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Efficient Low Shear Flow-based Trapping of Biological Entities

机译:高效的基于低剪切流的生物实体捕集

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摘要

Capturing cells or biological entities is an important and challenging step toward in-vitro studies of cells under a precisely controlled microscale environment. In this work, we have developed a compact and efficient microdevice for on-chip trapping of micro-sized particles. This hydrodynamics-based trapping system allows the isolation of polystyrene micro-particles with a shorter time while inducing a less hydrodynamic deformation and stress on the particles or cells both after and before trapping. A numerical simulation was carried out to design a hydrodynamic trapping mechanism and optimize the geometric and fluidic parameters affecting the trapping efficiency of the microfluidic network. By using the finite element analysis, the velocity field, pressure field, and hydrodynamic force on the micro particles were studied. Finally, a PDMS microfluidic device was fabricated to test the device’s ability to trap polystyrene microspheres. Computational fluid analysis and experimental testing showed a high trapping efficiency that is more than 90%. This microdevice can be used for single cell studies including their biological, physical and chemical characterization.
机译:捕获细胞或生物实体是在精确控制的微尺度环境下进行细胞体外研究的重要而富挑战性的一步。在这项工作中,我们开发了一种紧凑高效的微型设备,用于在芯片上捕获微细颗粒。这种基于水动力的捕集系统可以在更短的时间内分离出聚苯乙烯微粒,同时在捕集之后和捕集之前对粒子或细胞产生较小的流体动力变形和应力。进行了数值模拟,设计了一种流体动力捕集机制,并优化了影响微流体网络捕集效率的几何和流体参数。通过有限元分析,研究了微粒上的速度场,压力场和流体动力。最后,制造了PDMS微流体装置,以测试该装置捕获聚苯乙烯微球的能力。计算流体分析和实验测试表明,捕集效率高达90%以上。该微型设备可用于单细胞研究,包括其生物学,物理和化学表征。

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