A CMOS IC-based multisite measuring system for stimulation and recording in neural preparations in vitro.

Frontiers in neuroengineering Pub Date : 2014-10-10 eCollection Date: 2014-01-01 DOI:10.3389/fneng.2014.00039
Takashi Tateno, Jun Nishikawa
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引用次数: 14

Abstract

In this report, we describe the system integration of a complementary metal oxide semiconductor (CMOS) integrated circuit (IC) chip, capable of both stimulation and recording of neurons or neural tissues, to investigate electrical signal propagation within cellular networks in vitro. The overall system consisted of three major subunits: a 5.0 × 5.0 mm CMOS IC chip, a reconfigurable logic device (field-programmable gate array, FPGA), and a PC. To test the system, microelectrode arrays (MEAs) were used to extracellularly measure the activity of cultured rat cortical neurons and mouse cortical slices. The MEA had 64 bidirectional (stimulation and recording) electrodes. In addition, the CMOS IC chip was equipped with dedicated analog filters, amplification stages, and a stimulation buffer. Signals from the electrodes were sampled at 15.6 kHz with 16-bit resolution. The measured input-referred circuitry noise was 10.1 μ V root mean square (10 Hz to 100 kHz), which allowed reliable detection of neural signals ranging from several millivolts down to approximately 33 μ Vpp. Experiments were performed involving the stimulation of neurons with several spatiotemporal patterns and the recording of the triggered activity. An advantage over current MEAs, as demonstrated by our experiments, includes the ability to stimulate (voltage stimulation, 5-bit resolution) spatiotemporal patterns in arbitrary subsets of electrodes. Furthermore, the fast stimulation reset mechanism allowed us to record neuronal signals from a stimulating electrode around 3 ms after stimulation. We demonstrate that the system can be directly applied to, for example, auditory neural prostheses in conjunction with an acoustic sensor and a sound processing system.

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基于CMOS集成电路的体外神经制剂刺激和记录多位点测量系统。
在本报告中,我们描述了互补金属氧化物半导体(CMOS)集成电路(IC)芯片的系统集成,能够刺激和记录神经元或神经组织,以研究体外细胞网络中的电信号传播。整个系统由三个主要子单元组成:5.0 × 5.0 mm CMOS IC芯片,可重构逻辑器件(现场可编程门阵列,FPGA)和PC机。为验证该系统,采用微电极阵列(MEAs)对培养的大鼠皮层神经元和小鼠皮层切片进行细胞外活性测定。MEA有64个双向(刺激和记录)电极。此外,CMOS IC芯片配备了专用的模拟滤波器、放大级和刺激缓冲器。来自电极的信号以15.6 kHz采样,分辨率为16位。测量的输入参考电路噪声为10.1 μ V均方根(10 Hz至100 kHz),可以可靠地检测从几毫伏到大约33 μ Vpp的神经信号。实验包括用几种时空模式刺激神经元,并记录触发的活动。正如我们的实验所证明的那样,与电流mea相比,其优势包括能够在任意电极子集中刺激(电压刺激,5位分辨率)时空模式。此外,快速刺激复位机制使我们能够在刺激后约3ms记录来自刺激电极的神经元信号。我们证明,该系统可以直接应用于听觉神经假体,例如,与声学传感器和声音处理系统相结合。
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