Title :
Electrode design improvement for impedance evaluation of biological cell culture under variable frequency low intensity sinusoidal electric field
Author :
Chaudhuri, C. Roy ; Mondal, Debasish
Author_Institution :
Dept. of Electron. & Telecommun. Eng., Bengal Eng. & Sci. Univ., Howrah, India
Abstract :
In this paper the electrode geometry effects on the impedance spectroscopy of biological cell culture have been studied under low intensity sinusoidal electric field with a view to design improved electrode structures for continuous cell growth monitoring. To achieve this, impedance estimation has been done by modified distributed analysis both in presence and absence of confluent cell layer by taking into account the effect of solution resistance and the separation between the electrodes. The model has been applied on fibroblast cell culture (3T3) in the frequency range of 10 Hz to 10 kHz. It has been observed that for most of the frequencies, the resistance sensitivity (Sr) is less than the capacitance sensitivity (Sc) and does not increase monotonically with radius of working electrode (Re) unlike Sc. Further, the nature of variation of Sr and Sc are fairly contradictory with variation in Re and separation between the electrodes (d-Re). Thus an optimum geometry has been selected based on a figure of merit (FOM) which has been defined as the product of Sr and Sc. The maximum FOM corresponds to Re=90 μm and d=3Re for a typical frequency of 4 kHz. Observations at 4 kHz show that the optimized geometry yields values of Sr that are almost 5 times higher than those from the conventional geometry (Re=125 μm and d=300Re). This increase permits the small signals resulting from the micromotion of cells to be more easily seen.
Keywords :
biological techniques; cellular biophysics; electric fields; electric impedance measurement; electrochemical electrodes; electrochemical impedance spectroscopy; 3T3 fibroblast cell culture; biological cell culture impedance evaluation; biological cell culture impedance spectroscopy; capacitance sensitivity; confluent cell layer; continuous cell growth monitoring; electrode design improvement; electrode geometry effects; electrode separation; figure of merit; frequency 10 Hz to 10 kHz; impedance estimation; modified distributed analysis; optimized geometry; resistance sensitivity; solution resistance effects; variable frequency low intensity sinusoidal electric field; Capacitance; Electrodes; Equations; Immune system; Impedance; Mathematical model; Resistance; Biological cells; distributed estimation; electrode; impedance measurement; optimization;
Journal_Title :
Dielectrics and Electrical Insulation, IEEE Transactions on
DOI :
10.1109/TDEI.2013.6508738