Title :
Microdosimetry for Nanosecond Pulsed Electric Field Applications: A Parametric Study for a Single Cell
Author :
Merla, Caterina ; Paffi, Alessandra ; Apollonio, Francesca ; Leveque, Philippe ; D´Inzeo, G. ; Liberti, Micaela
Author_Institution :
Center for the Study of Electro Magn. Fields & BioSystems (ICEmB), Italian Inter-Univ., Rome, Italy
fDate :
5/1/2011 12:00:00 AM
Abstract :
A microdosimetric study of nanosecond pulsed electric fields, including dielectric dispersivity of cell compartments, is proposed in our paper. A quasi-static solution based on the Laplace equation was adapted to wideband signals and used to address the problem of electric field estimation at cellular level. The electric solution was coupled with an asymptotic electroporation model able to predict membrane pore density. An initial result of our paper is the relevance of the dielectric dispersivity, providing evidence that both the transmembrane potential and the pore density are strongly influenced by the choice of modeling used. We note the crucial role played by the dielectric properties of the membrane that can greatly impact on the poration of the cell. This can partly explain the selective action reported on cancerous cells in mixed populations, if one considers that tumor cells may present different dielectric responses. Moreover, these kinds of studies can be useful to determine the appropriate setting of nsPEF generators as well as for the design and optimization of new-generation devices.
Keywords :
Laplace equations; biomembranes; cancer; cellular effects of radiation; dosimetry; electric field effects; physiological models; radiation therapy; Laplace equation; asymptotic electroporation model; cancerous cells; cell compartments; dielectric dispersivity; membrane pore density; microdosimetry; nanosecond pulsed electric field; nsPEF generators; single cell; transmembrane potential; wideband signals; Biological system modeling; Biomembranes; Dielectrics; Equations; Mathematical model; Nanobioscience; Spectrogram; Dielectric model; Laplace solution; microdosimetry; nanosecond pulsed electric fields; pore density; transmembrane potential; Algorithms; Electromagnetic Fields; Electroporation; Membrane Potentials; Models, Biological; Porosity; Single-Cell Analysis;
Journal_Title :
Biomedical Engineering, IEEE Transactions on
DOI :
10.1109/TBME.2010.2104150