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一种基于微电极阵列的多部位刺激系统。

A system for MEA-based multisite stimulation.

作者信息

Jimbo Yasuhiko, Kasai Nahoko, Torimitsu Keiichi, Tateno Takashi, Robinson Hugh P C

机构信息

NTT Basic Research Laboratories, NTT Corporation, Kanagawa 243-0198, Japan.

出版信息

IEEE Trans Biomed Eng. 2003 Feb;50(2):241-8. doi: 10.1109/TBME.2002.805470.

Abstract

The capability for multisite stimulation is one of the biggest potential advantages of microelectrode arrays (MEAs). There remain, however, several technical problems which have hindered the development of a practical stimulation system. An important design goal is to allow programmable multisite stimulation, which produces minimal interference with simultaneous extracellular and patch or whole cell clamp recording. Here, we describe a multisite stimulation and recording system with novel interface circuit modules, in which preamplifiers and transistor transistor logic-driven solid-state switching devices are integrated. This integration permits PC-controlled remote switching of each substrate electrode. This allows not only flexible selection of stimulation sites, but also rapid switching of the selected sites between stimulation and recording, within 1.2 ms. This allowed almost continuous monitoring of extracellular signals at all the substrate-embedded electrodes, including those used for stimulation. In addition, the vibration-free solid-state switching made it possible to record whole-cell synaptic currents in one neuron, evoked from multiple sites in the network. We have used this system to visualize spatial propagation patterns of evoked responses in cultured networks of cortical neurons. This MEA-based stimulation system is a useful tool for studying neuronal signal processing in biological neuronal networks, as well as the process of synaptic integration within single neurons.

摘要

多部位刺激能力是微电极阵列(MEA)最大的潜在优势之一。然而,仍然存在几个技术问题阻碍了实用刺激系统的发展。一个重要的设计目标是实现可编程多部位刺激,使其对同时进行的细胞外记录以及膜片钳或全细胞钳记录产生的干扰最小。在此,我们描述一种具有新型接口电路模块的多部位刺激和记录系统,其中集成了前置放大器和晶体管 - 晶体管逻辑驱动的固态开关器件。这种集成允许通过计算机控制对每个基底电极进行远程切换。这不仅允许灵活选择刺激部位,还能在1.2毫秒内将选定部位在刺激和记录之间快速切换。这使得几乎可以对所有嵌入基底的电极处的细胞外信号进行连续监测,包括那些用于刺激的电极。此外,无振动的固态开关使得能够记录由网络中多个部位诱发的单个神经元中的全细胞突触电流。我们已使用该系统来可视化培养的皮质神经元网络中诱发反应的空间传播模式。这种基于MEA的刺激系统是研究生物神经元网络中神经元信号处理以及单个神经元内突触整合过程的有用工具。

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