arrow
返回

BioMEA™: A versatile high-density 3D microelectrode array system using integrated electronics

delete2010-04-15
delete60
PRE
AI
G
Guillaume Charvet
L
Lionel Rousseau
O
Olivier Billoint
S
Sadok Gharbi
J
Jean-Pierre Rostaing
S
Sébastien Joucla
M
Michel Trevisiol
A
Alain Bourgerette
P
Philippe Chauvet
C
Céline Moulin
F
F. Goy
B
Bruno Mercier
M
Mikaël Colin
S
S. Spirkovitch
H
Hervé Fanet
P
Pierre Meyrand
R
R. Guillemaud
B
Blaise Yvert *
DOI:10.1016/j.bios.2010.01.001delete
delete原文链接
delete原文求助
delete分享
delete收藏
摘要

摘要

En 中文
Microelectrode arrays (MEAs) offer a powerful tool to both record activity and deliver electrical microstimulations to neural networks either in vitro or in vivo. Microelectronics microfabrication technologies now allow building high-density MEAs containing several hundreds of microelectrodes. However, dense arrays of 3D micro-needle electrodes, providing closer contact with the neural tissue than planar electrodes, are not achievable using conventional isotropic etching processes. Moreover, increasing the number of electrodes using conventional electronics is difficult to achieve into compact devices addressing all channels independently for simultaneous recording and stimulation. Here, we present a full modular and versatile 256-channel MEA system based on integrated electronics. First, transparent high-density arrays of 3D-shaped microelectrodes were realized by deep reactive ion etching techniques of a silicon substrate reported on glass. This approach allowed achieving high electrode aspect ratios, and different shapes of tip electrodes. Next, we developed a dedicated analog 64-channel Application Specific Integrated Circuit (ASIC) including one amplification stage and one current generator per channel, and analog output multiplexing. A full modular system, called BIOMEA (TM), has been designed, allowing connecting different types of MEAs (64, 128, or 256 electrodes) to different numbers of ASICs for simultaneous recording and/or stimulation on all channels. Finally, this system has been validated experimentally by recording and electrically eliciting low-amplitude spontaneous rhythmic activity (both LFPs and spikes) in the developing mouse CNS. The availability of high-density MEA systems with integrated electronics will offer new possibilities for both in vitro and in vivo studies of large neural networks. (c) 2010 Elsevier B.V. All rights reserved.
Keyword:
Neural networks
Extracellular electrophysiological recording
Electrical microstimulation
ASIC
Implants
Neural prosthesis

期刊

Biosensors and Bioelectronics 封面图
Biosensors and Bioelectronics
IF:
10.5
论文数:
1.8W
被引数:
7.7W

机构

U
universite de bordeaux
学者数:
2.7W
论文数: 1.9W
被引数: 37
C
centre national de la recherche scientifique (cnrs)
学者数:
24.5W
论文数: 18.2W
被引数: 279
U
universite gustave-eiffel
学者数:
5.6K
论文数: 4.8K
被引数: 5
C
CEA
学者数:
3.5W
论文数: 2.3W
被引数: 62
ESIEE Paris 封面图
ESIEE Paris
学者数:
190
论文数: 145
被引数: 68
学者 查看更多机构
引用论文

引用论文

暂无论文信息