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PMID: 25610513 Published · epublish English Journal Article

A microfluidic device enabling high-efficiency single cell trapping.

Biomicrofluidics ·Vol. 9 ·No. 1 ·2015-01-00 ·页码 014101

Jin D, Deng B, Li JX, Cai W, Tu L, Chen J, Wu Q, Wang WH

Abstract

Single cell trapping increasingly serves as a key manipulation technique in single cell analysis for many cutting-edge cell studies. Due to their inherent advantages, microfluidic devices have been widely used to enable single cell immobilization. To further improve the single cell trapping efficiency, this paper reports on a passive hydrodynamic microfluidic device based on the "least flow resistance path" principle with geometry optimized in line with corresponding cell types. Different from serpentine structure, the core trapping structure of the micro-device consists of a series of concatenated T and inverse T junction pairs which function as bypassing channels and trapping constrictions. This new device enhances the single cell trapping efficiency from three aspects: (1) there is no need to deploy very long or complicated channels to adjust flow resistance, thus saving space for each trapping unit; (2) the trapping works in a "deterministic" manner, thus saving a great deal of cell samples; and (3) the compact configuration allows shorter flowing path of cells in multiple channels, thus increasing the speed and throughput of cell trapping. The mathematical model of the design was proposed and optimization of associated key geometric parameters was conducted based on computational fluid dynamics (CFD) simulation. As a proof demonstration, two types of PDMS microfluidic devices were fabricated to trap HeLa and HEK-293T cells with relatively significant differences in cell sizes. Experimental results showed 100% cell trapping and 90% single cell trapping over 4 × 100 trap sites for these two cell types, respectively. The space saving is estimated to be 2-fold and the cell trapping speed enhancement to be 3-fold compared to previously reported devices. This device can be used for trapping various types of cells and expanded to trap cells in the order of tens of thousands on 1-cm(2) scale area, as a promising tool to pattern large-scale single cells on specific substrates and facilitate on-chip cellular assay at the single cell level.

作者与单位
共 8 位作者,点击展开单位 / ORCID
Jin D
Department of Precision Instruments, Tsinghua University , Beijing, China.
Deng B
Institute of Electronics , Chinese Academy of Sciences, Beijing, China.
Li J X ORCID
School of Life Sciences, Tsinghua University , Beijing, China.
Cai W
North Navigation Control Technology Co., Ltd. , Beijing, China.
Tu L
Department of Precision Instruments, Tsinghua University , Beijing, China.
Chen J
Institute of Electronics , Chinese Academy of Sciences, Beijing, China.
Wu Q
School of Life Sciences, Tsinghua University , Beijing, China.
Wang W H
Department of Precision Instruments, Tsinghua University , Beijing, China.
Article Info
Journal
Biomicrofluidics
Abbr.
Biomicrofluidics
ISSN
1932-1058
Published
2015-01-00
电子出版
2015-00-07
页码
014101
Language
English
Country/Region
United States
NLM ID
101293825
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