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Impact of open surface area of Multi-Well Microelectrode Array on mammalian brain cells recording efficiency

机译:多孔微电极阵列开放表面积对哺乳动物脑细胞记录效率的影响

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Neuro-electrophysiology allows scientists to investigate the underlying electrical properties that constitute brain neuralnetwork assembly. Developing tools to study these properties is a rapidly-evolving research field, and recentadvancements in micro electrode arrays (MEAs) is opening a new frontier in long-term data acquisition. MEAmicrofabrication techniques have advanced over the years and led to different types of electrodes. The objective of thisstudy was to optimize MEA design featuring multiple wells per electrodes (MW-MEA), to improve the recordingefficiency of MEAs used for in vitro electrophysiological recordings. Methods: Two multi-well electrode designs (5wells with diameter of 20 μm vs. 6 wells with diameter of 15 μm) were evaluated. Peak to peak signal amplitude of therecorded signals and the noise levels were studied and the signal to noise ratios (SNR) were determined. Results: Thesignal amplitudes recorded by electrodes with 6 wells (1060.3 μm~2) was higher than those recorded by 5-wells electrodes(1570.8 μm~2), while the noise level remained identical in both designs (31.3 μv ± 10.2). As such, the SNR recorded bythe 6-wells electrodes showed a 1.8-time increase, compared to the electrodes with 5 wells, although the diameter of thewells in the former design was smaller. The results of this study demonstrated an inverse relation between SNR and opensurface area of electrodes. Significance: The identified relation between electrode well characteristics and MW-MEAperformance and design optimization can improve signals’ resolution during long-term spontaneous extracellularrecordings and thus the quality of brain cell activity recordings.
机译:神经电生理允许科学家探讨构成脑神经网络的潜在的电气性质网络组装。开发学习的工具这些属性是一种快速发展的研究领域,最近微电极阵列(MEAS)的进步在长期数据采集中打开新的前沿。 m多年来微型制造技术已经前进,导致了不同类型的电极。这个目标研究是优化MEA设计,每个电极(MW-MEA)具有多个井(MW-MEA),以改善录制用于体外电生理记录的测量效率。方法:两个多孔电极设计(5评价直径为20μm的孔,直径为15μm)。峰值峰值信号幅度研究了记录的信号和噪声水平,并确定了对噪声比(SNR)的信号。结果:由具有6个孔(1060.3μm〜2)的电极记录的信号幅度高于5孔电极记录的电极(1570.8μm〜2),噪音水平在设计中保持相同(31.3μV±10.2)。因此,SNR记录与带有5个井的电极相比,6孔电极显示为1.8次增加,尽管直径前面设计中的井更小。本研究的结果展示了SNR和开放之间的反向关系电极表面积。意义:电极井特征与MW-MEA之间的确定关系性能和设计优化可以改善长期自发细胞外的信号分辨率录音,从而质量脑细胞活动记录。

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