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海兔可识别的脑A神经元中电压门控性钠电流和钙电流的特性

Characterization of the voltage-gated Na+ and Ca2+ currents in identifiable cerebral A neurons of Aplysia.

作者信息

Farquharson D A, Jahan-Parwar B

出版信息

Cell Mol Neurobiol. 1984 Jun;4(2):97-115. doi: 10.1007/BF00710998.

Abstract

Certain membrane properties of axon-ligated cerebral A neurons in Aplysia californica were examined under voltage-clamp conditions (temperature, 8-13 degrees C). Depolarization was found to induce two kinds of transient inward currents, carried by Na+ and Ca2+ and similar to the Na+ and Ca2+ currents reported in other molluscan nerve cells. These currents were differentiated by introducing specific channel blockers or ion substitutions into the bathing medium. Certain characteristics of the Na+ and Ca2+ currents in A neurons were found to differ from those previously reported for molluscan neurons. The threshold potentials for both Na+ and Ca2+ currents were more negative and more the same than described for other Aplysia neurons. The threshold for Na+ current was -37 +/- 6 mV (mean +/- SD; N = 6). The threshold for Ca2+ current was -40 +/- 1 mV (N = 4). The time course of Na+ inactivation in A neuron soma was found to have two components that could be described as the sum of two exponential processes with time constants th(Na)1 and th(Na)2. Na+ inactivation was voltage dependent, with both time constants for inactivation becoming smaller at positive potentials. The faster components varied from approximately 4 to 1 msec over a range from -30 to +20 mV. The slower component of Na+ decay had a time constant that varied from approximately 9 to 3 msec over a range of -30 to +20 mV. Recovery from complete Na+ inactivation had a delay. Steady-state inactivation of the Na+ conductance was voltage dependent, with a 5-mV change at half-inactivation (-51 mV) producing an e-fold change. Activation of the Na+ current after correction for inactivation could be described by the expression GNa(t) = GNa(infinity) [1 - exp[-t/tm(Na)]]3 X tm(Na) was voltage dependent, varying from approximately 2 to 1 msec over a range of -30 to +20 mV. Inactivation of the Ca2+ currents had two rate components which proceeded at about 1/5 to 1/100 the rate of Na+ inactivation. The time course of Ca2+ inactivation was best described by assuming that it had two exponential components with time constants th(Ca), and th(Ca)2. Both time constants were voltage dependent. The larger time constants, th(Ca)2, changed from approximately 1.3 to 0.4 sec over a range of -30 to +20 mV X th(Ca)1 changed from approximately 130 to 40 msec over a range of -30 to +20 mV. Steady-state inactivation of the Ca2+ conductance was voltage dependent, with a 5-mV change at half-inactivation (-44 mV) producing an e-fold change.(ABSTRACT TRUNCATED AT 400 WORDS)

摘要

在电压钳制条件下(温度为8 - 13摄氏度),研究了加州海兔轴突结扎的脑A神经元的某些膜特性。发现去极化可诱导两种瞬时内向电流,由Na⁺和Ca²⁺携带,类似于其他软体动物神经细胞中报道的Na⁺和Ca²⁺电流。通过向灌流介质中引入特定的通道阻滞剂或离子替代物来区分这些电流。发现A神经元中Na⁺和Ca²⁺电流的某些特性与先前报道的软体动物神经元不同。Na⁺和Ca²⁺电流的阈值电位比其他海兔神经元更负且更相近。Na⁺电流的阈值为 - 37 ± 6 mV(平均值 ± 标准差;N = 6)。Ca²⁺电流的阈值为 - 40 ± 1 mV(N = 4)。发现A神经元胞体中Na⁺失活的时间进程有两个成分,可描述为两个具有时间常数th(Na)1和th(Na)2的指数过程之和。Na⁺失活是电压依赖性的,两个失活时间常数在正电位时都变小。较快成分在 - 30至 + 20 mV范围内从约4毫秒变化到1毫秒。Na⁺衰减的较慢成分的时间常数在 - 30至 + 20 mV范围内从约9毫秒变化到3毫秒。从完全Na⁺失活中恢复有延迟。Na⁺电导的稳态失活是电压依赖性的,在半失活( - 51 mV)时5 mV的变化产生e倍变化。校正失活后Na⁺电流的激活可用表达式GNa(t) = GNa(∞) [1 - exp[-t/tm(Na)]]³描述,其中tm(Na)是电压依赖性的,在 - 30至 + 20 mV范围内从约2毫秒变化到1毫秒。Ca²⁺电流的失活有两个速率成分,其进行速度约为Na⁺失活速度的1/5至1/100。Ca²⁺失活的时间进程最好通过假设它有两个具有时间常数th(Ca)1和th(Ca)2的指数成分来描述。两个时间常数都是电压依赖性的。较大的时间常数th(Ca)2在 - 30至 + 20 mV范围内从约1.3秒变化到0.4秒,th(Ca)1在 - 30至 + 20 mV范围内从约130毫秒变化到40毫秒。Ca²⁺电导的稳态失活是电压依赖性的,在半失活( - 44 mV)时5 mV的变化产生e倍变化。(摘要截短为400字)

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