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Design and analysis of an optimized microfluidic channel for isolation of circulating tumor cells using deterministic lateral displacement technique

机译:用确定性横向位移技术分离循环肿瘤细胞优化微流体通道的设计与分析

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Circulating tumor cells (CTCs) are extremely scarce cells which cut off from a primary tumor and percolate into the circulation of blood flow and are, thus, critical for precise cancer detection and treatment. Deterministic lateral displacement (DLD) which exploits asymmetric splitting of laminar flow around the implanted microposts has displayed trustworthy capabilities in separating cells of varying sizes. In this research work, a microfluidic channel consisting of three symmetrically aligned inlets and outlets and embedded circular posts has been proposed which effectively separates the CTCs from lymphocytes utilizing the concept of DLD. Using a commercial software COMSOL Multiphysics 5.4, the design of the proposed microchannel has been simulated and analyzed considering an injected blood sample containing massive CTCs and slim WBCs of radii 13.5?μm and 6?μm, respectively. The proposed model of microchannel isolates the CTCs from WBCs at a comparatively higher sample mass flow rate of 4?×?10~(–6)?kg/s and Reynolds number of 8.9 thereby operating efficiently at higher throughput, and offers excellent linearity in terms of velocity magnitude, pressure, shear rate and Reynolds number. The computational analysis of the proposed microchannel reveals that it can isolate CTCs from WBCs with better separation ratio, offers higher throughput, reduces possibilities of clogging and maintains better uniformity of pressure distribution and other flow parameters when compared with existing microchannel designs. The maximum separation ratio for CTCs and WBCs has been obtained as 84% and 96%, respectively.
机译:循环肿瘤细胞(CTC)是极稀缺的细胞,其从原发性肿瘤切断并渗透到血流的循环中,因此对于精确的癌症检测和治疗至关重要。确定型横向位移(DLD)围绕植入微孔围绕植入微孔的流动分裂的不对称分裂在分离各种尺寸的电池中具有可信度的能力。在这项研究工作中,已经提出了由三个对称对齐的入口和出口和嵌入圆柱组成的微流体通道,从而有效地将CTC与DLD概念分开的淋巴细胞。使用商业软件COMSOL Multiphysics 5.4,考虑到含有含有大规模CTC的注射血液样品和半径13.5μm和6Ωμm的注射血液样品,分析和分析了所提出的微通道的设计。所提出的微通道模型将来自WBC的CTC分离为相对较高的样品质量流速为4?×10〜(-6)?KG / S和Reynolds的8.9,从而有效地在较高的产量下运行,并提供出色的线性度速度幅度,压力,剪切速率和雷诺数。所提出的微通道的计算分析表明,它可以将来自WBC的CTC分离出具有更好分离率的WBC,提供更高的产量,降低了与现有的微通道设计相比的压力分布和其他流量参数的更好的均匀性。 CTC和WBCs的最大分离率分别获得为84%和96%。

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