Metabolic viability of Escherichia coli trapped by dielectrophoresis in microfluidics

被引:16
作者
Donato, Sandra S. [1 ,2 ,3 ]
Chu, Virginia [1 ,2 ]
Prazeres, Duarte M. F. [3 ,4 ]
Conde, Joao P. [1 ,2 ,4 ]
机构
[1] INESC Microsistemas & Nanotecnol, Lisbon, Portugal
[2] IN Inst Nanosci & Nanotechnol, Lisbon, Portugal
[3] Univ Tecn Lisboa, IBB, Ctr Biol & Chem Engn, Inst Super Tecn, P-1000029 Lisbon, Portugal
[4] Univ Tecn Lisboa, Inst Super Tecn, Dept Bioengn, P-1000029 Lisbon, Portugal
关键词
Dielectrophoresis; Escherichia coli; Fluorescence microscopy; Metabolic viability; Microfluidics; SEPARATION; DEVICES;
D O I
10.1002/elps.201200292
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
The spatial and temporal control of biological species is essential in complex microfluidic biosystems. In addition, if the biological species is a cell, microfluidic handling must ensure that the cell's metabolic viability is maintained. The use of DEP for cell manipulation in microfluidics has many advantages because it is remote and fast, and the voltages required for cell trapping scale well with miniaturization. In this paper, the conditions for bacterial cell (Escherichia coli) trapping using a quadrupole electrode configuration in a PDMS microfluidic channel were developed both for stagnant and for in-flow fluidic situations. The effect of the electrical conductivity of the fluid, the applied electric field and frequency, and the fluid-flow velocity were studied. A dynamic exchange between captured and free-flowing cells during DEP trapping was demonstrated. The metabolic activity of trapped cells was confirmed by using E. coli cells genetically engineered to express green fluorescent protein under the control of an inducible promoter. Noninduced cells trapped by negative DEP and positive DEP were able to express green fluorescent protein minutes after the inducer was inserted in the microchannel system immediately after DEP trapping. Longer times of trapping prior to exposure to the inducer indicated first a degradation of the cell metabolic activity and finally cell death.
引用
收藏
页码:575 / 582
页数:8
相关论文
共 26 条
  • [1] [Anonymous], 2005, ELECTROMECHANICS PAR
  • [2] [Anonymous], 1978, CAMBRIDGE MONOGRAPHS
  • [3] Cell isolation and growth in electric-field defined micro-wells
    Arnold, W. Mike
    Franich, Nick R.
    [J]. CURRENT APPLIED PHYSICS, 2006, 6 (03) : 371 - 374
  • [4] SEPARATION OF HUMAN BREAST-CANCER CELLS FROM BLOOD BY DIFFERENTIAL DIELECTRIC AFFINITY
    BECKER, FF
    WANG, XB
    HUANG, Y
    PETHIG, R
    VYKOUKAL, J
    GASCOYNE, PRC
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 1995, 92 (03) : 860 - 864
  • [5] Dielectrophoresis as a tool to characterize and differentiate isogenic mutants of Escherichia coli
    Castellarnau, M.
    Errachid, A.
    Madrid, C.
    Juarez, A.
    Samitier, J.
    [J]. BIOPHYSICAL JOURNAL, 2006, 91 (10) : 3937 - 3945
  • [6] Cooper G., 2009, CELL MOL APPROACH
  • [7] Control and detection of chemical reactions in microfluidic systems
    deMello, Andrew J.
    [J]. NATURE, 2006, 442 (7101) : 394 - 402
  • [8] Edwards C., 1999, ENV MONITORING BACTE
  • [9] Microchips for CE: Breakthroughs in real-world food analysis
    Escarpa, Alberto
    Cristina Gonzalez, Maria
    Lopez Gil, Miguel Angel
    Crevillen, Agustin G.
    Hervas, Miriam
    Garcia, Miguel
    [J]. ELECTROPHORESIS, 2008, 29 (24) : 4852 - 4861
  • [10] Micro- and nanofluidic devices for environmental and biomedical applications
    Gardeniers, H
    Van den Berg, A
    [J]. INTERNATIONAL JOURNAL OF ENVIRONMENTAL ANALYTICAL CHEMISTRY, 2004, 84 (11) : 809 - 819