Eisenberg R S, Engel E
J Gen Physiol. 1970 Jun;55(6):736-57. doi: 10.1085/jgp.55.6.736.
A theoretical analysis is presented of the change in membrane potential produced by current supplied by a microelectrode inserted just under the membrane of a spherical cell. The results of the analysis are presented in tabular and graphic form for three wave forms of current: steady, step function, and sinusoidal. As expected from physical reasoning, we find that the membrane potential is nonuniform, that there is a steep rise in membrane potential near the current microelectrode, and that this rise is of particular importance when the membrane resistance is low, or the membrane potential is changing rapidly. The effect of this steep rise in potential on the interpretation of voltage measurements from spherical cells is discussed and practical suggestions for minimizing these effects are made: in particular, it is pointed out that if the current and voltage electrodes are separated by 60 degrees , the change in membrane potential produced by application of current is close to that which would occur if there were no spatial variation of potential. We thus suggest that investigations of the electrical properties of spherical cells using two microelectrodes can best be made when the electrodes are separated by 60 degrees .
本文对插入球形细胞膜下的微电极所提供电流产生的膜电位变化进行了理论分析。分析结果以表格和图形形式呈现了三种电流波形:稳态、阶跃函数和正弦波。正如物理推理所预期的那样,我们发现膜电位是不均匀的,在电流微电极附近膜电位有陡峭的上升,并且当膜电阻较低或膜电位变化迅速时,这种上升尤为重要。讨论了这种电位陡峭上升对球形细胞电压测量解释的影响,并提出了最小化这些影响的实际建议:特别指出,如果电流电极和电压电极相隔60度,施加电流所产生的膜电位变化接近于不存在电位空间变化时所发生的变化。因此,我们建议使用两个微电极研究球形细胞的电特性时,电极相隔60度是最佳选择。