一个完整的心动周期。单域和双域结果之间的差异极小,即使对于细胞外电位也是如此,在单域模型中,细胞外电位是用高分辨率正向模型计算的。双域模型中激活的传播比单域模型快2%。用单域和双域模型计算的心电图在视觉上无法区分。我们得出结论,在没有施加电流的情况下,可以用单域模型研究人类心脏尺度上的传播动作电位。