DocumentCode :
30617
Title :
Electrical Analysis of Cell Membrane Poration by an Intense Nanosecond Pulsed Electric Field Using an Atomistic-to-Continuum Method
Author :
Kohler, Sophie ; Levine, Zachary A. ; Garcia-Fernandez, Miguel A. ; Ming-Chak Ho ; Vernier, P. Thomas ; Leveque, Philippe ; Arnaud-Cormos, Delia
Author_Institution :
XLIM Res. Inst., Univ. of Limoges, Limoges, France
Volume :
63
Issue :
6
fYear :
2015
fDate :
Jun-15
Firstpage :
2032
Lastpage :
2040
Abstract :
Pulsed electric fields of sufficient magnitude and duration trigger functional responses and modifications in biological cells. Transient nanometer-sized pores are believed to form within nanoseconds in cell membranes exposed to high-intensity (MV/m) nanosecond pulsed electric fields (nsPEFs), and while it is clear that polar water molecules play a key role in electroporation, no signature for pore initiation has yet been identified. To address this, we combine molecular dynamics simulations and quasi-static 3-D finite-difference analysis to investigate the electrostatic interactions that drive pore formation in homogenous lipid bilayers exposed to intense nsPEFs. The developed methodology uniquely enables the extraction of 3-D spatiotemporal profiles of electric potentials, electric fields, and electric field gradients in biological membranes with atomistic detail and sub-nanosecond resolution. As a result, this study captures and elucidates several dynamic phenomena observed experimentally and provides a fundamental framework for further development.
Keywords :
biochemistry; bioelectric potentials; biological effects of fields; biomembranes; biomolecular effects of radiation; cellular effects of radiation; electrostatics; finite difference methods; high-speed techniques; lipid bilayers; molecular dynamics method; nanoporous materials; spatiotemporal phenomena; water; 3D spatiotemporal profile extraction; H2O; atomistic detail; atomistic-to-continuum method; biological cell functional response trigger; biological cell modification trigger; cell membrane poration; electric field gradient profile; electric field profile; electric potential profile; electrical analysis; electroporation; electrostatic interaction; high-intensity nsPEF exposure; homogenous lipid bilayer; intense nanosecond pulsed electric field exposure; molecular dynamics simulation; polar water molecule effect; pore initiation signature; pulsed electric field duration; pulsed electric field magnitude; quasistatic 3D finite difference analysis; subnanosecond resolution; transient nanometer-sized pore formation; Biomembranes; Computational modeling; Electric fields; Electric potential; Electrostatics; Lipidomics; Nanobioscience; Bioelectric phenomena; biological system modeling; dosimetry; multiscale modeling; pulsed power;
fLanguage :
English
Journal_Title :
Microwave Theory and Techniques, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9480
Type :
jour
DOI :
10.1109/TMTT.2015.2418764
Filename :
7087401
Link To Document :
بازگشت