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Magnetically driven microfluidics for isolation of circulating tumor cells

机译:磁驱动微流控技术可分离循环肿瘤细胞

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摘要

Circulating tumor cells (CTCs) largely contribute to cancer metastasis and show potential prognostic significance in cancer isolation and detection. Miniaturization has progressed significantly in the last decade which in turn enabled the development of several microfluidic systems. The microfluidic systems offer a controlled microenvironment for studies of fundamental cell biology, resulting in the rapid development of microfluidic isolation of CTCs. Due to the inherent ability of magnets to provide forces at a distance, the technology of CTCs isolation based on the magnetophoresis mechanism has become a routine methodology. This historical review aims to introduce two principles of magnetic isolation and recent techniques, facilitating research in this field and providing alternatives for researchers in their study of magnetic isolation. Researchers intend to promote effective CTC isolation and analysis as well as active development of next‐generation cancer treatment. The first part of this review summarizes the primary principles based on positive and negative magnetophoretic isolation and describes the metrics for isolation performance. The second part presents a detailed overview of the factors that affect the performance of CTC magnetic isolation, including the magnetic field sources, functionalized magnetic nanoparticles, magnetic fluids, and magnetically driven microfluidic systems.
机译:循环肿瘤细胞(CTC)在很大程度上有助于癌症转移,并在癌症的分离和检测中显示出潜在的预后意义。在过去的十年中,微型化取得了显着进展,这反过来又使数种微流体系统得以发展。微流体系统为基础细胞生物学的研究提供了受控的微环境,从而导致了CTC的微流体分离的快速发展。由于磁体固有的一定距离提供力的能力,基于磁致熔机理的四氯化碳隔离技术已经成为一种常规方法。这份历史回顾旨在介绍磁隔离的两个原理和最新技术,以促进该领域的研究,并为研究人员提供有关磁隔离研究的替代方法。研究人员打算促进有效的CTC分离和分析,以及积极开发下一代癌症治疗方法。本文的第一部分总结了基于正磁和负磁致隔离的基本原理,并描述了隔离性能的指标。第二部分详细介绍了影响CTC磁隔离性能的因素,包括磁场源,功能化的磁性纳米粒子,磁性流体和磁性驱动的微流体系统。

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