基于介电泳的微流体分离和检测系统。

Jun Yang, Jody Vykoukal, Jamileh Noshari, Frederick Becker, Peter Gascoyne, Peter Krulevitch, Chris Fuller, Harold Ackler, Julie Hamilton, Bernhard Boser, Adam Eldredge, Duncan Hitchens, Craig Andrews
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引用次数: 0

摘要

诊断和治疗人类疾病往往需要从复杂的混合物中分离和检测某些类型的细胞。与传统的分离和检测技术相比,微流体方法有望产生易于使用的诊断仪器,可以承受广泛的操作环境,并能够完成自动化分析。这些方法将使诊断的进展能够从先进的临床实验室传播到护理点。应用将包括血细胞亚群的分离和差异分析,用于基于宿主的检测由疾病、感染或接触毒素引起的血细胞变化,以及用于化学、生物和生物分子靶标的表面敏化、定制介电珠的分离和分析。本文报道了一种新型的介质电泳场流分馏(deep - fff)颗粒分离分析微系统。该系统由集成进样器的微流控芯片、deep - fff分离器和交流阻抗传感器组成。我们展示了一种具有改进灵敏度的小型化阻抗传感器集成电路(IC)的设计,一种以滑动压缩封装和新型微流体互连为特征的微流场的新封装方法,以及可现场原型的设计,控制,集成和封装。将展示说明性应用,包括不同大小的珠子和不同细胞类型的分离,血细胞差异分析,以及珠子,孢子和细胞的阻抗传感结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
DIELECTROPHORESIS-BASED MICROFLUIDIC SEPARATION AND DETECTION SYSTEMS.

Diagnosis and treatment of human diseases frequently requires isolation and detection of certain cell types from a complex mixture. Compared with traditional separation and detection techniques, microfluidic approaches promise to yield easy-to-use diagnostic instruments tolerant of a wide range of operating environments and capable of accomplishing automated analyses. These approaches will enable diagnostic advances to be disseminated from sophisticated clinical laboratories to the point-of-care. Applications will include the separation and differential analysis of blood cell subpopulations for host-based detection of blood cell changes caused by disease, infection, or exposure to toxins, and the separation and analysis of surface-sensitized, custom dielectric beads for chemical, biological, and biomolecular targets. Here we report a new particle separation and analysis microsystem that uses dielectrophoretic field-flow fractionation (DEP-FFF). The system consists of a microfluidic chip with integrated sample injector, a DEP-FFF separator, and an AC impedance sensor. We show the design of a miniaturized impedance sensor integrated circuit (IC) with improved sensitivity, a new packaging approach for micro-flumes that features a slide-together compression package and novel microfluidic interconnects, and the design, control, integration and packaging of a fieldable prototype. Illustrative applications will be shown, including the separation of different sized beads and different cell types, blood cell differential analysis, and impedance sensing results for beads, spores and cells.

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