DocumentCode :
1416515
Title :
Experimental Characterization and Numerical Modeling of Tissue Electrical Conductivity during Pulsed Electric Fields for Irreversible Electroporation Treatment Planning
Author :
Neal, Robert E., II ; Garcia, Paulo A. ; Robertson, John L. ; Davalos, Rafael V.
Author_Institution :
Bioelectromechanical Syst. Lab., Virginia Tech, Blacksburg, VA, USA
Volume :
59
Issue :
4
fYear :
2012
fDate :
4/1/2012 12:00:00 AM
Firstpage :
1076
Lastpage :
1085
Abstract :
Irreversible electroporation is a new technique to kill cells in targeted tissue, such as tumors, through a nonthermal mechanism using electric pulses to irrecoverably disrupt the cell membrane. Treatment effects relate to the tissue electric field distribution, which can be predicted with numerical modeling for therapy planning. Pulse effects will change the cell and tissue properties through thermal and electroporation (EP)-based processes. This investigation characterizes these changes by measuring the electrical conductivity and temperature of ex vivo renal porcine tissue within a single pulse and for a 200 pulse protocol. These changes are incorporated into an equivalent circuit model for cells and tissue with a variable EP-based resistance, providing a potential method to estimate conductivity as a function of electric field and pulse length for other tissues. Finally, a numerical model using a human kidney volumetric mesh evaluated how treatment predictions vary when EP- and temperature-based electrical conductivity changes are incorporated. We conclude that significant changes in predicted outcomes will occur when the experimental results are applied to the numerical model, where the direction and degree of change varies with the electric field considered.
Keywords :
bioelectric phenomena; biological effects of fields; biomembranes; biothermics; cellular biophysics; equivalent circuits; finite element analysis; kidney; patient treatment; physiological models; tumours; cell equivalent circuit model; cell membrane disruption; electric pulse effects; electroporation based processes; ex vivo renal porcine tissue electrical conductivity; ex vivo renal porcine tissue temperature; human kidney; irreversible cell electroporation; irreversible electroporation treatment planning; nonthermal mechanism; pulsed electric fields; thermal based processes; tissue electric field distribution; tissue electrical conductivity characterization; tissue electrical conductivity numerical modeling; tissue equivalent circuit model; tumors; volumetric mesh; Conductivity; Electric fields; Immune system; Kidney; Mathematical model; Numerical models; Tumors; Bioimpedance; cancer therapy; electrochemotherapy; nonthermal focal tumor ablation; Animals; Cell Membrane Permeability; Computer Simulation; Dose-Response Relationship, Radiation; Electric Conductivity; Electromagnetic Fields; Electroporation; Kidney; Models, Biological; Radiation Dosage; Swine;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/TBME.2012.2182994
Filename :
6125234
Link To Document :
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