首页> 外文期刊>The Analyst: The Analytical Journal of the Royal Society of Chemistry: A Monthly International Publication Dealing with All Branches of Analytical Chemistry >A review of sorting, separation and isolation of cells and microbeads for biomedical applications: microfluidic approaches
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A review of sorting, separation and isolation of cells and microbeads for biomedical applications: microfluidic approaches

机译:用于生物医学应用的细胞和微珠分类,分离和分离的综述:微流体方法

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摘要

Several biomedical analyses are performed on particular types of cells present in body samples or using functionalized microparticles. Success in such analyses depends on the ability to separate or isolate the target cells or microparticles from the rest of the sample. In conventional procedures, multiple pieces of equipment, such as centrifuges, magnets, and macroscale filters, are used for such purposes, which are time-consuming, associated with human error, and require several operational steps. In the past two decades, there has been a tendency to develop microfluidic techniques, so-called lab-on-a-chip, to miniaturize and automate these procedures. The processes used for the separation and isolation of the cells and microparticles are scaled down into a small microfluidic chip, requiring very small amounts of sample. Differences in the physical and biological properties of the target cells from the other components present in the sample are the key to the development of such microfluidic techniques. These techniques are categorized as filtration-, hydrodynamic-, dielectrophoretic-, acoustic-and magnetic-based methods. Here we review the microfluidic techniques developed for sorting, separation, and isolation of cells and microparticles for biomedical applications. The mechanisms behind such techniques are thoroughly explained and the applications in which these techniques have been adopted are reviewed.
机译:几种生物医学分析对体样品中存在的特定类型或使用官能化微粒进行。这种分析中的成功取决于将靶细胞或微粒与其余的样品分离或分离靶细胞或微粒的能力。在常规程序中,多个设备,例如离心机,磁体和宏观滤波器,用于这种目的,其与人为错误相关,并且需要若干操作步骤。在过去的二十年中,已经倾向于开发微流体技术,所谓的实验室芯片,以小型化和自动化这些程序。用于将细胞和微粒分离和分离的方法被缩小到小型微流体芯片中,需要非常少量的样品。来自样品中存在的其他组分的靶细胞物理和生物学特性的差异是这种微流体技术的开发的关键。这些技术被分类为过滤,流体动力学,介电泳,声学和磁性的方法。在这里,我们审查了用于分类,分离和分离细胞和微粒的微流体技术,用于生物医学应用。综述了这些技术背后的机制,并审查了所采用这些技术的应用。

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