...
【24h】

Droplet-based microfluidics detector for bioaerosol detection

机译:基于液滴的微流体检测器,用于生物溶胶检测

获取原文
获取原文并翻译 | 示例
           

摘要

Detection of bioaerosols is important in fields ranging from environmental health monitoring to biosurveillance, and current detector weaknesses have motivated the development of new technologies. In this work, a detector was built, which applies the principles of droplet microfluidics to bioaerosol detection. Droplet microfluidics is a subfield of microfluidics based on the creation of monodisperse microdroplets with compartmentalized reagents and supports enhanced assays and fluidic manipulations. The bioaerosol detector operates by aerodynamically focusing aerosols directly into these droplets to harness the benefits of the microreactor environment. A breadboard detector system, which consisted of an aerodynamic focusing lens, aerosol-focusing capillary, microfluidic droplet chip, and optical microscope, was constructed. Computational fluid dynamic simulations and Lagrangian particle tracking modeling were conducted to identify the optimal conditions for focusing. Preliminary experiments, where aerosols were deposited onto a solid substrate, demonstrated sub 200-mu m spot diameters for aerodynamic diameters of 2-5 mu m. Test aerosols were then generated, and collected into the microfluidic liquid interface on the chip as verified by microscopy. Recovery efficiency of the aerosols was dependent on aerosol size and ranged from about 27% to nearly 100%. Finally, to prove bioaerosol collection and detection, a droplet propidium iodide (PI) assay was performed: the system distinguished between E. coli and non-biological aerosols within 20 s. Overall, this work established the technique of direct collection of bioaerosols into a convenient droplet microfluidic platform for detection.
机译:在环境健康监测到生物监测的田地中,生物溶胶的检测是重要的,目前的探测器的缺点是开发新技术的发展。在这项工作中,建立了一种探测器,将液滴微流体的原理应用于生物这溶胶检测。液滴微流体是微流体的子场,基于用划分的试剂的单分散微量滴体的产生并支持增强的测定和流体操纵。 Bioaerosol检测器通过空气动力学聚焦气溶胶直接进入这些液滴来利用微反应器环境的益处。构建了一个面包板探测器系统,它由空气动力学聚焦镜片,气溶胶聚焦毛细管,微流体液滴芯片和光学显微镜组成。进行计算流体动态模拟和拉格朗日粒子跟踪建模,以确定聚焦的最佳条件。将气溶胶沉积在固体基质上的初步实验,显示出200-mu m的斑点直径,用于2-5μm的空气动力学直径。然后产生测试气溶胶,并在芯片上收集到芯片上的微流体液体界面中,如通过显微镜验证。气溶胶的恢复效率依赖于气溶胶尺寸,范围为约27%至近100%。最后,为了证明生物溶胶收集和检测,进行了液滴碘化丙啶(PI)测定:20 s内的大肠杆菌和非生物气溶胶之间的系统。总体而言,这项工作建立了直接收集生物溶胶的技术进入方便的液滴微流体平台进行检测。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号