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用于在急性脑切片中记录和电刺激神经活动的密集微针阵列。

Dense arrays of micro-needles for recording and electrical stimulation of neural activity in acute brain slices.

机构信息

IOP, University of Strathclyde, Glasgow G4 0NW, UK.

出版信息

J Neural Eng. 2013 Feb;10(1):016007. doi: 10.1088/1741-2560/10/1/016007. Epub 2012 Dec 12.

Abstract

OBJECTIVE

This paper describes the design, microfabrication, electrical characterization and biological evaluation of a high-density micro-needle array. The array records from and electrically stimulates individual neurons simultaneously in acute slices of brain tissue.

APPROACH

Acute slices, arguably the closest in-vitro model of the brain, have a damaged surface layer. Since electrophysiological recording methods rely heavily on electrode-cell proximity, this layer significantly attenuates the signal amplitude making the use of traditional planar electrodes unsuitable. To penetrate into the tissue, bypassing the tissue surface, and to record and stimulate neural activity in the healthy interior volume of the slice, an array of 61 micro-needles was fabricated.

MAIN RESULTS

This device is shown to record extracellular action potentials from individual neurons in acute cortical slices with a signal to noise ratio of up to ∼15:1. Electrical stimulation of individual neurons is achieved with stimulation thresholds of 1.1-2.9 µA.

SIGNIFICANCE

The novelty of this system is the combination of close needle spacing (60 µm), needle heights of up to 250 µm and small (5-10 µm diameter) electrodes allowing the recording of single unit activity. The array is coupled to a custom-designed readout system forming a powerful electrophysiological tool that permits two-way electrode-cell communication with populations of neurons in acute brain slices.

摘要

目的

本文描述了高密度微针阵列的设计、微制造、电特性和生物学评估。该阵列可在脑组织的急性切片中同时记录和电刺激单个神经元。

方法

急性切片可以说是最接近大脑的体外模型,但它有一层受损的表面。由于电生理记录方法严重依赖于电极-细胞的接近程度,因此这一层显著衰减了信号幅度,使得传统的平面电极不适用。为了穿透组织,绕过组织表面,并在切片的健康内部区域记录和刺激神经活动,我们制造了一个由 61 个微针组成的阵列。

主要结果

该设备能够从急性皮质切片中的单个神经元记录到具有高达约 15:1 的信噪比的细胞外动作电位。通过施加 1.1-2.9 µA 的刺激阈值,实现了对单个神经元的电刺激。

意义

该系统的新颖之处在于针的间距小(60 µm)、针的高度高达 250 µm 以及小直径的电极(5-10 µm)相结合,允许记录单个单元活动。该阵列与定制的读出系统相结合,形成了一种强大的电生理工具,允许与急性脑切片中的神经元群体进行双向电极-细胞通信。

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