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Biosensor microprobes with integrated microfluidic channels for bi-directional neurochemical interaction

机译:具有集成微流体通道的生物传感器微探针,用于双向神经化学相互作用

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摘要

This paper reports on silicon-based microprobes, 8 mm long and 250 μm × 250 μm cross-section, comprising four recessed biosensor microelectrodes (50 μm × 150 μm) per probe shank coated with an enzymatic layer for the selective detection of choline at multiple sites in brain tissue. Integrated in the same probe shank are up to two microfluidic channels for controlled local liquid delivery at a defined distance from the biosensor microelectrodes. State-of-the-art silicon micromachining processing was applied for reproducible fabrication of these experiment-tailored multi-functional probe arrays. Reliable electric and fluidic interconnections to the microprobes are guaranteed by a custom-made holder. The reversible packaging method implemented in this holder significantly reduces cost and assembly time and simplifies storage of the biosensor probes between consecutive experiments. The functionalization of the electrodes is carried out using electrochemically aided adsorption. This spatially controlled deposition technique enables a parallel deposition of membranes and is especially useful when working with microelectrode arrays. The achieved biosensors show adequate characteristics to detect choline in physiologically relevant concentrations at sufficient temporal and spatial resolution for brain research. Sensitivity to choline better than 10 pA μM~(-1), detection limit below 1 μM and response time of 2 s were obtained. The proposed combination of biosensors and microfluidic injectors on the same microprobe allows simultaneous chemical stimulation and recording as demonstrated in an agarose gel-based brain phantom.
机译:本文报道了基于硅的微探针,长8 mm,横截面250μm×250μm,每个探针柄包括四个凹进的生物传感器微电极(50μm×150μm),每个电极柄上都涂有酶层,可在多个位置选择性检测胆碱脑组织中的位点。集成在同一探针柄中的是多达两个微流体通道,用于在距生物传感器微电极一定的距离内控制局部液体的输送。将最新的硅微加工工艺应用于这些实验定制的多功能探针阵列的可重复制造。定制支架可确保与微探针可靠的电和流体互连。在此固定器中实施的可逆包装方法大大降低了成本和组装时间,并简化了连续实验之间生物传感器探针的存储。电极的功能化使用电化学辅助吸附进行。这种空间控制的沉积技术可实现膜的平行沉积,在使用微电极阵列时特别有用。所获得的生物传感器显示出足够的特性,可以在足够的时间和空间分辨率下以生理学相关浓度检测胆碱,以进行大脑研究。对胆碱的敏感性优于10 pAμM〜(-1),检测限低于1μM,响应时间为2 s。如在基于琼脂糖凝胶的脑模型中所展示的,将生物传感器和微流体注射器结合在一起的提议的提议允许同时进行化学刺激和记录。

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  • 来源
    《Journal of neural engineering》 |2011年第6期|p.14.1-14.9|共9页
  • 作者单位

    Sensors, Actuators and Microsystems Laboratory (SAMLAB), Institute of Microengineering (IMT), Ecole Polytechnique F6derale de Lausanne (EPFL), Neuchatel, Switzerland,Bio Engineering Laboratory, ETH Zurich, Basel, Switzerland;

    Sensors, Actuators and Microsystems Laboratory (SAMLAB), Institute of Microengineering (IMT), Ecole Polytechnique F6derale de Lausanne (EPFL), Neuchatel, Switzerland;

    Institut fiir Mikro- und Informationstechnik der Hahn-Schickard-Gesellschaft eV (HSG-IMIT), Villingen-Schwenningen, Germany;

    Laboratory for MEMS Applications, Department of Microsystems Engineering (IMTEK), University of Freiburg, Freiburg, Germany;

    Microsystem Materials Laboratory, Department of Microsystems Engineering (IMTEK), University of Freiburg, Freiburg, Germany;

    Microsystem Materials Laboratory, Department of Microsystems Engineering (IMTEK), University of Freiburg, Freiburg, Germany;

    Microsystem Materials Laboratory, Department of Microsystems Engineering (IMTEK), University of Freiburg, Freiburg, Germany;

    Institut fiir Mikro- und Informationstechnik der Hahn-Schickard-Gesellschaft eV (HSG-IMIT), Villingen-Schwenningen, Germany,Laboratory for MEMS Applications, Department of Microsystems Engineering (IMTEK), University of Freiburg, Freiburg, Germany;

    Sensors, Actuators and Microsystems Laboratory (SAMLAB), Institute of Microengineering (IMT), Ecole Polytechnique F6derale de Lausanne (EPFL), Neuchatel, Switzerland;

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