Electrophysiological Recording from a "Model" Cell.

Bing Zhang, Bryan Stewart
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Abstract

The muscle cell or neuron membrane is functionally equivalent to a resistor-capacitor (RC) circuit with the membrane resistance and capacitor in parallel. Once inserted inside the membrane, an electrode introduces a serial resistance and small capacitance to the RC circuit. Through a narrow opening at its tip (∼0.1-μm), current can pass through the electrode, into the cell, and back to the outside (ground) across the membrane to complete the circuit. This arrangement enables a voltage difference between the outside and inside of the cell membrane to be recorded. To determine cell membrane properties, a current can be injected into the cell through the electrode. One complication with this approach, however, is that the voltage difference measured with the electrode includes the voltage drop across the cell membrane and that across the electrode. Furthermore, a small amount of current is drawn by the electrode capacitor, thereby slowing the current flow across the membrane. Fortunately, most amplifiers are equipped with bridge balance and capacitance compensation functions so that the effects of the electrode on cell membrane properties can be canceled out or minimized. This protocol describes the basics of setting up and conducting electrophysiological experiments using a model cell. For the novice, a model cell provides a way to learn the operation of electrophysiology equipment and software without the anxiety of damaging living cells. This protocol also illustrates passive membrane properties such as the input resistance, capacitance, and time constant.

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模型 "细胞的电生理记录
肌肉细胞或神经元膜在功能上等同于电阻电容(RC)电路,膜电阻和电容并联。电极一旦插入膜内,就会给 RC 电路带来串联电阻和微小电容。通过电极顶端的一个狭窄开口(0.1-μm),电流可以穿过电极,进入细胞,然后穿过膜回到外部(接地),完成电路。这种排列方式可记录细胞膜内外的电压差。为确定细胞膜特性,可通过电极向细胞内注入电流。不过,这种方法的一个复杂问题是,用电极测量的电压差包括细胞膜上的电压降和电极上的电压降。此外,电极电容会消耗少量电流,从而减慢跨膜电流。幸运的是,大多数放大器都配备了电桥平衡和电容补偿功能,因此可以抵消或尽量减少电极对细胞膜特性的影响。本规程介绍了使用模型细胞设置和进行电生理实验的基础知识。对于新手来说,模型细胞提供了一种学习电生理设备和软件操作的方法,而不必担心损坏活细胞。本程序还说明了输入电阻、电容和时间常数等被动膜特性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Cold Spring Harbor protocols
Cold Spring Harbor protocols Biochemistry, Genetics and Molecular Biology-Biochemistry, Genetics and Molecular Biology (all)
CiteScore
3.00
自引率
0.00%
发文量
163
期刊介绍: Cold Spring Harbor Laboratory is renowned for its teaching of biomedical research techniques. For decades, participants in its celebrated, hands-on courses and users of its laboratory manuals have gained access to the most authoritative and reliable methods in molecular and cellular biology. Now that access has moved online. Cold Spring Harbor Protocols is an interdisciplinary journal providing a definitive source of research methods in cell, developmental and molecular biology, genetics, bioinformatics, protein science, computational biology, immunology, neuroscience and imaging. Each monthly issue details multiple essential methods—a mix of cutting-edge and well-established techniques.
期刊最新文献
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