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在微流控通道中填充的具有明确特性的珠子上进行生物分子识别。

Biomolecular recognition on well-characterized beads packed in microfluidic channels.

作者信息

Buranda Tione, Huang Jinman, Perez-Luna Victor H, Schreyer Brett, Sklar Larry A, Lopez Gabriel P

机构信息

Cancer Center and Department of Pathology, University of New Mexico School of Medicine, NSF Center for Micro-Engineered Materials, and Chemical and Nuclear Engineering, Albuquerque, USA.

出版信息

Anal Chem. 2002 Mar 1;74(5):1149-56. doi: 10.1021/ac0109624.

Abstract

We describe a new approach for the analysis of biomolecular recognition in microfluidic channels. The method involves real-time detection of soluble molecules binding to receptor-bearing microspheres, sequestered in affinity column format inside a microfluidic channel. Identification and quantitation of analytes occurs via direct fluorescence measurements or fluorescence resonance energy transfer (FRET). We establish a model system that detects the FLAG epitope. The assay can potentially detect subfemtomole quantities of antibody with a high signal-to-noise ratio and a large dynamic range spanning nearly 4 orders of magnitude in analyte concentration in microliter-to-submicroliter volumes of analyte fluid. Kinetic and equilibrium constants for the reaction of this receptor-ligand pair are obtained through modeling of kinetic responses of the affinity microcolumn and are consistent with those obtained by flow cytometry. Because of the correlation between kinetic and equilibrium data obtained for the microcolumns, quantitative analysis can be done prior to the steady-state end point of the recognition reaction. This method has the promise of combining the utility of affinity chromatography with the advantage of direct, quantitative, and real-time analysis and the cost-effectiveness of microanalytical devices. The approach has the potential to be generalized to a host of bioaffinity assay methods including analysis of protein complexes and molecular assembly and microsystem-based multianalyte determinations.

摘要

我们描述了一种用于分析微流控通道中生物分子识别的新方法。该方法涉及实时检测与携带受体的微球结合的可溶性分子,这些微球以亲和柱形式隔离在微流控通道内。通过直接荧光测量或荧光共振能量转移(FRET)对分析物进行鉴定和定量。我们建立了一个检测FLAG表位的模型系统。该检测方法有可能以高信噪比检测到亚飞摩尔量的抗体,并且在微升至亚微升体积的分析物流体中,分析物浓度的动态范围跨度近4个数量级。通过对亲和微柱的动力学响应进行建模,获得了该受体-配体对反应的动力学和平衡常数,这些常数与通过流式细胞术获得的常数一致。由于微柱获得的动力学数据和平衡数据之间存在相关性,因此可以在识别反应的稳态终点之前进行定量分析。该方法有望将亲和色谱的实用性与直接、定量和实时分析的优势以及微分析设备的成本效益相结合。该方法有可能推广到许多生物亲和检测方法,包括蛋白质复合物和分子组装分析以及基于微系统的多分析物测定。

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