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Development of a highly effective multi-stage surface acoustic wave SU-8 microfluidic concentrator

机译:高效多级表面声波SU-8微流体浓缩器的研制

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摘要

As an important step in sample preparation, sample concentration step helps to improve sampling techniques that are often necessary to detect low levels of pathogenic bacteria in food safety inspections, reducing or completely eliminating the need for time-consuming cell enrichment process for detection. In this study, we investigated strategies to significantly enhance performances of a surface acoustic wave (SAW) microfluidic device to concentrate various particles, including microbeads, bacterial and mammalian cells in suspensions. A low acoustic energy loss material, SU-8, was used to fabricate the microfluidic concentrator, and SAW reflectors were designed to efficiently use the SAW generated acoustic energy for particle concentration. The concentration performance was further improved by using a two-stage concentration design. We demonstrated that the SU-8 microfluidic concentrator with a two-stage concentration configuration was able to concentrate 2.00 μm bead samples at an overall concentration factor of ~65-fold with a particle recovery efficiency of 81.9 ± 5.9% at a inflow rate of 300 μl/h. Similarly, when the concentrator was used to concentrate E. coli DH5α and NIH/3T3 cells, overall concentration factors of ~59 and 75-fold with particle recovery efficiencies of 81.0 ± 17.2% and 90.8 ± 5.0% were obtained, respectively. These results show significant improvements upon those previously reported for either bacterial or mammalian cell concentration applications. In addition, the device fabrication process developed in this work is fully compatible with regular microfabrication processes, making this microfluidic concentrator readily integrable with other on-chip functionalities for cell manipulation and detection applications.
机译:作为样品制备中的重要步骤,样品浓缩步骤有助于改善食品安全检查中通常需要的检测低水平致病菌所需的采样技术,从而减少或完全消除了耗时的细胞富集过程的检测需求。在这项研究中,我们研究了显着提高表面声波(SAW)微流体装置的性能的策略,该装置可将各种微粒(包括微珠,细菌和哺乳动物细胞)浓缩到悬浮液中。使用低声能损耗材料SU-8来制造微流体集中器,并且设计了SAW反射器以有效利用SAW产生的声能进行粒子浓缩。通过采用两阶段浓缩设计,进一步提高了浓缩性能。我们证明,具有两级浓缩配置的SU-8微流选浓缩器能够以〜65倍的总浓缩因子浓缩2.00μm的珠子样品,在300的进水速度下的颗粒回收效率为81.9±5.9%微升/小时同样,当使用浓缩器浓缩大肠杆菌DH5α和NIH / 3T3细胞时,总浓缩因子分别为〜59和75倍,颗粒回收率分别为81.0±17.2%和90.8±5.0%。这些结果显示了对先前报道的细菌或哺乳动物细胞浓缩应用的显着改善。此外,这项工作中开发的设备制造工艺与常规的微制造工艺完全兼容,从而使该微流体浓缩器易于与其他片上功能集成在一起,用于细胞处理和检测应用。

著录项

  • 来源
    《Sensors and Actuators》 |2015年第8期|77-85|共9页
  • 作者单位

    Department of Chemical and Biological Engineering, University of Ottawa, 161 Louis Pasteur, Ottawa, Ontario, K1N 6N5 Canada;

    Institute for Microstructural Sciences, National Research Council Canada, Ottawa, Ontario, K1A 0R6 Canada;

    Canadian Food Inspection Agency, Ottawa, Ontario, K2H 8P9 Canada;

    Department of Chemical and Biological Engineering, University of Ottawa, 161 Louis Pasteur, Ottawa, Ontario, K1N 6N5 Canada;

    Department of Chemical and Biological Engineering, University of Ottawa, 161 Louis Pasteur, Ottawa, Ontario, K1N 6N5 Canada;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Sample preparation; Bacteria detection; Concentrator; Microfluidics; Surface acoustic wave;

    机译:样品制备;细菌检测;选矿厂微流体;表面声波;

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