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Microfluidic Device for Continuous Observation of Cellular Behaviors in Specialized Core-shell Microcapsules

机译:连续观察专用核壳微胶囊中细胞行为的微流体装置

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摘要

To screen cellular behavior in individual microcapsules, we propose a new method that is capable of efficiently trapping, capturing, monitoring, and collecting microcapsules by using hydrodynamic and magnetic forces. We generated specialized core-shell microcapsules with magnet particles (1.05 μm) that respond to a magnetic force by a core-shell encapsulation microfluidic device. Microcapsules were individually trapped in the trap wells of a microfluidic device by a hydrodynamic force. Then, the microcapsules were captured firmly by a magnetic force that did not allow any microcapsules to escape from the trap wells. In addition, the microcapsules could also be collected easily by removing the magnet from the microfluidic device. A mouse embryonic carcinoma cell line, P19, was encapsulated to form embryonic bodies, resulting in a high rate (> 90%) of spheroid formation while maintaining strong cell aggregation and viability. We expect that this method can provide a useful screening tool to study stem cells and tumors with respect to chemical cues.
机译:为了筛选单个微胶囊中的细胞行为,我们提出了一种新的方法,该方法能够利用流体动力和磁力有效地捕获,捕获,监测和收集微胶囊。我们用磁铁颗粒(1.05μm)生成了专门的核-壳微胶囊,这些颗粒通过核-壳封装微流体装置对磁力作出响应。通过水动力将微胶囊分别捕获在微流体装置的捕获孔中。然后,用不允许任何微胶囊从捕集阱中逸出的磁力牢固地捕获微胶囊。另外,还可以通过从微流体装置中去除磁体来容易地收集微胶囊。小鼠胚胎癌细胞系P19被封装形成胚胎体,从而在保持强大的细胞聚集和生存能力的同时,形成了高比率(> 90%)的球状体。我们希望这种方法可以提供有用的筛选工具,以研究有关化学线索的干细胞和肿瘤。

著录项

  • 来源
    《BioChip journal》 |2014年第3期|199-208|共10页
  • 作者

    Choong Kim; Ji Yoon Kang;

  • 作者单位

    Center for BioMicrosystem, Korea Institute of Science and Technology, Seoul 136-791, Korea,School of Mechanical and Automotive Engineering, Kyungil University, Daegu 712-701, Korea;

    Center for BioMicrosystem, Korea Institute of Science and Technology, Seoul 136-791, Korea;

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

    Core-shell microcapsule; Bead trap; Magnetic force; 3D cell culture; Cell spheroid;

    机译:核壳微胶囊;珠子捕集器磁力;3D细胞培养;细胞球体;

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