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A simplified sheathless cell separation approach using combined gravitational-sedimentation-based prefocusing and dielectrophoretic separation

机译:一种简化的护壳细胞分离方法,使用基于重力沉积的预结合和介电泳分离

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摘要

Prefocusing of the cell mixture is necessary for achieving a high-efficiency and continuous dielectrophoretic (DEP) cell separation. However, prefocusing through sheath flow requires a complex and tedious peripheral system for multi-channel fluid control, hindering the integration of DEP separation systems with other microfluidic functionalities for comprehensive clinical and biological tasks. This paper presented a simplified sheathless cell separation approach that combines gravitational-sedimentation-based sheathless prefocusing and DEP separation methods. Through gravitational sedimentation in a tubing, which was inserted into the inlet of a microfluidic chip with an adjustable steering angle, the cells were focused into a stream at the upstream region of a microchannel prior to separation. Then, a DEP force was applied at the downstream region of the microchannel for the active separation of the cells. Through this combined strategy, the peripheral system for the sheath flow was no longer required, and thus the integration of cell separation system with additional microfluidic functionalities was facilitated. The proposed sheathless scheme focused the mixture of cells with different sizes and dielectric properties into a stream in a wide range of flow rates without changing the design of the microfluidic chip. The DEP method is a label-free approach that can continuously separate cells on the basis of the sizes or dielectric properties of the cells and thus capable of greatly flexible cell separation. The efficiency of the proposed approach was experimentally assessed according to its performance in the separation of human acute monocytic leukemia THP-1 cells from yeast cells with respect to different sizes and THP-1 cells from human acute myelomonocytic leukemia OCI-AML3 cells with respect to different dielectric properties. The experimental results revealed that the separation efficiency of the method can surpass 90% and thus effective in separating cells on the basis of either size or dielectric property.
机译:对于实现高效率和连续介电电泳(DEP)细胞分离是必需细胞混合物的预结。然而,通过鞘流预定,需要复杂和繁琐的外围系统,用于多通道流体控制,阻碍DEP分离系统与其他微流体功能的集成,以进行全面的临床和生物任务。本文介绍了一种简化的护套电池分离方法,结合了引力沉积的护套预结合和DEP分离方法。通过在管道中的引力沉降,通过可调节的转向角插入微流体芯片的入口中,在分离之前将细胞聚焦到微通道的上游区域的流中。然后,将Dem力施加在微通道的下游区域以进行细胞的活性分离。通过这种组合的策略,不再需要鞘流的外围系统,因此促进了细胞分离系统与额外的微流体功能的整合。所提出的护套方案将细胞的混合物聚焦在多种流速的宽范围内的流中的细胞和介电性质的混合物,而不改变微流体芯片的设计。 DEP方法是一种无标记方法,可以基于细胞的尺寸或介电性能来连续地分离细胞,因此能够大大柔性细胞分离。通过关于来自人急性髓细胞白血病OCI-AML3细胞的不同尺寸和THP-1细胞,根据其在酵母细胞分离中的人体急性单核细胞白血病THP-1细胞的性能进行实验评估拟议方法的效率。不同的电介质特性。实验结果表明,该方法的分离效率可以超越90%,从而在分离细胞的基础上基于任一种或介电性能。

著录项

  • 来源
    《Lab on a chip》 |2018年第11期|共12页
  • 作者单位

    City Univ Hong Kong Dept Mech &

    Biomed Engn Hong Kong Hong Kong Peoples R China;

    City Univ Hong Kong Dept Mech &

    Biomed Engn Hong Kong Hong Kong Peoples R China;

    North Univ China Minist Educ Key Lab Instrumentat Sci &

    Dynam Measurement Taiyuan Shanxi Peoples R China;

    City Univ Hong Kong Dept Mech &

    Biomed Engn Hong Kong Hong Kong Peoples R China;

    City Univ Hong Kong Dept Mech &

    Biomed Engn Hong Kong Hong Kong Peoples R China;

    North Univ China Minist Educ Key Lab Instrumentat Sci &

    Dynam Measurement Taiyuan Shanxi Peoples R China;

    City Univ Hong Kong Dept Mech &

    Biomed Engn Hong Kong Hong Kong Peoples R China;

    City Univ Hong Kong Dept Mech &

    Biomed Engn Hong Kong Hong Kong Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 化学实验(实验化学);生物化学;生物科学;化学;
  • 关键词

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