高频开关模式刺激可引起小脑主神经元突触后反应。

Frontiers in neuroengineering Pub Date : 2015-03-06 eCollection Date: 2015-01-01 DOI:10.3389/fneng.2015.00002
Marijn N van Dongen, Freek E Hoebeek, S K E Koekkoek, Chris I De Zeeuw, Wouter A Serdijn
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引用次数: 10

摘要

本文研究了高频切换模式神经刺激的效果。而不是使用恒定的刺激幅度,刺激是用高频(高达100 kHz)占空比信号反复打开和关闭。通过组织模型(包括组织材料和轴突膜的动态特性),首次表明开关模式刺激以与经典恒振幅刺激相似的方式使细胞膜去极化。这些发现随后通过体外实验得到验证,在实验中,由于小鼠小脑分子层的刺激信号,浦肯野细胞的反应被测量。为此目的,开发了一种能够产生单相高频开关模式刺激信号的刺激电路。结果证实了模型,表明开关模式刺激能够在浦肯野细胞中引起与使用恒流源的经典刺激相似的反应。这一结论开辟了新的刺激设计的可能性,可以提高刺激电路的性能。必须小心避免由于较高的工作频率在系统中造成损失。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

High frequency switched-mode stimulation can evoke post synaptic responses in cerebellar principal neurons.

High frequency switched-mode stimulation can evoke post synaptic responses in cerebellar principal neurons.

High frequency switched-mode stimulation can evoke post synaptic responses in cerebellar principal neurons.

High frequency switched-mode stimulation can evoke post synaptic responses in cerebellar principal neurons.

This paper investigates the efficacy of high frequency switched-mode neural stimulation. Instead of using a constant stimulation amplitude, the stimulus is switched on and off repeatedly with a high frequency (up to 100 kHz) duty cycled signal. By means of tissue modeling that includes the dynamic properties of both the tissue material as well as the axon membrane, it is first shown that switched-mode stimulation depolarizes the cell membrane in a similar way as classical constant amplitude stimulation. These findings are subsequently verified using in vitro experiments in which the response of a Purkinje cell is measured due to a stimulation signal in the molecular layer of the cerebellum of a mouse. For this purpose a stimulator circuit is developed that is able to produce a monophasic high frequency switched-mode stimulation signal. The results confirm the modeling by showing that switched-mode stimulation is able to induce similar responses in the Purkinje cell as classical stimulation using a constant current source. This conclusion opens up possibilities for novel stimulation designs that can improve the performance of the stimulator circuitry. Care has to be taken to avoid losses in the system due to the higher operating frequency.

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