Title :
Extended Electrical Model for Impedance Characterization of Cultured HeLa Cells in Non-Confluent State Using ECIS Electrodes
Author :
Mondal, Debasish ; RoyChaudhuri, C.
Author_Institution :
Sch. of Mater. Sci. & Eng., Bengal Eng. & Sci. Univ. Shibpur, Howrah, India
Abstract :
Electric cell substrate impedance sensing has been widely used as a label free quantitative platform to study various cell biological processes and it is extremely essential to extract the parameters like the variation of the cell substrate spacing, changing projected area of the cell on the electrode and approximate cluster size during the non-confluent state to understand the mechanism of proliferation of the cells. The distributed analytical models developed so far to extract these parameters are applicable only under the conditions when the cells have become confluent. There are some lumped electrical models which have been reported for the non-confluent state but they do not provide correct estimate of the changing cell substrate spacing and the cell cluster size during growth. In this paper we develop extended distributed electrical models to characterize the impedance spectroscopy behavior of cultured HeLa cells in 200 Hz to 1 MHz range using eight well ECIS electrodes in the non-confluent state. The distributed model introduces some pseudo regularity in the arrangement of the non-confluent cells to extract the average ensemble of the significant parameters. The parameters extracted from the distributed model after 10 hours, 20 hours, and 30 hours of HeLa cell growth have been compared with the lumped circuit model and has been observed to fit the experimental data with a seven times improved fit quality factor. Further, the changing cell radius and cluster radius extracted at three different instants of time from the distributed analytical model have been found to match closely the microscopic observation in contrast to the lumped circuit model.
Keywords :
bioelectric phenomena; biological techniques; cellular transport; electrochemical electrodes; electrochemical impedance spectroscopy; physiological models; HeLa cell growth; cell biological processes; cell cluster size; cell proliferation mechanism; cell radius; cell substrate spacing variation; cluster radius; cultured HeLa cell; distributed analytical model; electric cell substrate impedance sensing; extended distributed electrical model; frequency 200 Hz to 1 MHz; impedance characterization; impedance spectroscopy behavior; label free quantitative platform; lumped circuit model; lumped electrical model; microscopic observation; nonconfluent cell arrangement; nonconfluent state; pseudo regularity; quality factor; time 10 hr; time 20 hr; time 30 hr; well ECIS electrode; Analytical models; Cells (biology); Electric potential; Electrodes; Impedance; Integrated circuit modeling; Substrates; Electric cell substrate impedance sensing; extended electrical model; impedance characterization; non-confluent state; Cell Culture Techniques; Cell Physiological Processes; Cytological Techniques; Electric Impedance; Electrodes; HeLa Cells; Humans; Photomicrography; Reproducibility of Results;
Journal_Title :
NanoBioscience, IEEE Transactions on
DOI :
10.1109/TNB.2013.2266375