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Separation of Biological Cells in a Microfluidic Device Using Surface Acoustic Waves (SAWs)

机译:使用表面声波(SAW)分离微流控设备中的生物细胞

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In this study, a surface acoustic wave (SAW)-based microfluidic device has been developed to separate heterogeneous particle or cell mixtures in a continuous flow using acoustophoresis. The microfluidic device is comprised of two components, a SAW transducer and a microfluidic channel made of polydimethylsiloxane (PDMS). The SAW transducer was fabricated by patterning two pairs of interdigital electrodes on a lithium niobate (LiNbO_3) piezoelectric substrate. When exciting the SAW transducer by AC signals, a standing SAW is generated along the cross-section of the channel. Solid particles immersed in the standing SAW field are accordingly pushed to the pressure node arising from the acoustic radiation force acting on the particles, referring to the acoustic particle-focusing phenomenon. Acoustic radiation force highly depends on the particle properties, resulting in different acoustic responses for different types of cells. A numerical model, coupling the piezoelectric effect in the solid substrate and acoustic pressure in the fluid, was developed to provide a better understanding of SAW-based particle manipulation. Separation of two types of fluorescent particles has been demonstrated using the developed SAW-based microfluidic device. An efficient separation of E. coli bacteria from peripheral blood mononuclear cell (PBMC) samples has also been successfully achieved. The purity of separated E. coli bacteria and separated PBMCs were over 95% and 91%, respectively, obtained by a flow cytometric analysis. The developed microfluidic device can efficiently separate E. coli bacteria from biological samples, which has potential applications in biomedical analysis and clinical diagnosis.
机译:在这项研究中,基于声表面波(SAW)的微流体装置已被开发出来,可通过声泳法在连续流动中分离异质颗粒或细胞混合物。微流体装置由两个组件组成,一个是声表面波换能器,另一个是由聚二甲基硅氧烷(PDMS)制成的微流体通道。通过在铌酸锂(LiNbO_3)压电基板上构图两对叉指电极来制造SAW换能器。当通过AC信号激励SAW换能器时,会在通道的横截面上生成一个直立的SAW。因此,浸没在声表面波场中的固体颗粒会因作用在颗粒上的声辐射力而被推到压力节点,这是指声颗粒聚焦现象。声辐射力在很大程度上取决于粒子的性质,从而导致不同类型细胞的不同声响应。建立了一个将固体基质中的压电效应与流体中的声压耦合的数值模型,以更好地理解基于声表面波的粒子处理方法。使用开发的基于声表面波的微流控设备已经证明了两种类型的荧光颗粒的分离。从外周血单个核细胞(PBMC)样品中有效分离出大肠杆菌的方法也已成功实现。通过流式细胞术分析获得的分离的大肠杆菌细菌和分离的PBMC的纯度分别超过95%和91%。开发的微流体装置可以有效地从生物样品中分离出大肠杆菌,在生物医学分析和临床诊断中具有潜在的应用前景。

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