Suppr超能文献

体外高密度微电极阵列系统的刺激和伪影抑制技术。

Stimulation and Artifact-Suppression Techniques for In Vitro High-Density Microelectrode Array Systems.

出版信息

IEEE Trans Biomed Eng. 2019 Sep;66(9):2481-2490. doi: 10.1109/TBME.2018.2890530. Epub 2019 Jan 1.

Abstract

We present novel voltage stimulation buffers with controlled output current, along with recording circuits featuring adjustable high-pass cut-off filtering to perform efficient stimulation while actively suppressing stimulation artifacts in high-density microelectrode arrays. Owing to the dense packing and close proximity of the electrodes in such systems, a stimulation through one electrode can cause large electrical artifacts on neighboring electrodes that easily saturate the corresponding recording amplifiers. To suppress such artifacts, the high-pass corner frequencies of all available 2048 recording channels can be raised from several Hz to several kHz by applying a "soft-reset" or pole-shifting technique. With the implemented artifact suppression technique, the saturation time of the recording circuits, connected to electrodes in immediate vicinity to the stimulation site, could be reduced to less than 150 μs. For the stimulation buffer, we developed a circuit, which can operate in two modes: either control of only the stimulation voltage or control of current and voltage during stimulation. The voltage-only controlled mode employs a local common-mode feedback operational transconductance amplifier with a near rail-to-rail input/output range, suitable for driving high-capacitive loads. The current/voltage controlled mode is based on a positive current conveyor generating adjustable output currents, whereas its upper and lower output voltages are limited by two feedback loops. The current/voltage controlled circuit can generate stimulation pulses up to 30 μA with less than ±0.1% linearity error in the low-current mode and up to 300 μA with less than ±0.2% linearity error in the high-current mode.

摘要

我们提出了具有可控输出电流的新型电压刺激缓冲器,以及具有可调高通截止滤波的记录电路,可在高效刺激的同时主动抑制高密度微电极阵列中的刺激伪影。由于此类系统中的电极密集包装且接近,一个电极的刺激会导致相邻电极上产生大的电伪影,很容易使相应的记录放大器饱和。为了抑制这种伪影,可以通过应用“软复位”或极点移位技术将所有可用的 2048 个记录通道的高通截止频率从几赫兹提高到几千赫兹。通过实现的伪影抑制技术,与刺激部位附近电极相连的记录电路的饱和时间可以减少到 150μs 以下。对于刺激缓冲器,我们开发了一种电路,该电路可以在两种模式下工作:仅控制刺激电压或在刺激期间控制电流和电压。仅电压控制模式采用具有接近轨到轨输入/输出范围的局部共模反馈运算跨导放大器,适用于驱动高电容负载。电流/电压控制模式基于产生可调输出电流的正电流传输器,而其上下输出电压由两个反馈环路限制。电流/电压控制电路可以在低电流模式下产生高达 30μA 的刺激脉冲,线性误差小于±0.1%,在高电流模式下产生高达 300μA 的刺激脉冲,线性误差小于±0.2%。

相似文献

1
Stimulation and Artifact-Suppression Techniques for In Vitro High-Density Microelectrode Array Systems.
IEEE Trans Biomed Eng. 2019 Sep;66(9):2481-2490. doi: 10.1109/TBME.2018.2890530. Epub 2019 Jan 1.
3
A 64-channel ASIC for in-vitro simultaneous recording and stimulation of neurons using microelectrode arrays.
Annu Int Conf IEEE Eng Med Biol Soc. 2007;2007:6070-3. doi: 10.1109/IEMBS.2007.4353733.
4
A CMOS-based microelectrode array for interaction with neuronal cultures.
J Neurosci Methods. 2007 Aug 15;164(1):93-106. doi: 10.1016/j.jneumeth.2007.04.006. Epub 2007 Apr 19.
6
A system for neural recording and closed-loop intracortical microstimulation in awake rodents.
IEEE Trans Biomed Eng. 2009 Jan;56(1):15-22. doi: 10.1109/TBME.2008.2005944.
7
Review of signal distortion through metal microelectrode recording circuits and filters.
J Neurosci Methods. 2008 Mar 30;169(1):141-57. doi: 10.1016/j.jneumeth.2007.12.010. Epub 2008 Feb 1.
8
CMOS microelectrode array for the monitoring of electrogenic cells.
Biosens Bioelectron. 2004 Sep 15;20(2):358-66. doi: 10.1016/j.bios.2004.02.006.
9
A system for MEA-based multisite stimulation.
IEEE Trans Biomed Eng. 2003 Feb;50(2):241-8. doi: 10.1109/TBME.2002.805470.
10
High-frequency electrical stimulation of cardiac cells and application to artifact reduction.
IEEE Trans Biomed Eng. 2012 May;59(5):1381-90. doi: 10.1109/TBME.2012.2188136. Epub 2012 Feb 15.

引用本文的文献

2
Anti-artifacts techniques for neural recording front-ends in closed-loop brain-machine interface ICs.
Front Neurosci. 2024 May 9;18:1393206. doi: 10.3389/fnins.2024.1393206. eCollection 2024.
4
Programmable Electrochemical Stimulation on a Large-Scale CMOS Microelectrode Array.
IEEE Biomed Circuits Syst Conf. 2022 Oct;2022:439-443. doi: 10.1109/biocas54905.2022.9948674. Epub 2022 Nov 16.
5
Thermoplastic microfluidic bioreactors with integrated electrodes to study tumor treating fields on yeast cells.
Biomicrofluidics. 2020 May 18;14(3):034104. doi: 10.1063/5.0008462. eCollection 2020 May.

本文引用的文献

1
2
2048 Action Potential Recording Channels with 2.4 µVrms Noise and Stimulation Artifact Suppression.
IEEE Biomed Circuits Syst Conf. 2017 Jan 26;2016:136-139. doi: 10.1109/BioCAS.2016.7833750.
3
Recovery of early neural spikes from stimulation electrodes using a DC-coupled low gain high resolution data acquisition system.
J Neurosci Methods. 2018 Jul 1;304:118-125. doi: 10.1016/j.jneumeth.2018.04.014. Epub 2018 Apr 27.
4
Electrical stimulus artifact cancellation and neural spike detection on large multi-electrode arrays.
PLoS Comput Biol. 2017 Nov 13;13(11):e1005842. doi: 10.1371/journal.pcbi.1005842. eCollection 2017 Nov.
6
Activation of ganglion cells and axon bundles using epiretinal electrical stimulation.
J Neurophysiol. 2017 Sep 1;118(3):1457-1471. doi: 10.1152/jn.00750.2016. Epub 2017 May 31.
7
A 1024-Channel CMOS Microelectrode Array With 26,400 Electrodes for Recording and Stimulation of Electrogenic Cells In Vitro.
IEEE J Solid-State Circuits. 2014 Nov;49(11):2705-2719. doi: 10.1109/JSSC.2014.2359219.
8
CMOS nanoelectrode array for all-electrical intracellular electrophysiological imaging.
Nat Nanotechnol. 2017 May;12(5):460-466. doi: 10.1038/nnano.2017.3. Epub 2017 Feb 13.
10
A programmable high-voltage compliance neural stimulator for deep brain stimulation in vivo.
Sensors (Basel). 2015 May 28;15(6):12700-19. doi: 10.3390/s150612700.

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验