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Influence of intercellular clefts on potential and current distribution in a multifiber preparation.

机译:细胞间裂隙对多纤维制剂中电位和电流分布的影响。

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摘要

A theoretical model is presented for current and voltage clamp of multifiber bundles in a double sucrose gap. Attention is focused on methodological errors introduced by the intercellular cleft resistance. The bundle is approximated by a continuous geometry. Voltage distribution, as a function of radial distance and time, is defined by a parabolic partial differential equation which is specified for different membrane characteristics. Assuming a linear membrane, analytical solutions are given for current step and voltage step conditions. The theoretical relations (based on Bessel functions) may be used to calculate membrane conductance and capacity from experimental clamp data. The case of a nonlinear membrane with standard Hodgkin-Huxley kinetics for excitatory Na current is treated assuming maximum Na conductances (gNa) of 120, 10, and 1 mmho/cm2. Numerical simulations are presented for potential and current distribution in a bundle of 60 microns diameter during depolarizing voltage steps. Adequate voltage control is restricted to the peripheral fibers of the bundle whereas the membrane potential of the inner fibers deviates from the command level during early inward current, tending to the Na equilibrium potential. In the peak current-voltage diagram the loss of voltage control is reflected by an increased steepness of the negative region and a decreased slope conductance of the positive region. With gNa = 120 mmho/cm2, the positive slope conductance is approximately 25% of the slope expected from ideal space clamping. With the lower values of gNa, the slope conductance ratio is in the order of 50%. Implications of the results for an experimental voltage clamp analysis of early inward current on multifiber preparations are discussed.
机译:为蔗糖间隙中多纤维束的电流和电压钳制提供了理论模型。注意集中在由细胞间裂隙阻力引起的方法学错误上。束由连续几何近似。电压分布是径向距离和时间的函数,由抛物线偏微分方程定义,该方程针对不同的膜特性而指定。假设线性膜,给出了电流阶跃和电压阶跃条件的分析解决方案。理论关系(基于贝塞尔函数)可用于从实验钳位数据计算膜电导和容量。在假设最大钠电导(gNa)为120、10和1 mmho / cm2的情况下,处理具有标准Hodgkin-Huxley动力学用于兴奋性Na电流的非线性膜。在去极化电压阶跃过程中,对直径为60微米的束中的电位和电流分布进行了数值模拟。适当的电压控制仅限于束的外围纤维,而内部纤维的膜电位在早期向内电流期间偏离指令水平,趋向于Na平衡电位。在峰值电流-电压图中,负控制区的陡度增加和正区域的斜率电导减小反映了电压控制的损失。当gNa = 120 mmho / cm2时,正斜率电导约为理想空间钳位预期斜率的25%。 gNa值较低时,斜率电导率约为50%。讨论了对早期内向电流的电压钳分析的实验结果对多纤维制备的影响。

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