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一种适用于免疫亲和色谱的基于毛细管的微流控仪器。

A capillary-based microfluidic instrument suitable for immunoaffinity chromatography.

作者信息

Peoples Michael C, Phillips Terry M, Karnes H Thomas

机构信息

Department of Pharmaceutics, Virginia Commonwealth University Medical Center, P.O. Box 980533, Richmond, VA 23298-0533, USA.

出版信息

J Chromatogr B Analyt Technol Biomed Life Sci. 2007 Apr 1;848(2):200-7. doi: 10.1016/j.jchromb.2006.10.032. Epub 2006 Nov 13.

Abstract

The analysis of biological samples to produce clinical or research data often requires measurement of analytes from complex biological matrices and limited volumes. Miniaturized analytical systems capable of minimal sample consumption and reduced analysis times have been employed to meet this need. The small footprint of this technology offers the potential for portability and patient point-of-care testing. A prototype microfluidic system has been developed and is presented for potential rapid assessment of clinical samples. The system has been designed for immunoaffinity chromatography as a means of separating analytes of interest from biological matrices. The instrument is capable of sub-microliter sample injection and detection of labeled antigens by long wavelength laser-induced fluorescence (LIF). The laboratory-constructed device is assembled from an array of components including two syringe pumps, a nano-gradient mixing chip, a micro-injector, a diode laser, and a separation capillary column made from a polymer/silica (PEEKsil) tube. An in-house program written with LabVIEW software controls the syringe pumps to perform step gradient elution and collects the LIF signal as a chromatogram. Initial columns were packed with silica beads to evaluate the system. Optimization of the device has been achieved by measuring flow accuracy with respect to column length and particle size. Syringe size and pressure effects have also been used to characterize the capability of the pumps. Based on test results, a 200-microm x 25-mm column packed with 1-microm silica beads was chosen for use with a 500-microL syringe. The system was tested for mixer proportioning by pumping different compositions of buffer and fluorescent dye solutions in a stepwise fashion. A linear response was achieved for increasing concentrations of fluorescent dye by online mixing (R2=0.9998). The effectiveness of an acidic gradient was confirmed by monitoring pH post-column and measuring premixed solutions offline. Finally, assessment of detectability was achieved by injecting fluorescent dye solutions and measuring the signal from the LIF detector. The limit of detection for the system with these solutions was 10.0 pM or 10.0 amol on-column. As proof-of-principle, immunoaffinity chromatography was demonstrated with immobilized rabbit anti-goat IgG and a fluorescent dye-goat IgG conjugate as a model antigen.

摘要

对生物样品进行分析以生成临床或研究数据,通常需要从复杂的生物基质和有限的体积中测量分析物。为满足这一需求,已采用能够实现最小样品消耗和缩短分析时间的小型化分析系统。该技术的小尺寸提供了便携性和患者即时检测的潜力。已开发出一种原型微流控系统,并展示了其用于临床样品潜在快速评估的能力。该系统设计用于免疫亲和色谱,作为从生物基质中分离感兴趣分析物的一种手段。该仪器能够进行亚微升进样,并通过长波长激光诱导荧光(LIF)检测标记抗原。该实验室构建的装置由一系列组件组装而成,包括两个注射泵、一个纳米梯度混合芯片、一个微注射器、一个二极管激光器以及一根由聚合物/二氧化硅(PEEKsil)管制成的分离毛细管柱。用LabVIEW软件编写的内部程序控制注射泵进行梯度洗脱,并收集LIF信号作为色谱图。最初的柱子填充硅胶珠以评估该系统。通过测量相对于柱长和粒径的流速精度实现了装置的优化。注射泵的尺寸和压力效应也被用于表征泵的性能。基于测试结果,选择了一根填充1微米硅胶珠的200微米×25毫米柱子与一个500微升注射泵配合使用。通过逐步泵送不同组成的缓冲液和荧光染料溶液对系统进行混合比例测试。通过在线混合,荧光染料浓度增加时实现了线性响应(R2 = 0.9998)。通过监测柱后pH值和离线测量预混合溶液,证实了酸性梯度的有效性。最后,通过注射荧光染料溶液并测量LIF检测器的信号来评估检测能力。使用这些溶液时,该系统的检测限为柱上10.0 pM或10.0 amol。作为原理验证,以固定化兔抗山羊IgG和荧光染料 - 山羊IgG缀合物作为模型抗原进行了免疫亲和色谱演示。

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