DocumentCode
242607
Title
Exposure of cells to electric fields: Numerical analysis with a volume-integral-equation approach
Author
Vanegas-Acosta, J.C. ; Lancellotti, V. ; Zwamborn, A.P.M.
Author_Institution
Fac. of Electr. Eng., Eindhoven Univ. of Technol., Eindhoven, Netherlands
fYear
2014
fDate
6-11 April 2014
Firstpage
3189
Lastpage
3193
Abstract
The exposure of biological cells to an incident electric field (EF) affects cellular behaviour. However, the interaction mechanisms are still a matter of discussion. Although most of the evidence comes from experimental trials, numerical simulations are helpful to obviate the lack of reproducible experimental results and to resolve contradictory conclusions. In this work we present a numerical framework for computing the intracellular EF in arbitrary-shaped biological cells with nucleus. As an example, up to four inhomogeneous cells exposed to an incident EF of 1 V/m at 2.45 GHz are studied. The solution is obtained by implementing the electric flux volume integral equation (VIE) and the Method of Moments (MoM) with SchaubertWilton-Glisson (SWG) basis functions. Qualitative results show that the intracellular EF is related to the neighboring cells in terms of number and position. Quantitative analysis shows intracellular variations in the order of 20-30 mV/mm, which might be enough to trigger biological responses in cells. Therefore, this approach may be suitable to further investigate the cell-cell EF interactions, especially in non-canonical shaped cells with non-concentric nucleus.
Keywords
biological effects of fields; cellular effects of radiation; electric fields; geometry; integral equations; numerical analysis; statistical analysis; MoM method; SWG basis functions; SchaubertWilton-Glisson basis functions; VIE method; arbitrary biological cell shape; biological cell behaviour; biological responses; cell responses; cell-cell EF interactions; cell-field interaction mechanisms; electric field exposure; electric flux volume integral equation; frequency 2.45 GHz; incident electric field effects; inhomogeneous cells; intracellular EF computation; intracellular variations; method of moments; neighboring cell EF; noncanonical shaped cells; nonconcentric cellular nucleus; numerical analysis; quantitative analysis; Antennas; Biological system modeling; Biomembranes; Cells (biology);
fLanguage
English
Publisher
ieee
Conference_Titel
Antennas and Propagation (EuCAP), 2014 8th European Conference on
Conference_Location
The Hague
Type
conf
DOI
10.1109/EuCAP.2014.6902506
Filename
6902506
Link To Document