BioMicroSystems Laboratory, School of Electronic and Computing Systems, University of Cincinnati, Cincinnati, OH, USA.
Lab Chip. 2013 May 21;13(10):1919-29. doi: 10.1039/c3lc50101a. Epub 2013 Mar 26.
Inertial microfluidics has been attracting considerable interest in recent years due to immensely promising applications in cell separations and sorting. Despite the intense attention, the moderate efficiencies and low purity of the reported devices have hindered their widespread acceptance. In this work, we report on a simple inertial microfluidic system with high efficiency (>99%) and purity (>90%). Our system builds on the concept of two-stage inertial migration which permits precise prediction of particle or cell position within the microchannel. Our design manipulates the inertial equilibrium positions by modulating channel aspect ratio to achieve a complete separation. Here, we successfully demonstrate a complete separation of particles and isolation of rare cells in blood spiked with human prostate epithelial tumor (HPET) cells. Based on the planar structure, large separation spacing and predictable focusing, we envision promising applications and easy integration of our system with existing lab-on-a-chip systems for cell separations.
近年来,由于在细胞分离和分选方面具有广阔的应用前景,惯性微流控技术受到了广泛的关注。尽管受到了广泛的关注,但报道的设备效率适中且纯度低,阻碍了其广泛应用。在这项工作中,我们报告了一种具有高效率(>99%)和高纯度(>90%)的简单惯性微流控系统。我们的系统基于两级惯性迁移的概念,该概念允许精确预测微通道内颗粒或细胞的位置。我们的设计通过调节通道纵横比来改变惯性平衡位置,从而实现完全分离。在这里,我们成功地演示了在掺入人前列腺上皮肿瘤(HPET)细胞的血液中完全分离颗粒和分离稀有细胞。基于平面结构、较大的分离间隔和可预测的聚焦,我们设想我们的系统具有有前景的应用和易于与现有的微流控芯片系统集成用于细胞分离。