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Observation of nonspherical particle behaviors for continuous shape-based separation using hydrodynamic filtration

机译:使用流体动力过滤进行基于形状的连续分离的非球形粒子行为的观察

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摘要

Selection of particles or cells of specific shapes from a complex mixture is an essential procedure for various biological and industrial applications, including synchronization of the cell cycle, classification of environmental bacteria, and elimination of aggregates from synthesized particles. Here, we investigate the separation behaviors of nonspherical and spherical particles∕cells in the hydrodynamic filtration (HDF) scheme, which was previously developed for continuous size-dependent particle∕cell separation. Nonspherical particle models were prepared by coating the hemisphere of spherical polymer particles with a thin Au layer and by bonding the Janus particles to form twins and triplets resembling dividing and aggregating cells, respectively. High-speed imaging revealed a difference in the separation behaviors of spherical and nonspherical particles at a branch point; nonspherical particles showed rotation behavior and did not enter the branch channel even when their minor axis was smaller than the virtual width of the flow region entering the branch channel, w1. The confocal-laser high-speed particle intensity velocimetry system visualized the flow profile inside the HDF microchannel, demonstrating that the steep flow-velocity distribution at the branch point is the main factor causing the rotation behavior of nonspherical particles. As applications, we successfully separated spherical and nonspherical particles with various major∕minor lengths and also demonstrated the selection of budding∕single cells from a yeast cell mixture. We therefore conclude that the HDF scheme can be used for continuous shape-based particle∕cell separation.
机译:从复杂的混合物中选择具有特定形状的颗粒或细胞对于各种生物学和工业应用都是必不可少的步骤,包括细胞周期同步,环境细菌分类以及从合成颗粒中消除聚集体。在这里,我们研究了非球形和球形颗粒细胞在流体动力过滤(HDF)方案中的分离行为,该方案是为连续的尺寸依赖性颗粒细胞分离而开发的。通过在球形聚合物颗粒的半球上涂上一层薄的Au层并结合Janus颗粒以形成分别类似于分裂和聚集细胞的孪晶和三胞胎,可以制备非球形颗粒模型。高速成像揭示了球形和非球形颗粒在分支点的分离行为的差异。非球形粒子表现出旋转行为,即使其短轴小于进入分支通道的流动区域的虚拟宽度w1,也不会进入分支通道。共聚焦激光高速粒子强度测速系统可视化了HDF微通道内部的流动剖面,表明在分支点处陡峭的流速分布是引起非球形粒子旋转行为的主要因素。作为应用,我们成功地分离了具有各种主要次要长度的球形和非球形颗粒,还展示了从酵母细胞混合物中选择出芽的单细胞的方法。因此,我们得出结论,HDF方案可用于基于形状的连续粒子-细胞分离。

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