Electrical "hot spot" as a mechanism of defibrillation

R. Ranjan, M.S. Fishler, N. Thakor
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引用次数: 2

Abstract

The excitation threshold of isolated cardiac cells has been shown to be sensitive to the direction of applied electric field. To further explore this relationship, the authors developed a realistic two-dimensional finite element model of a cardiac cell. The model was used to determine the spatial distributions of transmembrane voltages produced by a uniform electric field applied across the cell. With a 5 V/cm field applied parallel to the cell axis, the maximum absolute transmembrane voltages measured at either end of the cell were 39.1 mV and 46.5 mV (signs depend on polarity of applied field), while 40.5 mV and 44.8 mV with the field perpendicular to the cell axis. More significantly however, the authors found that these highest potentials were concentrated at distinct sites on the membrane. Thus, the authors hypothesize that the depolarization of a cell due to the defibrillation shock initiates at one of these "hot spots" whose exact location depends on the direction and polarity of the field, and shape of the cell. The authors' computational results are in good agreement with experimental results suggesting that a nonuniform cell shape does have an important bearing on the subsequent excitation thresholds of that cell.<>
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电“热点”作为除颤机制
离体心肌细胞的激发阈值对外加电场的方向很敏感。为了进一步探讨这种关系,作者开发了一个现实的二维有限元模型的心脏细胞。该模型用于确定均匀电场在细胞上施加时产生的跨膜电压的空间分布。平行于细胞轴施加5 V/cm的电场时,在细胞两端测得的最大绝对跨膜电压分别为39.1 mV和46.5 mV(信号取决于施加电场的极性),而垂直于细胞轴的电场分别为40.5 mV和44.8 mV。然而,更重要的是,作者发现这些最高电位集中在膜上的不同位置。因此,作者假设,由除颤冲击引起的细胞去极化始于这些“热点”之一,其确切位置取决于电场的方向和极性以及细胞的形状。作者的计算结果与实验结果很好地一致,表明不均匀的细胞形状确实对该细胞的后续激发阈值有重要影响。
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