Dielectrophoretic Concentration and Separation of Live and Dead Bacteria in an Array of Insulators
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- 18 February 2004
- journal article
- research article
- Published by American Chemical Society (ACS) in Analytical Chemistry
- Vol. 76 (6) , 1571-1579
- https://doi.org/10.1021/ac034804j
Abstract
Insulator-based (electrodeless) dielectrophoresis (iDEP) is an innovative approach in which the nonuniform electric field needed to drive DEP is produced by insulators, avoiding problems associated with the use of electrodes. Live and dead Escherichia coli were concentrated and selectively released by applying stepped DC voltages across a microchannel containing an array of insulating posts etched in glass. The only electrodes present were two platinum wires placed in the inlet and outlet reservoirs, producing mean electric fields of up to 200 V/mm across the insulators. The cells were labeled with Syto 9 and propidium iodide and imaged through a fluorescent microscope. Cell trapping and release were controlled by modifying the relative responses of electrokinesis and DEP by adjusting the magnitude of the applied voltage. Dead cells were observed to have significantly lower dielectrophoretic mobility than live cells, whereas the electrokinetic mobilities of live and dead cells were indistinguishable. The locations of the bands of differentially trapped cells were consistent with predictions. In addition, cells were selectively trapped and concentrated against backgrounds of 1- and 0.2-μm carboxylate-modified polystyrene particles. This first application of iDEP for simultaneous live/dead bacteria separation and concentration illustrates its potential as a front-end method for bacterial analysis.Keywords
This publication has 43 references indexed in Scilit:
- Selective detection of specific bacteria using dielectrophoretic impedance measurement method combined with an antigen–antibody reactionJournal of Electrostatics, 2003
- Detection ofEscherichia coli O157:H7 bacteria by a combination of immunofluorescent staining and capillary electrophoresisElectrophoresis, 2003
- Selective detection of viable bacteria using dielectrophoretic impedance measurement methodJournal of Electrostatics, 2002
- Capillary electrophoresis of macromolecular biological assemblies: bacteria and virusesTrAC Trends in Analytical Chemistry, 2001
- A 3-D microelectrode system for handling and caging single cells and particlesBiosensors and Bioelectronics, 1999
- Applications of dielectrophoresis in biotechnologyTrends in Biotechnology, 1997
- Dielectrophoretic investigations of sub-micrometre latex spheresJournal of Physics D: Applied Physics, 1997
- DEP-FFF: Field-Flow Fractionation Using Non-Uniform Electric FieldsJournal of Liquid Chromatography & Related Technologies, 1997
- Trapping of viruses in high-frequency electric field cagesThe Science of Nature, 1996
- Separation of viable and non-viable yeast using dielectrophoresisJournal of Biotechnology, 1994