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Continuous separation of cells and particles in microfluidic systems

机译:微流系统中细胞和颗粒的连续分离

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The progress in microfabrication and lab-on-a-chip technologies has been a major area of development for new approaches to bioanalytics and integrated concepts for cell biology. Fundamental advances in the development of elastomer based microfluidics have been driving factors for making microfluidic technology available to a larger scientific community in the past years. In line with this, microfluidic separation of cells and particles is currently developing rapidly where key areas of interest are found in designing lab-on-a-chip systems that offer controlled microenvironments for studies of fundamental cell biology. More recently industrial interests are seen in the development of micro chip based flow cytometry technology both for preclinical research and clinical diagnostics. This critical review outlines the most recent developments in microfluidic technology for cell and particle separation in continuous flow based systems. (130 references) The progress in microfabrication and lab-on-a-chip technologies has been a major area of development for new approaches to bioanalytics and integrated concepts for cell biology. Fundamental advances in the development of elastomer based microfluidics have been driving factors for making microfluidic technology available to a larger scientific community in the past years. In line with this, microfluidic separation of cells and particles is currently developing rapidly where key areas of interest are found in designing lab-on-a-chip systems that offer controlled microenvironments for studies of fundamental cell biology. More recently industrial interests are seen in the development of micro chip based flow cytometry technology both for preclinical research and clinical diagnostics. This critical review outlines the most recent developments in microfluidic technology for cell and particle separation in continuous flow based systems (130 references).
机译:微细加工和芯片实验室技术的进步一直是生物分析新方法和细胞生物学综合概念的主要发展领域。在过去的几年中,基于弹性体的微流体技术的发展取得了根本性的进步,成为推动微流体技术为更大的科学界所用的驱动因素。与此相一致,细胞和颗粒的微流体分离目前正在迅速发展,在设计芯片实验室系统时发现了关键的关注领域,这些系统为基础细胞生物学的研究提供了受控的微环境。最近,在用于临床前研究和临床诊断的基于微芯片的流式细胞术技术的发展中看到了工业兴趣。这篇重要的评论概述了微流技术在基于连续流的系统中细胞和颗粒分离方面的最新进展。 (130个参考文献)微细加工和芯片实验室技术的进步一直是生物分析新方法和细胞生物学综合概念的主要发展领域。在过去的几年中,基于弹性体的微流体技术的发展取得了根本性的进步,成为推动微流体技术为更大的科学界所用的驱动因素。与此相一致,细胞和颗粒的微流体分离目前正在迅速发展,在设计芯片实验室系统时发现了关键的关注领域,这些系统为基础细胞生物学的研究提供了受控的微环境。最近,在用于临床前研究和临床诊断的基于微芯片的流式细胞术技术的发展中看到了工业兴趣。这篇重要的评论概述了微流技术在基于连续流的系统中用于细胞和颗粒分离的最新进展(130篇参考文献)。

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  • 来源
    《Chemical Society Reviews》 |2010年第3期|p.1-16|共16页
  • 作者单位

    1. Dept. Measurement Technology and Industrial Electrical Engineering,Div. Nanobiotechnology,Lund University, 22100 Lund, Sweden;

    1. Dept. Measurement Technology and Industrial Electrical Engineering,Div. Nanobiotechnology,Lund University, 22100 Lund, Sweden;

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