Microfluidic device for mechanical dissociation of cancer cell aggregates into single cells

被引:33
|
作者
Qiu, Xiaolong [1 ]
De Jesus, Janice [1 ]
Pennell, Marissa [1 ]
Troiani, Marco [1 ]
Haun, Jered B. [1 ,2 ,3 ]
机构
[1] Univ Calif Irvine, Dept Biomed Engn, Irvine, CA 92697 USA
[2] Univ Calif Irvine, Dept Chem Engn & Mat Sci, Irvine, CA 92697 USA
[3] Univ Calif Irvine, Chao Family Comprehens Canc Ctr, Irvine, CA 92697 USA
基金
美国国家卫生研究院;
关键词
GENE-EXPRESSION PROFILES; NEEDLE-ASPIRATION BIOPSY; ENZYME-FREE DISSOCIATION; IDENTIFICATION;
D O I
10.1039/c4lc01126k
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Tumors tissues house a diverse array of cell types, requiring powerful cell-based analysis methods to characterize cellular heterogeneity and identify rare cells. Tumor tissue is dissociated into single cells by treatment with proteolytic enzymes, followed by mechanical disruption using vortexing or pipetting. These procedures can be incomplete and require significant time, and the latter mechanical treatments are poorly defined and controlled. Here, we present a novel microfluidic device to improve mechanical dissociation of digested tissue and cell aggregates into single cells. The device design includes a network of branching channels that range in size from millimeters down to hundreds of microns. The channels also contain flow constrictions that generate well-defined regions of high shear force, which we refer to as "hydrodynamic micro-scalpels", to progressively disaggregate tissue fragments and clusters into single cells. We show using in vitro cancer cell models that the microfluidic device significantly enhances cell recovery in comparison to mechanical disruption by pipetting and vortexing after digestion with trypsin or incubation with EDTA. Notably, the device enabled superior results to be obtained after shorter proteolytic digestion times, resulting in fully viable cells in less than ten minutes. The device could also be operated under enzyme-free conditions that could better maintain expression of certain surface markers. The microfluidic format is advantageous because it enables application of well-defined mechanical forces and rapid processing times. Furthermore, it may be possible to directly integrate downstream processing and detection operations to create integrated cell-based analysis platforms. The enhanced capabilities enabled by our novel device may help promote applications of single cell detection and purification techniques to tumor tissue specimens, advancing the current understanding of cancer biology and enabling molecular diagnostics in clinical settings.
引用
收藏
页码:339 / 350
页数:12
相关论文
共 50 条
  • [31] A microfluidic device for chemical and mechanical stimulation of mesenchymal stem cells
    Wu, Huei-Wen
    Lin, Chun-Che
    Hwang, Shiaw-Min
    Chang, Yu-Jen
    Lee, Gwo-Bin
    MICROFLUIDICS AND NANOFLUIDICS, 2011, 11 (05) : 545 - 556
  • [32] Microfluidic Device with Dual Mechanical Cues for Cell Migration Investigation
    Tsai, Chin-Hsiung
    Kuo, Po-Ling
    2013 35TH ANNUAL INTERNATIONAL CONFERENCE OF THE IEEE ENGINEERING IN MEDICINE AND BIOLOGY SOCIETY (EMBC), 2013, : 842 - 845
  • [33] Mechanical-stress microfluidic device for stem cell stimulation
    Tsao, Chia-Wen
    Yeh, Li-Chiang
    Cheng, Yu-Che
    2014 IEEE INTERNATIONAL NANOELECTRONICS CONFERENCE (INEC), 2014,
  • [34] Simple Isolation of Single Cell: Thin Glass Microfluidic Device for Observation of Isolated Single Euglena gracilis Cells
    Ota, Nobutoshi
    Yalikun, Yaxiaer
    Tanaka, Nobuyuki
    Shen, Yigang
    Aishan, Yusufu
    Nagahama, Yuki
    Oikawa, Minoru
    Tanaka, Yo
    ANALYTICAL SCIENCES, 2019, 35 (05) : 577 - 583
  • [35] Simple Isolation of Single Cell: Thin Glass Microfluidic Device for Observation of Isolated Single Euglena gracilis Cells
    Nobutoshi Ota
    Yaxiaer Yalikun
    Nobuyuki Tanaka
    Yigang Shen
    Yusufu Aishan
    Yuki Nagahama
    Minoru Oikawa
    Yo Tanaka
    Analytical Sciences, 2019, 35 : 577 - 583
  • [36] Mammosphere culture of cancer stem cells in a microfluidic device
    Saadin, Katayoon
    White, Ian M.
    MICROFLUIDICS, BIOMEMS, AND MEDICAL MICROSYSTEMS X, 2012, 8251
  • [37] Sequencing of human genomes extracted from single cancer cells isolated in a valveless microfluidic device
    Marie, Rodolphe
    Podenphant, Marie
    Koprowska, Kamila
    Baerlocher, Loic
    Vulders, Roland C. M.
    Wilding, Jennifer
    Ashley, Neil
    McGowan, Simon J.
    van Strijp, Dianne
    van Hemert, Freek
    Olesen, Tom
    Agersnap, Niels
    Bilenberg, Brian
    Sabatel, Celine
    Schira, Julien
    Kristensen, Anders
    Bodmer, Walter
    van der Zaag, Pieter J.
    Mir, Kalim U.
    LAB ON A CHIP, 2018, 18 (13) : 1891 - 1902
  • [38] Mechanical characterization of single cells based on microfluidic techniques
    Huang, Jianyong
    Lin, Feng
    Xiong, Chunyang
    TRAC-TRENDS IN ANALYTICAL CHEMISTRY, 2019, 117 : 47 - 57
  • [39] Gene transfer and protein dynamics in stem cells using single cell electroporation in a microfluidic device
    Valero, A.
    Post, J. N.
    van Nieuwkasteele, J. W.
    ter Braak, P. M.
    Kruijer, W.
    van den Berg, A.
    LAB ON A CHIP, 2008, 8 (01) : 62 - 67
  • [40] Microfluidic devices for mechanical characterisation of single cells in suspension
    Zheng, Yi
    Sun, Yu
    MICRO & NANO LETTERS, 2011, 6 (05): : 327 - 331