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基于微珠的微流控免疫分析:下一代技术。

Bead-based microfluidic immunoassays: the next generation.

作者信息

Lim C T, Zhang Y

机构信息

Division of Bioengineering, Faculty of Engineering, Blk, EA-03-12, National University of Singapore, 9 Engineering Drive 1, Singapore 117576, Singapore.

出版信息

Biosens Bioelectron. 2007 Feb 15;22(7):1197-204. doi: 10.1016/j.bios.2006.06.005. Epub 2006 Jul 20.

Abstract

Microfluidic devices possess many advantages like high throughput, short analysis time, small volume and high sensitivity that fulfill all the important criteria of an immunoassay used for clinical diagnoses, environmental analyses and biochemical studies. These devices can be made from a few different materials, with polymers presently emerging as the most popular choice. Other than being optically clear, non-toxic and cheap, polymers can also be easily fabricated with a variety of techniques. In addition, there are many polymer surface modification methods available to improve the efficiency of these devices. Unfortunately, current microfluidic immunoassays have limited multiplexing capability compared to flow cytometric assays. Flow cytometry employ the use of encoded microbeads in contrast with normal or paramagnetic microbeads applied in current microfluidic devices. The encoded microbead is the key in providing multiplexing capability to the assay by allowing multi-analyte analysis. Using several unique sets of code, different analytes can be detected in a single assay by tracing the identity of individual beads. The same principle could be applied to microfluidic immunoassays in order to retain all the advantages of a fluidic device and significantly improve multiplexing capability.

摘要

微流控设备具有许多优点,如高通量、分析时间短、体积小和灵敏度高,满足了用于临床诊断、环境分析和生化研究的免疫分析的所有重要标准。这些设备可以由几种不同的材料制成,目前聚合物正成为最受欢迎的选择。除了光学透明、无毒且廉价外,聚合物还可以通过多种技术轻松制造。此外,有许多聚合物表面改性方法可用于提高这些设备的效率。不幸的是,与流式细胞术分析相比,当前的微流控免疫分析的多重分析能力有限。流式细胞术使用编码微珠,这与当前微流控设备中使用的普通或顺磁性微珠形成对比。编码微珠是通过允许多分析物分析为分析提供多重分析能力的关键。通过使用几组独特的编码,可以通过追踪单个微珠的身份在一次分析中检测不同的分析物。同样的原理可以应用于微流控免疫分析,以保留流体设备的所有优点并显著提高多重分析能力。

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