Nam Jeonghun, Tan Justin Kok Soon, Khoo Bee Luan, Namgung Bumseok, Leo Hwa Liang, Lim Chwee Teck, Kim Sangho
Department of Biomedical Engineering, National University of Singapore , 9 Engineering Drive 1, Singapore 117575.
Biomicrofluidics. 2015 Dec 23;9(6):064117. doi: 10.1063/1.4938389. eCollection 2015 Nov.
A novel microfluidic device which consists of two stages for particle focusing and separation using a viscoelastic fluid has been developed. A circular capillary tube was used for three-dimensional particle pre-alignment before the separation process, which was inserted in a polydimethylsiloxane microchannel. Particles with diameters of 5 and 10 μm were focused at the centerline in the capillary tube, and the location of particles was initialized at the first bifurcation. Then, 5 and 10 μm particles were successfully separated in the expansion region based on size-dependent lateral migration, with ∼99% separation efficiency. The proposed device was further applied to separation of MCF-7 cells from leukocytes. Based on the cell size distribution, an approximate size cutoff for separation was determined to be 16 μm. At 200 μl/min, 94% of MCF-7 cells were separated with the purity of ∼97%. According to the trypan blue exclusion assay, high viability (∼90%) could be achieved for the separated MCF-7 cells. The use of a commercially available capillary tube enables the device to be highly versatile in dealing with particles in a wide size range by using capillary tubes with different inner diameters.
一种新型微流控装置已被开发出来,该装置由两个阶段组成,用于使用粘弹性流体进行颗粒聚焦和分离。在分离过程之前,使用圆形毛细管进行三维颗粒预排列,该毛细管插入聚二甲基硅氧烷微通道中。直径为5和10μm的颗粒在毛细管的中心线处聚焦,颗粒的位置在第一个分支处初始化。然后,基于尺寸依赖性横向迁移,5和10μm的颗粒在扩展区域成功分离,分离效率约为99%。所提出的装置进一步应用于从白细胞中分离MCF-7细胞。根据细胞大小分布,确定分离的近似尺寸截止值为16μm。在200μl/min的流速下,94%的MCF-7细胞被分离出来,纯度约为97%。根据台盼蓝排斥试验,分离出的MCF-7细胞具有较高的活力(约90%)。使用市售毛细管使得该装置通过使用具有不同内径的毛细管,在处理宽尺寸范围内的颗粒时具有高度通用性。