A microfluidic platform for measuring electrical activity across cells

被引:7
|
作者
Bathany, Cedric [1 ]
Beahm, Derek L. [2 ]
Besch, Steve [2 ]
Sachs, Frederick [2 ]
Hua, Susan Z. [1 ,2 ]
机构
[1] SUNY Buffalo, Dept Mech & Aerosp Engn, Buffalo, NY 14260 USA
[2] SUNY Buffalo, Dept Physiol & Biophys, Buffalo, NY 14260 USA
基金
美国国家科学基金会;
关键词
GAP-JUNCTION CHANNELS; INTERCELLULAR COMMUNICATION; CONDUCTANCE; EXPRESSION; PERMEABILITY; PHARMACOLOGY; CONNEXIN43; HEART; BLOCK; CHIP;
D O I
10.1063/1.4754599
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
In this paper, we present a microfluidic chip that is capable of measuring electrical conductance through gap junction channels in a 2-dimensional cell sheet. The chip utilizes a tri-stream laminar flow to create a non-conductive sucrose gap between the two conducting solutions so that electrical current can pass across the sucrose gap only through the cells. Using the chip, we tested the effect of a gap junction inhibitor, 2-APB, on the electrical coupling of connexin 43 (Cx43) gap junction channels in NRK-49F cells. We found that 2-APB reversibly blocks the conductivity in a dose-dependent manner. The tri-stream chip further allows us to simultaneously follow the conductance changes and dye diffusion in real time. We show that 2-APB affects both conductance and diffusion, supporting the interpretation that both sets of data reflect the same gap junction activity. The chip provides a generic platform to investigate gap junction properties and to screen drugs that may inhibit or potentiate gap junction transmission. (C) 2012 American Institute of Physics. [http://dx.doi.org/10.1063/1.4754599]
引用
收藏
页数:9
相关论文
共 50 条
  • [41] A MICROFLUIDIC PLATFORM FOR EVALUATING ANODE SUBSTRATES FOR MICROBIAL FUEL CELLS
    Jones, A-Andrew D., III
    Buie, Cullen R.
    INTERNATIONAL MECHANICAL ENGINEERING CONGRESS AND EXPOSITION - 2012, VOL 9, PTS A AND B, 2013, : 381 - 385
  • [42] Massive Parallel Analysis of Single Cells in an Integrated Microfluidic Platform
    Jimenez-Valdes, Rocio J.
    Rodriguez-Moncayo, Roberto
    Cedillo-Alcantar, Diana F.
    Garcia-Cordero, Jose L.
    ANALYTICAL CHEMISTRY, 2017, 89 (10) : 5210 - 5220
  • [43] Microfluidic platform for chemoresistive testing of lung cancer stem cells
    Ruppen, J.
    Cortes-Derick, L.
    Marconi, E.
    Felder, M.
    Barbe, L.
    Schmid, R.
    Karoubi, G.
    Guenat, O.
    BRITISH JOURNAL OF SURGERY, 2012, 99 : 23 - 23
  • [44] Microfluidic Platform for Mechano-Investigation of Single Plant Cells
    Thorand, Eric
    Pilizota, Teuta
    Nakayama, Naomi
    BIOPHYSICAL JOURNAL, 2016, 110 (03) : 135A - 135A
  • [45] A microfluidic platform with castellated electrodes to separate cancer cells from blood cells
    Al-Ali, Abdulla
    Waheed, Waqas
    Abu-Nada, Eiyad
    Mathew, Bobby
    Sung, Hyung Jin
    Alazzam, Anas
    2020 INTERNATIONAL CONFERENCE ON MANIPULATION, AUTOMATION AND ROBOTICS AT SMALL SCALES (MARSS 2020), 2020, : 46 - +
  • [46] Microfluidic in vitro platform for imaging metastasis: Perfusable microvascular networks and cancer cells on a microfluidic chip
    Jeon, Noo Li
    Kim, Sudong
    Hyunjae, Lee
    Minhwan, Chung
    CANCER RESEARCH, 2013, 73
  • [47] Measuring Gastrointestinal Electrical Activity With Extracellular Electrodes
    O'Grady, Gregory
    Angeli, Timothy R.
    Du, Peng
    Cheng, Leo K.
    JOURNAL OF NEUROGASTROENTEROLOGY AND MOTILITY, 2015, 21 (04) : 623 - 624
  • [48] PROBE FOR MEASURING ELECTRICAL ACTIVITY OF HUMAN STOMACH
    GOODMAN, EN
    SANDLER, BT
    SULLIVAN, MR
    AMERICAN JOURNAL OF GASTROENTEROLOGY, 1964, 42 (05): : 511 - &
  • [49] A highly sensitive nanopore platform for measuring RNase A activity
    Zheng, Haiyan
    Munusamy, Sathishkumar
    Arora, Pearl
    Jahani, Rana
    Guan, Xiyun
    TALANTA, 2024, 276
  • [50] MICROFLUIDIC IMPEDANCE CYTOMETRY: MEASURING SINGLE CELLS AT HIGH SPEED
    Sun, Tao
    Morgan, Hywel
    MICROFLUIDICS BASED MICROSYSTEMS: FUNDAMENTALS AND APPLICATIONS, 2010, : 507 - 527