Multichannel Cell Detection in Microcompartments by Means of True Parallel Measurements using the Solartron S-1260.

Q3 Biochemistry, Genetics and Molecular Biology
Journal of Electrical Bioimpedance Pub Date : 2020-07-24 eCollection Date: 2020-01-01 DOI:10.2478/joeb-2020-0008
T A Nguyen, D Echtermeyer, A Barthel, G Urban, U Pliquett
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引用次数: 1

Abstract

Designing proper frontend electronics is critical in the development of highly sophisticated electrode systems. Multielectrode arrays for measuring electrical signals or impedance require multichannel readout systems. Even more challenging is the differential or ratiometric configuration with simultaneous assessment of measurement and reference channels. In this work, an eight-channel frontend was developed for contacting a 2×8 electrode array (8 measurement and 8 reference electrodes) with a large common electrode to the impedance gain-phase analyzer Solartron 1260 (S-1260). Using the three independent and truly parallel monitor channels of the S-1260, impedance of trapped cells and reference material was measured at the same time, thereby considerably increasing the performance of the device. The frontend electronics buffers the generator output and applies a potentiostatic signal to the common electrode of the chip. The applied voltage is monitored using the current monitor of the S-1260 via voltage/current conversion. The frontend monitors the current through the electrodes and converts it to a voltage fed into the voltage monitors of the S-1260. For assessment of the 8 electrode pairs featured by the chip, a relay-based multiplexer was implemented. Extensive characterization and calibration of the frontend were carried out in a frequency range between 100 Hz and 1 MHz. Investigating the influence of the multiplexer and the frontend electronics, direct measurement with and without frontend was compared. Although differences were evident, they have been negligible below one per cent. The significance of measurement using the complex S-1260-frontend-electrode was tested using Kohlrausch's law. The impedance of an electrolytic dilution series was measured and compared to the theoretical values. The coincidence of measured values and theoretical prediction serves as an indicator for electrode sensitivity to cell behavior. Monitoring of cell behavior on the microelectrode surface will be shown as an example.

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Abstract Image

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使用Solartron S-1260进行真正平行测量的微室多通道细胞检测。
设计合适的前端电子器件对于开发高度复杂的电极系统至关重要。用于测量电信号或阻抗的多电极阵列需要多通道读出系统。更具挑战性的是同时评估测量和参考通道的微分或比率配置。在这项工作中,开发了一个八通道前端,用于将2×8电极阵列(8个测量电极和8个参考电极)与阻抗增益相位分析仪Solartron 1260 (S-1260)的大公共电极连接。利用S-1260的三个独立且真正并行的监测通道,同时测量捕获细胞和参考物质的阻抗,从而大大提高了器件的性能。前端电子器件缓冲发电机输出并向芯片的公共电极施加恒电位信号。通过电压/电流转换,使用S-1260的电流监视器监测施加的电压。前端监控通过电极的电流,并将其转换为电压馈入S-1260的电压监测器。为了评估芯片所具有的8对电极,实现了基于继电器的多路复用器。在100 Hz和1 MHz之间的频率范围内对前端进行了广泛的表征和校准。研究了多路复用器和前端电子器件的影响,比较了有前端和没有前端的直接测量结果。虽然差异很明显,但它们在1%以下可以忽略不计。使用复合s -1260前端电极进行测量的重要性是使用Kohlrausch定律进行测试的。测量了电解稀释系列的阻抗,并与理论值进行了比较。测量值和理论预测的一致性可以作为电极对细胞行为灵敏度的指标。在微电极表面监测细胞行为将作为一个例子。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Electrical Bioimpedance
Journal of Electrical Bioimpedance Engineering-Biomedical Engineering
CiteScore
3.00
自引率
0.00%
发文量
8
审稿时长
17 weeks
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