杆响应的光、电压和时间依赖分量。

Sensory processes Pub Date : 1978-12-01
F S Werblin
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引用次数: 0

摘要

单个视杆细胞与视网膜物理分离。由于这些棒是等电位的,并且与网络不耦合,因此可以测量棒膜上的光和电压相关的电阻变化。研究表明,光响应的反转电位接近0 mV。在反应开始时的超极化超调持续存在,即使在棒被电流超极化的情况下,这表明超调是电压而不是光相关的事件。在浸泡介质中没有钠的情况下,超调在-75 mV附近极性反转,并与电阻增加有关,这表明它是由钾的电压依赖性失活介导的。强外向整风被TEA阻碍;向内整流被铯阻挡,这表明钾电导的另外两个电压依赖性变化。在电压箝位下,当电极棒先前去极化时,在暗电位水平出现负电阻区域。讨论了产生负电阻的可能机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Light, voltage, and time-dependent components of the rod response.

Individual rods were physically isolated from the retina. Since these rods are isopotential and uncoupled from the network, measurements of light- and voltage-dependent changes in resistance at the rod membrane can be obtained. The studies show that the reversal potential for the light response is near 0 mV. The hyperpolarizing overshoot at the onset of the response persists even when the rod is hyperpolzrized with current, suggesting that the overshoot is a voltage-rather than light-dependent event. In the absence of sodium in the bathing medium, the overshoot reverses polarity near--75 mV and is associated with an increase in resistance, suggesting that it is mediated by a voltage-dependent inactivation of potassium. Strong outward rectification is blocked by TEA; inward rectification is blocked by cesium, suggesting two other voltage-dependent changes in potassium conductance. Under voltage clamp a region of negative resistance appears at the dark potential level when the rod has been previously depolarized. The possible mechanisms for negative resistance are discussed.

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