首页> 美国卫生研究院文献>The Journal of Physiology >Characterization of a chloride conductance activated by hyperpolarization in Aplysia neurones.
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Characterization of a chloride conductance activated by hyperpolarization in Aplysia neurones.

机译:海Ap神经元中超极化激活的氯化物电导的表征。

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摘要

A voltage-clamp study was made of some properties of the non-synaptic hyperpolarization-activated Cl- conductance recently described in Aplysia neurones loaded with Cl- ions (Chesnoy-Marchais, 1982). The experiments were performed on an identified family of neurones, which present cholinergic responses allowing an easy measurement of the equilibrium potentials of Cl- (ECl) and K+ ions (EK). The Cl- selectivity of the hyperpolarization-activated conductance was deduced from four observations: (1) the extrapolated reversal potential of the hyperpolarization-activated current, Er, was close to the reversal potential of the cholinergic Cl- response, which is the equilibrium potential for Cl- ions, ECl. (2) Modifications of the intracellular or extracellular Cl- concentration induced changes of the reversal potential Er. (3) A prolonged and intense activation of the current lowered the intracellular Cl- concentration. (4) The current persisted after complete substitution of intracellular and extracellular cations by CS+ ions, as well as after replacement of extracellular Na+ ions by Tris. The steady-state Cl- conductance (gss) increases steeply with hyperpolarization. The kinetics of activation and deactivation are exponential and are characterized by the same voltage-dependent time constant (tau), of the order of a few seconds or fractions of seconds. The curves gss(V) and tau (V) can both be fitted by a two-state model in which the rate constants are exponential functions of the membrane potential (e-fold change for 12-16 mV). The Cl- current is much more affected by changes of the intracellular Cl- concentration than predicted simply from the change in Cl- driving force. Both the conductance and the time constant of activation are strongly modified. Modifications of the extracellular Cl- concentration do not always alter the amplitude of the hyperpolarization-activated Cl- current, but systematically affect its kinetics. The hyperpolarization-activated current is abolished after prolonged exposure of the cell to an artificial sea water where NO3- ions replace Cl- ions, as well as after intracellular injections of NO3- ions. Increasing the external pH shifts the gss(V) and tau (V) curves to the left. Lowering the external pH has reverse but less pronounced effects. In cells which were not loaded with Cl- ions and did not present the hyperpolarization-activated Cl- current, this current could be detected if the hyperpolarizing jump was preceded by short depolarizing pulses. In cells which were loaded with Cl- ions, the Cl- current became larger after a short depolarizing pulse. In the presence of extracellular Co2+ ions, depolarizing pulses no longer increased the Cl- current.(ABSTRACT TRUNCATED AT 400 WORDS)
机译:最近对载有Cl-离子的海葵神经元中描述的非突触超极化激活的Cl-电导的一些特性进行了电压钳研究(Chesnoy-Marchais,1982)。实验在已鉴定的神经元家族中进行,其呈现胆碱能反应,可轻松测量Cl-(EC1)和K +离子(EK)的平衡电位。超极化激活电导的Cl选择性是根据以下四个观察得出的:(1)超极化激活电流Er的外推反向电势接近胆碱能Cl-响应的反向电势,即平衡电势。对于Cl-离子,EC1。 (2)细胞内或细胞外Cl-浓度的改变引起逆转电位Er的变化。 (3)电流的长时间强烈激活降低了细胞内Cl-浓度。 (4)在用CS +离子完全取代细胞内和细胞外阳离子以及用Tris取代细胞外Na +离子之后,电流仍然存在。稳态Cl电导(gss)随着超极化而急剧增加。激活和失活的动力学是指数的,并且具有相同的电压相关时间常数(tau),大约为几秒或几分之一秒。曲线gss(V)和tau(V)都可以通过两个状态模型拟合,其中速率常数是膜电位的指数函数(12-16 mV的e倍变化)。 Cl-电流受细胞内Cl-浓度变化的影响远大于仅根据Cl-驱动力变化的预测。激活的电导率和时间常数均被强烈修改。细胞外Cl-浓度的改变并不总是改变超极化激活的Cl-电流的幅度,而是系统地影响其动力学。在将细胞长时间暴露于人工海水(其中NO3-离子代替Cl-离子)以及细胞内注射NO3-离子之后,超极化激活的电流消失。增大外部pH值会使gss(V)和tau(V)曲线向左移动。降低外部pH具有相反但不太明显的作用。在未装载Cl-离子且未呈现超极化激活的Cl-电流的电池中,如果超极化跃迁之前有短的去极化脉冲,则可以检测到该电流。在装有Cl-离子的电池中,短的去极化脉冲后,Cl-电流变大。在细胞外Co2 +离子存在的情况下,去极化脉冲不再增加Cl电流。(抽象截断为400字)

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