Fernández J M, Bezanilla F, Taylor R E
J Gen Physiol. 1982 Jan;79(1):41-67. doi: 10.1085/jgp.79.1.41.
We have studied the admittance of the membrane of squid giant axon under voltage clamp in the absence of ionic conductances in the range of 0-12 kHz for membrane potentials (V) between --130 and 70 mV. The admittance was measured at various holding potentials (HP) or 155 ms after pulsing from a given holding potential. Standard P/4 procedure was used to study gating currents in the same axons. We found that the membrane capacity Cm (omega) is voltage as well as frequency dependent. For any given V, the voltage-dependent part of the membrane capacitance has a maximum as the frequency approaches zero and requires at least a two-time constant equivalent circuit to be described. When the holding potential is varied, the voltage-dependent capacitance follows a bell-shaped curve with a maximum change of 0.15 muF/cm2 at about --60 mV. With the pulse method, the maximum is at --40 mV for HP = --70 and it shifts to --70 mV for HP = 0. The shift in the maximum of the voltage-dependent capacitance is consistent with the shift in the charge (Q) vs. V curve observed in our experiments with regular P/4 procedure when the HP is varied. Our data can be explained qualitatively by a four-state model for the sodium channel gating, where a charged particle can move within the field and interact with another particle not affected by the field.
我们研究了在电压钳制下,乌贼巨大轴突膜在不存在0至12千赫兹范围内离子电导时,膜电位(V)在-130至70毫伏之间的导纳。在各种保持电位(HP)下或从给定保持电位脉冲155毫秒后测量导纳。使用标准的P/4程序研究同一轴突中的门控电流。我们发现膜电容Cm(欧姆)既与电压有关,也与频率有关。对于任何给定的V,膜电容的电压依赖性部分在频率接近零时具有最大值,并且需要至少一个双时间常数等效电路来描述。当保持电位变化时,电压依赖性电容遵循钟形曲线,在约-60毫伏时最大变化为0.15微法/平方厘米。使用脉冲方法时,对于HP = -70,最大值在-40毫伏处,对于HP = 0,最大值移至-70毫伏。电压依赖性电容最大值的移动与我们在改变HP时使用常规P/4程序进行的实验中观察到的电荷(Q)与V曲线的移动一致。我们的数据可以通过钠通道门控的四态模型进行定性解释,其中一个带电粒子可以在场内移动并与另一个不受场影响的粒子相互作用。