Xu X, Huang X, Sun J, Chen J, Wu G, Yao Y, Zhou N, Wang S, Sun L
Ministry of Education Key Laboratory of RF Circuits and Systems, Hangzhou Dianzi University, Hangzhou, 310018 Zhejiang, China.
Institute for Translational Medicine, Zhejiang University, Hangzhou, 310029 Zhejiang, China.
Cyborg Bionic Syst. 2022 Jul 18;2022:9829287. doi: 10.34133/2022/9829287. eCollection 2022.
Whether for cancer diagnosis or single-cell analysis, it remains a major challenge to isolate the target sample cells from a large background cell for high-efficiency downstream detection and analysis in an integrated chip. Therefore, in this paper, we propose a 3D-stacked multistage inertial microfluidic sorting chip for high-throughput enrichment of circulating tumor cells (CTCs) and convenient downstream analysis. In this chip, the first stage is a spiral channel with a trapezoidal cross-section, which has better separation performance than a spiral channel with a rectangular cross-section. The second and third stages adopt symmetrical square serpentine channels with different rectangular cross-section widths for further separation and enrichment of sample cells reducing the outlet flow rate for easier downstream detection and analysis. The multistage channel can separate 5 m and 15 m particles with a separation efficiency of 92.37% and purity of 98.10% at a high inlet flow rate of 1.3 mL/min. Meanwhile, it can separate tumor cells (SW480, A549, and Caki-1) from massive red blood cells (RBCs) with a separation efficiency of >80%, separation purity of >90%, and a concentration fold of ~20. The proposed work is aimed at providing a high-throughput sample processing system that can be easily integrated with flowing sample detection methods for rapid CTC analysis.
无论是用于癌症诊断还是单细胞分析,在集成芯片中从大量背景细胞中分离目标样本细胞以进行高效的下游检测和分析仍然是一项重大挑战。因此,在本文中,我们提出了一种用于高通量富集循环肿瘤细胞(CTC)并便于进行下游分析的三维堆叠多级惯性微流控分选芯片。在该芯片中,第一阶段是具有梯形横截面的螺旋通道,其分离性能优于具有矩形横截面的螺旋通道。第二和第三阶段采用具有不同矩形横截面宽度的对称方形蛇形通道,用于进一步分离和富集样本细胞,降低出口流速以便于进行下游检测和分析。多级通道在1.3 mL/min的高入口流速下能够分离5 µm和15 µm的颗粒,分离效率为92.37%,纯度为98.10%。同时,它能够从大量红细胞(RBC)中分离肿瘤细胞(SW480、A549和Caki-1),分离效率>80%,分离纯度>90%,浓缩倍数约为20。所提出的工作旨在提供一种高通量样本处理系统,该系统能够轻松地与流动样本检测方法集成,用于快速的CTC分析。