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用于基于尺寸连续分离微粒的无堵塞微流控技术。

Clogging-free microfluidics for continuous size-based separation of microparticles.

作者信息

Yoon Yousang, Kim Seonil, Lee Jusin, Choi Jaewoong, Kim Rae-Kwon, Lee Su-Jae, Sul Onejae, Lee Seung-Beck

机构信息

Department of Electronic Engineering, Hanyang Universtiy, 222 Wangsimni-ro, Seongdong-gu, Seoul, 04763, Korea.

Department of Life Science and Research Institute for Natural Sciences, Hanyang Universtiy, 222 Wangsimni-ro, Seongdong-gu, Seoul, 04763, Korea.

出版信息

Sci Rep. 2016 May 20;6:26531. doi: 10.1038/srep26531.

Abstract

In microfluidic filtration systems, one of the leading obstacles to efficient, continuous operation is clogging of the filters. Here, we introduce a lateral flow microfluidic sieving (μ-sieving) technique to overcome clogging and to allow continuous operation of filter based microfluidic separation. A low frequency mechanical oscillation was added to the fluid flow, which made possible the release of aggregated unwanted polystyrene (PS) particles trapped between the larger target PS particles in the filter demonstrating continuous μ-sieving operation. We achieved collection of the target PS particles with 100% separation efficiency. Also, on average, more than 98% of the filtered target particles were retrieved after the filtration showing high retrieval rates. Since the oscillation was applied to the fluid but not to the microfluidic filter system, mechanical stresses to the system was minimized and no additional fabrication procedures were necessary. We also applied the μ-sieving technique to the separation of cancer cells (MDA-MB-231) from whole blood and showed that the fluidic oscillations prevented the filters from being blocked by the filtered cancer cells allowing continuous microfluidic separation with high efficiency.

摘要

在微流控过滤系统中,高效连续运行的主要障碍之一是过滤器堵塞。在此,我们引入一种横向流微流控筛分(μ筛分)技术,以克服堵塞问题,并实现基于过滤器的微流控分离的连续运行。向流体流中添加低频机械振荡,这使得能够释放被困在过滤器中较大目标聚苯乙烯(PS)颗粒之间的聚集的不需要的PS颗粒,从而证明了连续μ筛分操作。我们以100%的分离效率实现了目标PS颗粒的收集。此外,平均而言,超过98%的过滤后的目标颗粒在过滤后被回收,显示出高回收率。由于振荡应用于流体而非微流控过滤系统,因此系统受到的机械应力最小化,且无需额外的制造程序。我们还将μ筛分技术应用于从全血中分离癌细胞(MDA-MB-231),结果表明流体振荡可防止过滤器被过滤后的癌细胞堵塞,从而实现高效的连续微流控分离。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/590f/4873827/f98814d7ac5d/srep26531-f1.jpg

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