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Towards chip-scale liquid chromatography and high-throughput immunosensing.

机译:迈向芯片级液相色谱和高通量免疫传感。

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摘要

This work describes several research projects aimed towards developing new instruments and novel methods for high throughput chemical and biological analysis. Approaches are taken in two directions.; The first direction takes advantage of well-established semiconductor fabrication techniques and applies them to miniaturize instruments that are workhorses in analytical laboratories. Specifically, the first part of this work focused on the development of micropumps and microvalves for controlled fluid delivery. The mechanism of these micropumps and microvalves relies on the electrochemically-induced surface tension change at a mercury/electrolyte interface. A miniaturized flow injection analysis device was integrated and flow injection analyses were demonstrated. In the second part of this work, microfluidic chips were also designed, fabricated, and tested. Separations of two fluorescent dyes were demonstrated in microfabricated channels, based on an open-tubular liquid chromatography (OTLC) or an electrochemically-modulated liquid chromatography (EMLC) format. A reduction in instrument size can potentially increase analysis speed, and allow exceedingly small amounts of sample to be analyzed under diverse separation conditions.; The second direction explores the surface enhanced Raman spectroscopy (SERS) as a signal transduction method for immunoassay analysis. It takes advantage of the improved detection sensitivity as a result of surface enhancement on colloidal gold, the narrow width of Raman band, and the stability of Raman scattering signals to distinguish several different species simultaneously without exploiting spatially-separated addresses on a biochip. By labeling gold nanoparticles with different Raman reporters in conjunction with different detection antibodies, a simultaneous detection of a dual-analyte immunoassay was demonstrated. Using this scheme for quantitative analysis was also studied and preliminary dose-response curves from an immunoassay of a model antigen were obtained. Simultaneous detection of several analytes at the same address can potentially increase the analysis speed, and can further expand the analysis capability of a microarray chip.
机译:这项工作描述了几个旨在开发用于高通量化学和生物分析的新仪器和新方法的研究项目。方法是从两个方向采取的。第一个方向是利用成熟的半导体制造技术,并将其应用于使分析实验室中的主要仪器小型化。具体来说,这项工作的第一部分集中于开发用于控制流体输送的微型泵和微型阀。这些微型泵和微型阀的机理取决于汞/电解质界面上电化学诱导的表面张力变化。集成了微型流动注射分析设备,并进行了流动注射分析。在这项工作的第二部分,还对微流控芯片进行了设计,制造和测试。基于开管液相色谱(OTLC)或电化学调制液相色谱(EMLC)格式,在微细通道中证明了两种荧光染料的分离。减小仪器尺寸可能会提高分析速度,并允许在不同的分离条件下分析极少量的样品。第二个方向探讨了表面增强拉曼光谱(SERS)作为信号转导方法进行免疫分析的方法。由于胶体金的表面增强,拉曼谱带的窄宽度以及拉曼散射信号的稳定性,可以利用提高的检测灵敏度来同时区分几种不同的物种,而无需利用生物芯片上的空间分隔地址。通过用不同的拉曼报告分子结合不同的检测抗体标记金纳米颗粒,可以同时检测双重分析物的免疫分析结果。还使用该方案进行了定量分析,并从模型抗原的免疫测定中获得了初步的剂量反应曲线。在同一地址同时检测几种分析物可以潜在地提高分析速度,并可以进一步扩展微阵列芯片的分析能力。

著录项

  • 作者

    Ni, Jing.;

  • 作者单位

    Iowa State University.;

  • 授予单位 Iowa State University.;
  • 学科 Chemistry Analytical.
  • 学位 Ph.D.
  • 年度 2000
  • 页码 161 p.
  • 总页数 161
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学;
  • 关键词

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