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微流控装置用于饮用水中细菌的浓缩和基于 SERS 的检测。

Microfluidic device for concentration and SERS-based detection of bacteria in drinking water.

机构信息

Institute of Analytical Chemistry, Leipzig University, Leipzig, Germany.

Institute of Analytical Chemistry, Czech Academy of Sciences, Brno, Czech Republic.

出版信息

Electrophoresis. 2021 Jan;42(1-2):86-94. doi: 10.1002/elps.202000048. Epub 2020 May 25.

Abstract

There is a constant need for the development of easy-to-operate systems for the rapid and unambiguous identification of bacterial pathogens in drinking water without the requirement for time-consuming culture processes. In this study, we present a disposable and low-cost lab-on-a-chip device utilizing a nanoporous membrane, which connects two stacked perpendicular microfluidic channels. Whereas one of the channels supplies the sample, the second one attracts it by potential-driven forces. Surface-enhanced Raman spectrometry (SERS) is employed as a reliable detection method for bacteria identification. To gain the effect of surface enhancement, silver nanoparticles were added to the sample. The pores of the membrane act as a filter trapping the bodies of microorganisms as well as clusters of nanoparticles creating suitable conditions for sensitive SERS detection. Therein, we focused on the construction and characterization of the device performance. To demonstrate the functionality of the microfluidic chip, we analyzed common pathogens (Escherichia coli DH5α and Pseudomonas taiwanensis VLB120) from spiked tap water using the optimized experimental parameters. The obtained results confirmed our system to be promising for the construction of a disposable optical platform for reliable and rapid pathogen detection which couples their electrokinetic concentration on the integrated nanoporous membrane with SERS detection.

摘要

在饮用水中快速、明确地识别细菌病原体,而无需耗时的培养过程,这对易于操作的系统的开发一直存在着需求。在本研究中,我们提出了一种利用纳米多孔膜的一次性、低成本的片上实验室设备,该设备连接两个堆叠的垂直微流道。其中一个通道供应样品,另一个通道通过电势驱动力吸引它。表面增强拉曼光谱(SERS)被用作细菌鉴定的可靠检测方法。为了获得表面增强效果,向样品中添加了银纳米粒子。膜的孔充当过滤器,捕获微生物的主体以及纳米粒子簇,从而为敏感的 SERS 检测创造了合适的条件。在这方面,我们专注于器件性能的构建和表征。为了演示微流控芯片的功能,我们使用优化的实验参数分析了自来水中添加的常见病原体(大肠杆菌 DH5α和铜绿假单胞菌 VLB120)。获得的结果证实了我们的系统有希望构建一种用于可靠快速病原体检测的一次性光学平台,该平台将它们在集成纳米多孔膜上的电动浓缩与 SERS 检测相结合。

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