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首页> 外文期刊>Chemosensors >Computational Analysis of Enhanced Circulating Tumour Cell (CTC) Separation in a Microfluidic System with an Integrated Dielectrophoretic-Magnetophorectic (DEP-MAP) Technique
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Computational Analysis of Enhanced Circulating Tumour Cell (CTC) Separation in a Microfluidic System with an Integrated Dielectrophoretic-Magnetophorectic (DEP-MAP) Technique

机译:微流控系统中增强的循环肿瘤细胞(CTC)分离的计算分析,采用集成的电电泳-磁电泳(DEP-MAP)技术

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摘要

Cell based cancer analysis is an important analytic method to monitor cancer progress on stages by detecting the density of circulating tumour cells (CTCs) in the blood. Among the existing microfluidic techniques, dielectrophoresis (DEP), which is a label-free detection method, is favoured by researchers. However, because of the high conductivity of blood as well as the rare presence of CTCs, high separation efficiency is difficult to achieve in most DEP microdevices. Through this study, we have proposed a strategy to improve the isolation performance, as such by integrating a magnetophoretic (MAP) platform into a DEP device. Several important aspects to be taken into MAP design consideration, such as permanent magnet orientation, magnetic track configuration, fluid flow parameter and separation efficiency, are discussed. The design was examined and validated by numerical simulation using COMSOL Multiphysics v4.4 software (COMSOL Inc., Burlington, MA, USA), mainly presented in three forms: surface plot, line plot, and arrow plot. From these results, we showed that the use of a single permanent magnet coupled with an inbuilt magnetic track of 250 μm significantly strengthens the magnetic field distribution within the proposed MAP stage. Besides, in order to improve dynamic pressure without compromising the uniformity of fluid flow, a wide channel inlet and a tree-like network were employed. When the cell trajectory within a finalized MAP stage is computed with a particle tracing module, a high separation efficiency of red blood cell (RBC) is obtained for blood samples corresponding up to a dilution ratio of 1:7. Moreover, a substantial enhancement of the CTCs’ recovery rate was also observed in the simulation when the purposed platform was integrated with a planar DEP microdevice.
机译:基于细胞的癌症分析是一种重要的分析方法,可通过检测血液中循环肿瘤细胞(CTC)的密度来分阶段监测癌症进展。在现有的微流技术中,介电泳(DEP)是一种无标记的检测方法,受到了研究人员的青睐。但是,由于血液的高电导率以及罕见的CTC的存在,在大多数DEP微型设备中很难实现高分离效率。通过这项研究,我们提出了一种提高隔离性能的策略,例如通过将磁致(MAP)平台集成到DEP器件中。讨论了要考虑到MAP设计的几个重要方面,例如永磁体方向,磁道配置,流体流量参数和分离效率。使用COMSOL Multiphysics v4.4软件(COMSOL Inc.,伯灵顿,马萨诸塞州,美国)通过数值模拟对设计进行了检验和验证,主要以三种形式呈现:表面图,线图和箭头图。从这些结果中,我们表明,使用单个永磁体与250μm内置磁道相结合,可以显着增强所建议的MAP阶段内的磁场分布。此外,为了在不损害流体流动均匀性的情况下提高动压,采用了宽通道入口和树状网络。当使用粒子跟踪模块计算最终MAP阶段内的细胞轨迹时,对于高达1:7的稀释比的血液样品,可以获得高分离效率的红细胞(RBC)。此外,当将目标平台与平面DEP微型设备集成时,在模拟中还观察到了CTC回收率的显着提高。

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