Lab-on-chip platform for circulating tumor cells isolation

D. Maurya, M. Fooladvand, E. Gray, M. Ziman, K. Alameh
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引用次数: 1

Abstract

We design, develop and demonstrate the principle of a continuous, non-intrusive, low power microfluidics-based lab-ona- chip (LOC) structure for Circulating Tumor Cell (CTC) separation. Cell separation is achieved through 80 cascaded contraction and expansion microchannels of widths 60 μm and 300 μm, respectively, and depth 60 μm, which enable momentum-change-induced inertial forces to be exerted on the cells, thus routing them to desired destinations. The total length of the developed LOC is 72 mm. The LOC structure is simulated using the COMSOL multiphysics software, which enables the optimization of the dimensions of the various components of the LOC structure, namely the three inlets, three filters, three contraction and expansion microchannel segments and five outlets. Simulation results show that the LOC can isolate CTCs of sizes ranging from 15 to 30 μm with a recovery rate in excess of 90%. Fluorescent microparticles of two different sizes (5 μm and 15 μm), emulating blood and CTC cells, respectively, are used to demonstrate the principle of the developed LOC. A mixture of these microparticles is injected into the primary LOC inlet via an electronically-controlled syringe pump, and the large-size particles are routed to the primary LOC outlet through the contraction and expansion microchannels. Experimental results demonstrate the ability of the developed LOC to isolate particles by size exclusion with an accuracy of 80%. Ongoing research is focusing on the LOC design improvement for better separation efficiency and testing of biological samples for isolation of CTCs.
循环肿瘤细胞分离的芯片实验室平台
我们设计、开发并演示了一种用于循环肿瘤细胞(CTC)分离的连续、非侵入性、低功耗的基于微流体的实验室芯片(LOC)结构的原理。细胞分离是通过80个级联的收缩和膨胀微通道实现的,这些微通道的宽度分别为60 μm和300 μm,深度为60 μm,这使得动量变化引起的惯性力施加在细胞上,从而使细胞到达预期的目的地。开发LOC的总长度为72毫米。利用COMSOL多物理场软件对LOC结构进行仿真,优化LOC结构各部件的尺寸,即三个入口、三个滤波器、三个收缩和膨胀微通道段和五个出口。仿真结果表明,该LOC可以隔离15 ~ 30 μm尺寸的ctc,回收率超过90%。用两种不同尺寸的荧光微粒(5 μm和15 μm)分别模拟血液和CTC细胞来演示开发的LOC的原理。这些微粒的混合物通过电控注射泵注入主LOC入口,大颗粒通过收缩和膨胀微通道输送到主LOC出口。实验结果表明,开发的LOC能够通过粒径排除来分离颗粒,精度达到80%。正在进行的研究重点是LOC设计的改进,以提高分离效率和测试生物样品以分离CTCs。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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