Cai Kunpeng, Mankar Shruti, Maslova Anastasia, Ajiri Taiga, Yotoriyama Tasuku
Central Research Laboratories, Sysmex Corporation 4-4-4 Takatsukadai, Nishi-ku Kobe 651-2271 Japan
RSC Adv. 2020 Nov 5;10(66):40395-40405. doi: 10.1039/d0ra04919k. eCollection 2020 Nov 2.
With the potential to avoid cross-contamination, eliminate bio-aerosols, and minimize device footprints, microfluidic fluorescence-activated cell sorting (μ-FACS) devices could become the platform for the next generation cell sorter. Here, we report an on-chip flow switching based μ-FACS mechanism with piezoelectric actuation as a fast and robust sorting solution. A microfluidic chip with bifurcate configuration and displacement amplified piezoelectric microvalves has been developed to build the μ-FACS system. Rare fluorescent microparticles of different sizes have been significantly enriched from a purity of ∼0.5% to more than 90%. An enrichment of 150-fold from ∼0.6% to ∼91% has also been confirmed for fluorescently labeled MCF-7 breast cancer cells from Jurkat cells, while viability after sorting was maintained. Taking advantage of its simple structure, low cost, fast response, and reliable flow regulation, the proposed μ-FACS system delivers a new option that can meet the requirements of sorting performance, target selectivity, device lifetime, and cost-effectiveness of implementation.
由于具有避免交叉污染、消除生物气溶胶以及最小化设备占地面积的潜力,微流控荧光激活细胞分选(μ-FACS)设备有望成为下一代细胞分选仪的平台。在此,我们报告一种基于芯片上流动切换的μ-FACS机制,该机制采用压电驱动,是一种快速且稳健的分选解决方案。已开发出一种具有分叉结构和位移放大压电微阀的微流控芯片来构建μ-FACS系统。不同大小的稀有荧光微粒已从约0.5%的纯度显著富集至超过90%。对于从Jurkat细胞中荧光标记的MCF-7乳腺癌细胞,也证实了从约0.6%到约91%的150倍富集,同时分选后的细胞活力得以维持。利用其结构简单、成本低、响应快以及流量调节可靠的优势,所提出的μ-FACS系统提供了一种新的选择,能够满足分选性能、目标选择性、设备寿命以及实施成本效益等方面的要求。