A microfluidic device for measuring cellular membrane potential

被引:42
|
作者
Farinas, J [1 ]
Chow, AW [1 ]
Wada, HG [1 ]
机构
[1] Caliper Technol Corp, Cell Biol & Microfluid Grp, Mt View, CA 94043 USA
关键词
D O I
10.1006/abio.2001.5202
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Recent developments in microfluidics have enabled the design of a lab-on-a-chip system capable of measuring cellular membrane potential. The chip accesses liquid samples sequentially by sipping from a microplate through a capillary, mixes the samples with cells flowing through a microchannel, contacts the cells with potential-sensitive dyes, and reads out cellular responses using fluorescence detection. The rate of cellular uptake of membrane-permeable, ionic fluorophores by THP-I cells was found to depend strongly on membrane potential. The ratio of the fluorescence of the anionic dye DiBAC(4)(3) and the cationic dye Syto 62 taken up by cells was found to double for every 33 mV change in membrane potential. The utility of this approach was demonstrated by assaying ion channel activity in human T lymphocytes. Because of the high sensitivity, low cellular and reagent consumption, and high data quality obtained with the microfluidic device, the lab-on-a-chip system should be widely applicable in high-throughput screening and functional genomics studies. (C) 2001 Academic Press.
引用
收藏
页码:138 / 142
页数:5
相关论文
共 50 条
  • [31] Transport and shear in a microfluidic membrane bilayer device for cell culture
    Inamdar, Niraj K.
    Griffith, Linda G.
    Borenstein, Jeffrey T.
    BIOMICROFLUIDICS, 2011, 5 (02):
  • [32] A microfluidic membrane device to mimic critical components of the vascular microenvironment
    Srigunapalan, Suthan
    Lam, Cameron
    Wheeler, Aaron R.
    Simmons, Craig A.
    BIOMICROFLUIDICS, 2011, 5 (01):
  • [33] Measuring Cell Viscoelastic Properties Using a Microfluidic Extensional Flow Device
    Guillou, Lionel
    Dahl, Joanna B.
    Lin, Jung-Ming G.
    Barakat, Abdui I.
    Husson, Julien
    Muller, Susan J.
    Kumar, Sanjay
    BIOPHYSICAL JOURNAL, 2016, 111 (09) : 2039 - 2050
  • [34] Microfluidic device for applying a mechanical stimulus to a large number of cellular nuclei
    Totani, Masahiro
    Kojima, Masaru
    Horade, Mitsuhiro
    Mae, Yasushi
    Ogura, Toshihiko
    Kaneko, Makoto
    Arai, Tatsuo
    2017 INTERNATIONAL SYMPOSIUM ON MICRO-NANOMECHATRONICS AND HUMAN SCIENCE (MHS), 2017,
  • [35] Microfluidic Device for Studying Controllable Hydrodynamic Flow Induced Cellular Responses
    Zheng, Chunhong
    Zhang, Xiannian
    Li, Chunmei
    Pang, Yuhong
    Huang, Yanyi
    ANALYTICAL CHEMISTRY, 2017, 89 (06) : 3710 - 3715
  • [36] Microfluidic device on a nonwoven fabric: A potential biosensor for lactate detection
    Baysal, Gulcin
    Onder, Sakip
    Gocek, Ikilem
    Trabzon, Levent
    Kizil, Huseyin
    Kok, Fatma Nese
    Kayaoglu, Burcak Karaguzel
    TEXTILE RESEARCH JOURNAL, 2014, 84 (16) : 1729 - 1741
  • [37] A New Membrane-type Microfluidic Device for Rapid Bacteria Isolation
    Lee, Wen-Bin
    Yu, Ju-Ching
    Lee, Gwo-Bin
    2017 IEEE 12TH INTERNATIONAL CONFERENCE ON NANO/MICRO ENGINEERED AND MOLECULAR SYSTEMS (NEMS), 2017, : 430 - 433
  • [38] Liquid membrane operations in a microfluidic device for selective separation of metal ions
    Maruyama, T
    Matsushita, H
    Uchida, J
    Kubota, F
    Kamiya, N
    Goto, M
    ANALYTICAL CHEMISTRY, 2004, 76 (15) : 4495 - 4500
  • [39] Convection–diffusion molecular transport in a microfluidic bilayer device with a porous membrane
    Timothy S. Frost
    Victor Estrada
    Linan Jiang
    Yitshak Zohar
    Microfluidics and Nanofluidics, 2019, 23
  • [40] Compressive cell stimulation using PDMS membrane deflection in a microfluidic device
    Kim, Yu Chang
    Kang, Joo H.
    Park, Sang-Jin
    Yoon, Eui-Soo
    Park, Je-Kyun
    TRANSDUCERS '07 & EUROSENSORS XXI, DIGEST OF TECHNICAL PAPERS, VOLS 1 AND 2, 2007,