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增强混合螺旋介电泳微通道中的细胞分离:数值洞察和最佳操作条件。

Enhancing cell separation in a hybrid spiral dielectrophoretic microchannel: Numerical insights and optimal operating conditions.

机构信息

Department of Mechanical and Aerospace Engineering, Ohio State University, Columbus, Ohio, USA.

School of Engineering and Computer Science, Washington State University, Vancouver, Washington, USA.

出版信息

Biotechnol Prog. 2024 May-Jun;40(3):e3437. doi: 10.1002/btpr.3437. Epub 2024 Jan 30.

Abstract

Reliable separation of circulating tumor cells from blood cells is crucial for early cancer diagnosis and prognosis. Many conventional microfluidic platforms take advantage of the size difference between particles for their separation, which renders them impractical for sorting overlapping-sized cells. To address this concern, a hybrid inertial-dielectrophoretic microfluidic chip is proposed in this work for continuous and single-stage separation of lung cancer cell line A549 cells from white blood cells of overlapping size. The working mechanism of the proposed spiral microchannel embedded with planar interdigitated electrodes is validated against the experimental results. A numerical investigation is carried out over a range of flow conditions and electric field intensity to determine the separation efficiency and migration characteristics of the cell mixture. The results demonstrate the unique capability of the proposed microchannel to achieve high-throughput separation of cells at low applied voltages in both vertical and lateral directions. A significant lateral separation distance between the CTCs and the WBCs has been achieved, which allows for high-resolution and effective separation of cells. The separation resolution can be controlled by adjusting the strength of the applied electric field. Furthermore, the results demonstrate that the lateral separation distance is maximum at a voltage termed the critical voltage, which increases with the increase in the flow rate. The proposed microchannel and the developed technique can provide valuable insight into the development of a tunable and robust medical device for effective and high-throughput separation of cancer cells from the WBCs.

摘要

从血液中可靠地分离循环肿瘤细胞对于早期癌症诊断和预后至关重要。许多传统的微流控平台利用粒子之间的大小差异来进行分离,这使得它们对于重叠大小的细胞的分选不切实际。为了解决这个问题,本工作提出了一种混合惯性-介电泳微流控芯片,用于连续且单级地从重叠大小的白细胞中分离肺癌细胞系 A549 细胞。所提出的带有平面交错电极的螺旋微通道的工作机制通过实验结果进行了验证。针对一系列流动条件和电场强度进行了数值研究,以确定细胞混合物的分离效率和迁移特性。结果表明,所提出的微通道具有独特的能力,可以在低应用电压下实现高通量的细胞垂直和横向分离。已经实现了 CTC 和 WBC 之间的显著横向分离距离,从而可以实现高分辨率和有效的细胞分离。通过调整施加电场的强度可以控制分离分辨率。此外,结果表明,横向分离距离在称为临界电压的电压下最大,该电压随流速的增加而增加。所提出的微通道和所开发的技术可以为开发用于从 WBC 中有效且高通量地分离癌细胞的可调谐和稳健的医疗设备提供有价值的见解。

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