Tanaka I, Sasaki Y
J Gen Physiol. 1966 Jul;49(6):1089-110. doi: 10.1085/jgp.0491089.
As an appropriate model which can simulate the cardiac working muscle with respect to the passive electrical spread, a lattice whose sides have linear cable properties is presented, and the passive potential spread on the model is mathematically analyzed in the fiber direction. Distribution of electrotonic potential in the fiber direction was measured with a pair of intracellular microelectrodes in the cardiac muscle fiber of mouse. By employing “pencil type” microelectrodes potential distribution in the transverse direction within a fiber was also measured. This transverse effect was differentiated from the longitudinal potential distribution. A tonically applied potential at any point of a cell interior spreads continuously in a manner described by a Bessel function. Using appropriate electrical and morphological parameters the experimental results proved to fit the curve obtained from numerical calculation on the model. The apparent length constant obtained for smaller distances (less than 100 ) from the current source was 70 and it increases as the distance becomes larger. At a point inside the fiber the resistance to the extracellular fluid ranged from 200 to 600 KΩ. The influence of coupling resistance between current and recording electrodes on the measurement of electrotonic potential was examined for small interelectrode distance.
作为一种能够在被动电传播方面模拟心肌工作肌的合适模型,提出了一种其边具有线性电缆特性的晶格,并在纤维方向上对该模型上的被动电位传播进行了数学分析。用一对细胞内微电极在小鼠心肌纤维中测量了纤维方向上的电紧张电位分布。通过使用“铅笔型”微电极,还测量了纤维内横向方向的电位分布。这种横向效应与纵向电位分布区分开来。细胞内部任何一点上的持续施加电位以贝塞尔函数描述的方式连续传播。使用适当的电学和形态学参数,实验结果被证明与从模型数值计算得到的曲线相符。从电流源起较小距离(小于100 )处获得的表观长度常数为70 ,并且随着距离变大而增加。在纤维内部的一点处,细胞外液的电阻范围为200至600 KΩ。对于小的电极间距,研究了电流和记录电极之间的耦合电阻对电紧张电位测量的影响。