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一种用于无标记、超灵敏免疫分析的微流控纸折叠纳米生物传感器。

A Microfluidic Paper-Based Origami Nanobiosensor for Label-Free, Ultrasensitive Immunoassays.

机构信息

Department of Mechanical Engineering, McGill University, 817 Sherbrooke Street West, Montreal, Quebec, H3A 0C3, Canada.

出版信息

Adv Healthc Mater. 2016 Jun;5(11):1326-35. doi: 10.1002/adhm.201501038. Epub 2016 Apr 28.

Abstract

Microfluidic paper-based analytical devices (μPADs) represent a promising platform technology for point-of-care diagnosis. Highly sensitive, rapid, and easy-to-perform immunoassays implemented on μPADs are desirable to fulfill the promise of the μPAD technology. This article reports the first microfluidic paper-based origami nanobiosensor (origami μPAD), which integrates zinc oxide nanowires (ZnO NWs) and electrochemical impedance spectroscopy (EIS) biosensing mechanism, for label-free, ultrasensitive immunoassays. The EIS mechanism features simple and label-free assay operations which take less than 25 min to be finished, while the ZnO NWs allow covalent bonding for immobilizing probe proteins and improve the biosensing performance with such features as high surface-area-to-volume ratios and high sensitivity to surface binding. The calibration of the device reveals an ultralow limit of detection (LOD) of 60 fg mL(-1) (>100 times lower than those of existing μPADs) for rabbit immunoglobulin G in phosphate-buffered saline. The detection of human immunodeficiency virus p24 antigen in human serum with a low LOD of 300 fg mL(-1) (>33 times lower than that of a commercial p24 antigen test kit) is also demonstrated. This novel μPAD design offers ultrahigh sensitivity, short assay time, and ease of operation, and thus possesses significant potential for low-cost, rapid molecular diagnosis of early-stage diseases.

摘要

微流控纸基分析器件(μPADs)代表了一种有前途的即时诊断平台技术。在 μPADs 上实现高灵敏度、快速和易于执行的免疫分析是实现 μPAD 技术承诺的理想选择。本文报道了第一个微流控纸基折纸纳米生物传感器(折纸 μPAD),它集成了氧化锌纳米线(ZnO NWs)和电化学阻抗谱(EIS)生物传感机制,用于无标记、超高灵敏度的免疫分析。EIS 机制具有简单和无标记的分析操作,不到 25 分钟即可完成,而 ZnO NWs 允许用于固定探针蛋白的共价键合,并通过高表面积与体积比和对表面结合的高灵敏度等特性提高生物传感性能。该设备的校准显示,在磷酸盐缓冲液中的兔免疫球蛋白 G 的超低检测限(LOD)为 60 fg mL(-1)(比现有 μPADs 低 100 多倍)。还证明了在人血清中检测人类免疫缺陷病毒 p24 抗原的低检测限为 300 fg mL(-1)(比商业 p24 抗原检测试剂盒低 33 倍以上)。这种新颖的 μPAD 设计具有超高灵敏度、短分析时间和易于操作的特点,因此在低成本、快速早期疾病分子诊断方面具有重要潜力。

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