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用于单细胞电阻抗谱和电化学分析的多层微机电系统平台

A Multilayer MEMS Platform for Single-Cell Electric Impedance Spectroscopy and Electrochemical Analysis.

作者信息

Dittami Gregory M, Ayliffe H Edward, King Curtis S, Rabbitt Richard D

机构信息

G. M. Dittami and R. D. Rabbitt are with the Department of Bioengineering, University of Utah, Salt Lake City, UT 84112 USA (email:

出版信息

J Microelectromech Syst. 2008 Aug 1;17(4):850-862. doi: 10.1109/JMEMS.2008.921726.

DOI:10.1109/JMEMS.2008.921726
PMID:19756255
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC2743150/
Abstract

The fabrication and characterization of a microchamber electrode array for electrical and electrochemical studies of individual biological cells are presented. The geometry was tailored specifically for measurements from sensory hair cells isolated from the cochlea of the mammalian inner ear. Conventional microelectromechanical system (MEMS) fabrication techniques were combined with a heat-sealing technique and polydimethylsiloxane micromolding to achieve a multilayered microfluidic system that facilitates cell manipulation and selection. The system allowed for electrical stimulation of individual living cells and interrogation of excitable cell membrane dielectric properties as a function of space and time. A three-electrode impedimetric system was incorporated to provide the additional ability to record the time-dependent concentrations of specific biochemicals in microdomain volumes near identified regions of the cell membrane. The design and fabrication of a robust fluidic and electrical interface are also described. The interface provided the flexibility and simplicity of a "cartridge-based" approach in connecting to the MEMS devices. Cytometric measurement capabilities were characterized by using electric impedance spectroscopy (1 kHz-10 MHz) of isolated outer hair cells. Chemical sensing capability within the microchannel recording chamber was characterized by using cyclic voltammetry with varying concentrations of potassium ferricyanide (K(3)Fe(CN)(6)). Chronoamperometric recordings of electrically stimulated PC12 cells highlight the ability of the platform to resolve exocytosis events from individual cells.

摘要

本文介绍了一种用于单个生物细胞电学和电化学研究的微腔电极阵列的制备及其特性。该微腔的几何形状是专门为从哺乳动物内耳耳蜗分离出的感觉毛细胞的测量而定制的。传统的微机电系统(MEMS)制造技术与热封技术和聚二甲基硅氧烷微成型技术相结合,以实现一个便于细胞操作和筛选的多层微流体系统。该系统能够对单个活细胞进行电刺激,并检测可兴奋细胞膜介电特性随空间和时间的变化。引入了一个三电极阻抗系统,以提供额外的能力来记录细胞膜特定区域附近微区体积中特定生化物质随时间变化的浓度。还描述了一种坚固的流体和电接口的设计与制造。该接口在连接到MEMS设备时提供了“基于盒式”方法的灵活性和简易性。通过对分离出的外毛细胞进行电阻抗光谱法(1 kHz - 10 MHz)来表征细胞计数测量能力。通过使用不同浓度铁氰化钾(K(3)Fe(CN)(6))的循环伏安法来表征微通道记录室内的化学传感能力。对电刺激的PC12细胞进行计时电流记录突出了该平台分辨单个细胞胞吐事件的能力。

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