A rigid microfluidic chip for high-throughput fluorescence-activated cell sorting

IF 6.5 Q1 BIOTECHNOLOGY & APPLIED MICROBIOLOGY
Zhen Cheng, Xiao Zhou, Miao Gu, Juntao Deng, Mingyu Dong, Min Liu
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引用次数: 0

Abstract

Fluorescence-activated cell sorting (FACS) holds great promise for the separation of single cells or cell populations according to specific light scattering and fluorescent characteristics. Here, we present a new perspective on microfluidic FACS (μFACS) with predictable geometry, which meets the requirements of high-throughput analysis and sorting. Instead of the widely applied elastic polydimethylsiloxane (PDMS), a rigid epoxy resin chip was rapidly fabricated and irreversibly encapsulated to eliminate channel deformation (tenfold reduction) and enhance performance while meeting high pressure (>600 kPa) and high flow rate application scenarios. Fluorescence discrimination and particle differentiation were additionally validated in a self-contained μFACS system using calibration microspheres and mammalian cells. The μFACS chip and system were integrally optimized to achieve a minimum interval (0.58 ms) with a mean flow rate of 1.5 m/s. Ultimately, event recording and automated sorting were accomplished in real time while achieving a sorting efficiency of 87% at cell throughput of 8,000 events/s. This rigid chip for high-throughput μFACS, which is independent of the physical properties of cells could pave the way for cell screening in plasma samples for personalized medicine.

Abstract Image

用于高通量荧光激活细胞分拣的刚性微流控芯片
荧光激活细胞分拣(FACS)在根据特定的光散射和荧光特性分离单细胞或细胞群方面大有可为。在这里,我们从一个新的角度介绍了具有可预测几何形状的微流体 FACS(μFACS),它能满足高通量分析和分选的要求。摒弃了广泛应用的弹性聚二甲基硅氧烷(PDMS),我们快速制造了一种刚性环氧树脂芯片,并对其进行了不可逆封装,从而消除了通道变形(减少了十倍),提高了性能,同时满足了高压(600 kPa)和高流速的应用要求。此外,还利用校准微球和哺乳动物细胞在自给式 μFACS 系统中验证了荧光分辨和粒子分化能力。μFACS芯片和系统经过整体优化,在平均流速为1.5米/秒的情况下实现了最小间隔(0.58毫秒)。最终,事件记录和自动分拣得以实时完成,同时在细胞吞吐量为 8,000 个事件/秒时,分拣效率达到 87%。这种用于高通量μFACS的刚性芯片不受细胞物理性质的影响,可为用于个性化医疗的血浆样本细胞筛选铺平道路。
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来源期刊
CiteScore
9.60
自引率
0.00%
发文量
60
审稿时长
49 days
期刊介绍: Sensors and Actuators Reports is a peer-reviewed open access journal launched out from the Sensors and Actuators journal family. Sensors and Actuators Reports is dedicated to publishing new and original works in the field of all type of sensors and actuators, including bio-, chemical-, physical-, and nano- sensors and actuators, which demonstrates significant progress beyond the current state of the art. The journal regularly publishes original research papers, reviews, and short communications. For research papers and short communications, the journal aims to publish the new and original work supported by experimental results and as such purely theoretical works are not accepted.
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