Pillar of Engineering Product Development, Singapore University of Technology and Design, Singapore 487372, Singapore.
Lab Chip. 2017 Sep 12;17(18):3176-3185. doi: 10.1039/c7lc00678k.
Fluorescence activated cell sorting (FACS) has become an essential technique widely exploited in biological studies and clinical applications. However, current FACS systems are quite complex, expensive, bulky, and pose potential sample contamination and biosafety issues due to the generation of aerosols in an open environment. Microfluidic technology capable of precise cell manipulation has great potential to reinvent and miniaturize conventional FACS systems. In this work, we demonstrate a benchtop scale FACS system that makes use of a highly focused traveling surface acoustic wave beam to sort out micron-sized particles and biological cells upon fluorescence interrogation at ∼kHz rates. The highly focused acoustic wave beam has a width of ∼50 μm that enables highly accurate sorting of individual particles and cells. We have applied our acoustic FACS system to isolate fluorescently labeled MCF-7 breast cancer cells from diluted whole blood samples with the purity of sorted MCF-7 cells higher than 86%. The cell viability before and after acoustic sorting is higher than 95%, indicating excellent biocompatibility that should enable a variety of cell sorting applications in biomedical research.
荧光激活细胞分选(FACS)已成为生物学研究和临床应用中广泛应用的重要技术。然而,由于在开放环境中产生气溶胶,当前的 FACS 系统非常复杂、昂贵、庞大,并存在潜在的样品污染和生物安全问题。能够精确操控细胞的微流控技术具有对传统 FACS 系统进行重新设计和小型化的巨大潜力。在这项工作中,我们展示了一种台式 FACS 系统,该系统利用高度聚焦的行进表面声波束在约 kHz 的速率下通过荧光询问来分选微米级颗粒和生物细胞。高度聚焦的声波束宽度约为 50 μm,能够实现单个颗粒和细胞的高度精确分选。我们已经将我们的声 FACS 系统应用于从稀释的全血样本中分离荧光标记的 MCF-7 乳腺癌细胞,分选的 MCF-7 细胞的纯度高于 86%。声分选前后的细胞活力高于 95%,表明出色的生物相容性,这应该能够实现生物医学研究中各种细胞分选应用。