DocumentCode :
1513793
Title :
Dielectrophoretic trapping of dissociated fetal cortical rat neurons
Author :
Heida, Tjitske ; Rutten, Wim L C ; Marani, Enrico
Author_Institution :
Inst. for Biomed. Technol., Twente Univ., Enschede, Netherlands
Volume :
48
Issue :
8
fYear :
2001
Firstpage :
921
Lastpage :
930
Abstract :
Recording and stimulating neuronal activity at multiple sites can be realized with planar microelectrode arrays. Efficient use of such arrays requires each site to be covered by at least one neuron. By application of dielectrophoresis (DEP), neurons can be trapped onto these sites. This study investigates negative dielectrophoretic trapping of fetal cortical rat neurons. A planar quadrupole microelectrode structure was used for the creation of a nonuniform electric field. The field was varied in amplitude (1, 3, and 5 V) and frequency (10 kHz-50 MHz). Experimental results were compared with a theoretical model to investigate the yield (the number of neurons trapped in the center of the electrode structure) with respect to time, amplitude and frequency of the field. The yield was a function of time 13/ according to theory. However, unlike the model predicted, an amplitude-dependent frequency behavior was present and unexpected peaks occurred in the DEP-spectra above 1 MHz. Gain/phase measurements showed a rather unpredictable behavior of the electrode plate above 1 MHz, and temperature measurement showed that heating of the medium influenced the trapping effect, especially for larger amplitudes and higher frequencies.
Keywords :
arrays; bioelectric phenomena; biological techniques; brain; cellular biophysics; electrophoresis; microelectrodes; neurophysiology; 1 to 5 V; 10 kHz to 50 MHz; amplitude-dependent frequency behavior; dielectrophoretic trapping; dissociated fetal cortical rat neurons; electrode plate; neuroscience method; nonuniform electric field; planar microelectrode arrays; planar quadrupole microelectrode structure; single-shell model; temperature measurement; trapping effect; unexpected peaks; Dielectrophoresis; Electrodes; Frequency; Heating; Microelectrodes; Neurons; Nonuniform electric fields; Phase measurement; Predictive models; Temperature measurement; Animals; Cerebral Cortex; Electric Conductivity; Equipment Design; Fetus; Microelectrodes; Models, Theoretical; Neurons; Rats; Signal Processing, Computer-Assisted;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/10.936368
Filename :
936368
Link To Document :
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