Joyner R W, Ramón F, Morre J W
Circ Res. 1975 May;36(5):654-61. doi: 10.1161/01.res.36.5.654.
Cable theory and active equivalent circuits have been used to simulate the propagation of action potentials along a single nerve or muscle fiber by representing the cell as a unidimensional cable composed of isopotential segments. We extended this method to a two-dimensional sheet of cells which in many ways represents the atrium. Our method consisted of solving for the potential profile of a sheet composed of a large number of isopotential membrane patches, each of which was represented by an active equivalent circuit in which the ionic conductances were functions of voltage and time. The patches were arranged in a rectangular array with resistive interconnections that could be varied over the sheet. We used this model to study the effect of various inhomogeneities on conduction velocity and the resulting wave fronts in a sheet of excitable tissue. Some of these inhomogeneities included different effective internal resistances in the x and y directions, preferential pathways, and discrete regions of changing resistive connections. The results showed that very localized changes in membrane properties or cellular interconnections produce changes in the wave front over broad areas. This model provides a method for computing the wave fronts of action potential propagation in any two-dimensional inhomogeneous sheet of coupled excitable cells.
电缆理论和有源等效电路已被用于通过将细胞表示为由等电位段组成的一维电缆来模拟动作电位沿单个神经或肌肉纤维的传播。我们将此方法扩展到二维细胞片,在许多方面二维细胞片代表心房。我们的方法包括求解由大量等电位膜片组成的片的电位分布,每个膜片由一个有源等效电路表示,其中离子电导是电压和时间的函数。这些膜片以矩形阵列排列,具有电阻互连,电阻互连可在片上变化。我们使用这个模型来研究各种不均匀性对可兴奋组织片中传导速度和由此产生的波前的影响。其中一些不均匀性包括x和y方向上不同的有效内部电阻、优先路径以及电阻连接变化的离散区域。结果表明,膜特性或细胞互连的非常局部的变化会在广泛区域内引起波前的变化。该模型提供了一种计算动作电位在任何二维不均匀耦合可兴奋细胞片中传播的波前的方法。