DocumentCode
2394731
Title
Conduction analysis in mixed cardiomyocytes-fibroblasts cultures using microelectrode arrays
Author
Roy, Shilpi ; Chen, Michael Q. ; Kovacs, Gregory T A ; Giovangrandi, Laurent
Author_Institution
Dept. of Electr. Eng., Stanford Univ., Stanford, CA, USA
fYear
2009
fDate
3-6 Sept. 2009
Firstpage
4250
Lastpage
4253
Abstract
Models for cardiac arrhythmia currently exist primarily in in-vivo and computer simulation form. Towards the development of such a model in-vitro, a better understanding of electrical conduction in heterogeneous cultures is required. Increasing ratios of cardiomyocytes and fibroblasts were cultured on 500 times 500 mum arrays of 36 microelectrodes to study the emergence and properties of action potential propagation in mixed cultures. A minimum ratio of 70% cardiomyocytes to 30% fibroblasts was found to be necessary for detection of electrical activity. However, the establishment of a continuous, homogeneous depolarization wave across the culture required a higher proportion of cardiomyocytes; even a 90:10 ratio was unable to consistently produce a unidirectional, uniform depolarization wave as is seen in controls. This model underlines the importance and sensitivity of tissue homogeneity in supporting electrical conduction, and is especially relevant to studies of arrhythmia (reentry) and stem cell grafts.
Keywords
bioelectric potentials; biomedical electrodes; biomedical measurement; cardiology; cellular biophysics; medical disorders; microelectrodes; muscle; physiological models; action potential propagation; cardiac arrhythmia models; continuous homogeneous depolarization wave; electrical activity detection; electrical conduction analysis; heterogeneous cultures; in-vitro study; microelectrode arrays; mixed cardiomyocytes-fibroblast cultures; size 500 mum; stem cell graft; tissue homogeneity; unidirectional uniform depolarization wave; Action Potentials; Animals; Arrhythmias, Cardiac; Cell Line; Cells, Cultured; Coculture Techniques; Electric Conductivity; Equipment Design; Fibroblasts; Green Fluorescent Proteins; Humans; Mice; Microelectrodes; Myocytes, Cardiac; Time Factors;
fLanguage
English
Publisher
ieee
Conference_Titel
Engineering in Medicine and Biology Society, 2009. EMBC 2009. Annual International Conference of the IEEE
Conference_Location
Minneapolis, MN
ISSN
1557-170X
Print_ISBN
978-1-4244-3296-7
Electronic_ISBN
1557-170X
Type
conf
DOI
10.1109/IEMBS.2009.5333605
Filename
5333605
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