Suppr超能文献

单微电极电压钳制

Voltage clamping with a single microelectrode.

作者信息

Wilson W A, Goldner M M

出版信息

J Neurobiol. 1975 Jul;6(4):411-22. doi: 10.1002/neu.480060406.

Abstract

A technique is described which allows neurons to be voltage clamped with a single microelectrode, and the advantages of this circuit with respect to conventional bridge techniques are discussed. In this circuit, the single microelectrode is rapidly switched from a current passing to a recording mode. The circuitry consists of: (1) an electronic switch; (2) a high impedance, ultralow input capacity amplifier; (3) a sample-and-hold module; (4) conventional voltage clamping circuitry. The closed electronic switch allows current to flow through the electrode. The switch then opens, and the electrode is in a recording mode. The low input capacity of the preamplifier allows the artifact from the current pulse to rapidly abate, after which time the circuit samples the membrane potential. This cycle is repeated at rates up to 10 kHz. The voltage clamping amplifier senses the output of the sample-and-hold module and adjusts the current pulse amplitude to maintain the desired membrane potential. The system was evaluated in Aplysia neurons by inserting two microelectrodes into a cell. One electrode was used to clamp the cell and the other to independently monitor membrane potential at a remote location in the soma.

摘要

本文描述了一种使用单个微电极对神经元进行电压钳制的技术,并讨论了该电路相对于传统桥式技术的优势。在该电路中,单个微电极可快速从电流通过模式切换到记录模式。该电路由以下部分组成:(1)一个电子开关;(2)一个高阻抗、超低输入电容放大器;(3)一个采样保持模块;(4)传统的电压钳制电路。闭合的电子开关允许电流通过电极。然后开关打开,电极进入记录模式。前置放大器的低输入电容使电流脉冲产生的伪迹迅速衰减,之后电路对膜电位进行采样。这个循环以高达10kHz的速率重复。电压钳制放大器感测采样保持模块的输出,并调整电流脉冲幅度以维持所需的膜电位。通过将两个微电极插入细胞,在海兔神经元中对该系统进行了评估。一个电极用于钳制细胞,另一个用于在胞体的远程位置独立监测膜电位。

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验