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首页> 外文期刊>BioChip journal >Polymer microcantilever arrays for high-throughput separation using a combination of dielectrophoresis and sedimentations
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Polymer microcantilever arrays for high-throughput separation using a combination of dielectrophoresis and sedimentations

机译:聚合物微悬臂梁阵列通过介电电泳和沉淀相结合实现高通量分离

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摘要

This paper presents a polymer microcantilever platform for handling massive microparticles or cells using combined forces induced by dielectrophoresis and gravity. Although cell separation based on dielectrophoresis is a very useful and versatile method, its low throughput is a key problem that must be resolved before it can be used clinically. In this study, high throughput separation could be achieved without any external pumping or complex microtubing by combining dielelectrophoresis and sedimentation. The absence of any external pumping or injection sys tem makes it possible to realize a simple configuration of devices with low cost and easy separation procedures, which is carried out by just dropping the target microparticles without any pretreatment. The transport of microparticles is driven by gravitation in the medium, and during the sedimentation the particles are either deflected from or pass through the gap between the microcantilevers depending on their physical properties. The position of passing through is defined by the equilibrium point between the dielectrophoretic force and gravity. We compared the degree of complexity of the fabrication process and its successful throughput between both the glass-based and polymer-based microcantilevers. The feasibility of our suggestion was demonstrated by performing microparticle separation experimentally, which showed that our device can be applied in various biological areas.
机译:本文提出了一种聚合物微悬臂平台,该平台利用介电电泳和重力感应产生的联合力处理大量的微粒或细胞。尽管基于介电电泳的细胞分离是一种非常有用且用途广泛的方法,但其低通量是一个关键问题,必须在临床使用前加以解决。在这项研究中,通过将介电泳和沉淀相结合,无需任何外部泵送或复杂的微管即可实现高通量分离。无需任何外部泵送或注射系统,就可以实现设备的简单配置,且成本低廉,易于分离,只需不经过任何预​​处理就可以直接滴下目标微粒即可完成。微粒的运输由介质中的重力驱动,并且在沉降过程中,取决于微粒的物理特性,微粒会从微粒悬臂偏转或穿过微粒悬臂之间的间隙。通过的位置由介电泳力和重力之间的平衡点定义。我们比较了玻璃基和聚合物基微悬臂梁制造工艺的复杂程度及其成功的生产能力。通过进行微粒分离实验证明了我们建议的可行性,这表明我们的设备可以应用于各种生物学领域。

著录项

  • 来源
    《BioChip journal 》 |2011年第1期| p.8-13| 共6页
  • 作者单位

    School of Aerospace and Mechanical Engineering, Korea Aerospace University, Goyang, Gyeonggi-do 412-791, Korea;

    School of Aerospace and Mechanical Engineering, Korea Aerospace University, Goyang, Gyeonggi-do 412-791, Korea;

    School of Aerospace and Mechanical Engineering, Korea Aerospace University, Goyang, Gyeonggi-do 412-791, Korea;

    Mechanical Engineering, Sogang University, Sinsu-dong, Mapo-gu,Seoul 121-742, Korea;

    School of Aerospace and Mechanical Engineering, Korea Aerospace University, Goyang, Gyeonggi-do 412-791, Korea;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    dielectrophoresis; sedimentation; micro-cantilevers; SU-8; high throughput;

    机译:介电泳沉降;微型悬臂梁SU-8;高通量;

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