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首页> 外文期刊>Aerosol Science and Technology: The Journal of the American Association for Aerosol Research >A Water Cyclone to Preserve Insoluble Aerosols in Liquid Flow—An Interface to Flow Cytometry to Detect Airborne Nucleic Acid
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A Water Cyclone to Preserve Insoluble Aerosols in Liquid Flow—An Interface to Flow Cytometry to Detect Airborne Nucleic Acid

机译:水旋流器,用于保留液体中的不溶性气溶胶—流式细胞仪的接口,用于检测空气中的核酸

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A miniature cyclone was designed to gently capture fine aerosols into a continuous liquid flow. The geometry of the cyclone was designed so that the friction of the turning air swirls a 100 μl volume of water at the base of the cone, creating a standing liquid vortex which coats the inside deposition surface. The collection efficiency of the cyclone was characterized as a function of insoluble particle size, both in stand-alone operation and preceded by aerosol growth by water vapor condensation. The aerosol growth lowered the smallest collected particle size and created synonymous sample-into-substrate material conditions at the point of impact. The cyclone collection efficiencies were higher than 88% for the fluorescent polystyrene latex bead diameter sizes 50-3000 nm. The cyclone was further interfaced to a flow cytometer to detect airborne nucleic acid (as a virus test aerosol) in the cyclone sample flow. The flow cytometer, which is commonly used for single cell identification via fluorescence, was modified to accept a continuous sample flow (nominal 60 μlmin~(-1)) from the cyclone for real-time detection. A rod-shaped plant virus (Tobamovirus) and a protein-enveloped insect virus (Baculovirus) were aerosolized, collected by the cyclone, and stained inline using the nucleic acid dyes SYBR Green I, SYTO-9, and SYTO-24 (Molecular Probes, Inc.). In addition, an Environmental Scanning Electron Microscope (ESEM) was used to confirm the collection of single virus particles and qualitatively evaluate the degree to which the aerosolization and collection process affected the integrity of the virus.
机译:微型旋风分离器设计用于将细小的气溶胶缓慢捕获为连续的液体流。设计旋风分离器的几何形状,以使旋转空气的摩擦在圆锥形底部旋转100μl体积的水,从而形成一个直立的液体涡流,该涡流覆盖内部沉积表面。旋风分离器的收集效率被表征为不溶性颗粒大小的函数,无论是在独立运行中还是在水蒸气冷凝导致气溶胶生长之前。气溶胶的生长降低了收集到的最小颗粒尺寸,并在撞击点创造了样品进入基质的同义材料条件。对于直径为50-3000 nm的荧光聚苯乙烯胶乳珠粒,旋风收集效率高于88%。旋风分离器还与流式细胞仪连接,以检测旋风分离器样品流中的空气传播核酸(作为病毒测试气溶胶)。修改了通常用于通过荧光鉴定单细胞的流式细胞仪,以接受来自旋风分离器的连续样品流(标称值为60μlmin〜(-1))以进行实时检测。将杆状植物病毒(烟草花叶病毒)和包被蛋白质的昆虫病毒(杆状病毒)气雾化,通过旋风分离器收集,并使用核酸染料SYBR Green I,SYTO-9和SYTO-24(Molecular Probes)在线染色,Inc.)。此外,使用环境扫描电子显微镜(ESEM)确认了单个病毒颗粒的收集并定性评估了雾化和收集过程对病毒完整性的影响程度。

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