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使用升高的柱状储液器和涡旋技术对微颗粒进行高效惯性分离,用于芯片实验室应用。

High-Efficiency Inertial Separation of Microparticles Using Elevated Columned Reservoirs and Vortex Technique for Lab-on-a-Chip Applications.

作者信息

Mohamadsharifi Amir, Hajghassem Hassan, Kalantar Mahsa, Karimi Ali, Tabatabaei Asl Mirmaghsoud, Hosseini Seyedmajid, Badieirostami Majid

机构信息

Faculty of New Sciences and Technologies, University of Tehran, Tehran 14759-87353, Iran.

Department of Chemical and Petroleum Engineering, Sharif University of Technology, Tehran 14588-89694, Iran.

出版信息

ACS Omega. 2023 Jul 25;8(31):28628-28639. doi: 10.1021/acsomega.3c03136. eCollection 2023 Aug 8.

Abstract

The discovery of circulating tumor cells (CTCs) has envisioned an excellent outlook for cancer diagnosis and prognosis. Among numerous efforts proposed for CTCs isolation, vortex separation is a well-known method for capturing CTCs from blood due to its applicability, low sample volume requirement, and ability to retain cell viability. It is a label-free, passive, low-cost, and automated method, making it an ideal solution for lab-on-a-chip applications. The previous designs that employed vortex technology have shown reaching high throughput and 70% separation efficiency although it was after three processing cycles which are not desired. Inspired by our earlier design, in this work, we redesigned the chip geometry by elevating the columned reservoir height to capture more particles and consequently reduce particle-particle collision, eventually improving efficiency. So, a height-variable chip with fewer elevated columned reservoirs (ECRs) was employed to isolate 20 μm microparticles representing CTCs from 8 μm microparticles. Also, numerical simulations were conducted to investigate the third axis contribution to the separation mechanism. The new design with ECRs resulted in a 14% increase in average efficiency, reaching ∼80% ± 8.3% in microparticle separation and 61% purity. Moreover, the proposed chip geometry demonstrated more than three times higher capacity in retaining orbiting particles up to 1300 in peak performance without sacrificing efficiency compared to earlier single-layer designs. We came up with an upgraded injection system to facilitate this chip characterization. We also presented an effortless and straightforward approach for purging air bubbles trapped inside the reservoirs to preserve regular chip operation, especially where there is a mismatch between channel and reservoir heights.

摘要

循环肿瘤细胞(CTC)的发现为癌症诊断和预后带来了良好的前景。在众多提出的CTC分离方法中,涡旋分离是一种从血液中捕获CTC的知名方法,因其适用性、低样本量要求以及保持细胞活力的能力。它是一种无标记、被动、低成本且自动化的方法,使其成为芯片实验室应用的理想解决方案。先前采用涡旋技术的设计显示,尽管经过三个处理周期后才达到高通量和70%的分离效率,但这并非理想情况。受我们早期设计的启发,在这项工作中,我们通过提高柱状储液器高度重新设计了芯片几何结构,以捕获更多颗粒,从而减少颗粒间碰撞,最终提高效率。因此,采用具有较少升高柱状储液器(ECR)的高度可变芯片,从8μm的微粒中分离代表CTC的20μm微粒。此外,还进行了数值模拟,以研究第三轴对分离机制的贡献。带有ECR的新设计使平均效率提高了14%,在微粒分离中达到约80%±8.3%,纯度为61%。此外,与早期的单层设计相比,所提出的芯片几何结构在不牺牲效率的情况下,保留轨道颗粒的能力提高了三倍多,峰值性能可达1300个。我们提出了一种升级的注入系统,以促进该芯片的表征。我们还提出了一种简单直接的方法来清除被困在储液器内的气泡,以确保芯片正常运行,特别是在通道和储液器高度不匹配的情况下。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8018/10413478/9fe2a6ad2f14/ao3c03136_0002.jpg

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