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记录的神经元结构较小限制了直接轴突电压测量的准确性。

Small Size of Recorded Neuronal Structures Confines the Accuracy in Direct Axonal Voltage Measurements.

机构信息

Laboratory of Cellular Neuropharmacology, Institute of Experimental Medicine, H-1083, Budapest, Hungary.

János Szentágothai School of Neurosciences, Semmelweis University, H-1085, Budapest, Hungary.

出版信息

eNeuro. 2021 Aug 3;8(4). doi: 10.1523/ENEURO.0059-21.2021. Print 2021 Jul-Aug.

Abstract

Patch-clamp instruments including amplifier circuits and pipettes affect the recorded voltage signals. We hypothesized that realistic and complete representation of recording instruments together with detailed morphology and biophysics of small recorded structures will reveal signal distortions and provide a tool that predicts native, instrument-free electrical signals from distorted voltage recordings. Therefore, we built a model that was verified by small axonal recordings. The model accurately recreated actual action potential (AP) measurements with typical recording artefacts and predicted the native electrical behavior. The simulations verified that recording instruments substantially filter voltage recordings. Moreover, we revealed that instrumentation directly interferes with local signal generation depending on the size of the recorded structures, which complicates the interpretation of recordings from smaller structures, such as axons. However, our model offers a straightforward approach that predicts the native waveforms of fast voltage signals and the underlying conductances even from the smallest neuronal structures.

摘要

膜片钳仪器包括放大器电路和吸管,会影响记录的电压信号。我们假设,对记录仪器进行逼真且完整的表示,以及对小记录结构的详细形态和生物物理学进行表示,将揭示信号的扭曲,并提供一种工具,可从扭曲的电压记录中预测出原生、无仪器的电信号。因此,我们构建了一个模型,该模型通过小轴突记录得到了验证。该模型准确地重现了具有典型记录伪影的实际动作电位 (AP) 测量值,并预测了原生电特性。模拟验证了记录仪器会对电压记录进行实质性滤波。此外,我们发现,记录仪器会根据记录结构的大小直接干扰局部信号的产生,这使得对较小结构(如轴突)的记录的解释变得复杂。但是,我们的模型提供了一种简单的方法,可以预测原生快速电压信号的波形和基础电导率,即使是来自最小的神经元结构。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d2e2/8342265/ee7c0d4534e6/ENEURO.0059-21.2021_f001.jpg

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