果蝇幼虫神经肌肉接头处突触传递的电压钳分析

Bing Zhang, Bryan Stewart
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引用次数: 0

摘要

尽管细胞内记录在揭示膜电位变化方面尤为重要,但它也有一些局限性。首先,它无法提供与离子通道或突触受体有关的膜电流动力学信息,而离子通道或突触受体是导致电位变化的原因。此外,果蝇体壁肌肉的静息电位会自然变化,因此驱动力也有很大不同,这就很难准确比较微型突触电位(minis)或诱发的兴奋交界电位(EJPs)的振幅。最后,只有在非线性相加不是主要问题的低释放条件下,才能根据微型突触电位和 EJP 准确确定量子含量。随着 EJP 振幅的增加,会产生 "天花板效应",因为当电位接近谷氨酸受体/通道的反转电位时,相同数量的递质对膜去极化的效果会降低。为了克服这些限制,可以使用电压钳技术,该技术利用负反馈机制将细胞膜电位稳定在任何合理的设定点上。在电压钳模式下,可以测定膜电流的振幅和动力学。在果蝇的大幼虫肌肉细胞中,使用了双电极电压钳(TEVC)方法,其中一个电极监测细胞膜电位,另一个电极传递电流。该方案介绍了 TEVC 在利用幼虫神经肌肉接头制备分析突触电流中的应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Voltage-Clamp Analysis of Synaptic Transmission at the Drosophila Larval Neuromuscular Junction.

Although it is particularly valuable in revealing membrane potential changes, intracellular recording has a number of limitations. Primarily, it does not offer information on the kinetics of membrane currents associated with ion channels or synaptic receptors responsible for the potential change. Furthermore, the resting potential of the Drosophila body wall muscle varies naturally such that the driving force also varies considerably, making it difficult to accurately compare the amplitude of miniature synaptic potentials (minis) or evoked excitatory junction potentials (EJPs). Finally, accurate determination of quantal content based on minis and EJPs is possible only under low-release conditions when nonlinear summation is not a major issue. As the EJP amplitude increases, it creates a "ceiling effect," because the same amount of transmitter will be less effective in depolarizing the membrane when the potential is approaching the reversal potential of glutamate receptors/channels. To overcome these limitations, the voltage-clamp technique can be used, which uses negative feedback mechanisms to keep the cell membrane potential steady at any reasonable set points. In voltage-clamp mode, the amplitude and kinetics of membrane currents can be determined. In the large larval muscle cells of Drosophila, the two-electrode voltage-clamp (TEVC) method is used, in which one electrode monitors the cell membrane potential while the other electrode passes electric currents. This protocol introduces the application of TEVC in analysis of synaptic currents using the larval neuromuscular junction preparation.

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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.
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