DocumentCode
86339
Title
In Vivo Irreversible Electroporation Kidney Ablation: Experimentally Correlated Numerical Models
Author
Neal, Robert E. ; Garcia, Paulo A. ; Kavnoudias, Helen ; Rosenfeldt, Franklin ; Mclean, Catriona A. ; Earl, Victoria ; Bergman, Joanne ; Davalos, Rafael V. ; Thomson, Kenneth R.
Author_Institution
Dept. of Radiol., Alfred Hosp., Melbourne, VIC, Australia
Volume
62
Issue
2
fYear
2015
fDate
Feb. 2015
Firstpage
561
Lastpage
569
Abstract
Irreversible electroporation (IRE) ablation uses brief electric pulses to kill a volume of tissue without damaging the structures contraindicated for surgical resection or thermal ablation, including blood vessels and ureters. IRE offers a targeted nephron-sparing approach for treating kidney tumors, but the relevant organ-specific electrical properties and cellular susceptibility to IRE electric pulses remain to be characterized. Here, a pulse protocol of 100 electric pulses, each 100 μs long, is delivered at 1 pulse/s to canine kidneys at three different voltage-to-distance ratios while measuring intrapulse current, completed 6 h before humane euthanasia. Numerical models were correlated with lesions and electrical measurements to determine electrical conductivity behavior and lethal electric field threshold. Three methods for modeling tissue response to the pulses were investigated (static, linear dynamic, and asymmetrical sigmoid dynamic), where the asymmetrical sigmoid dynamic conductivity function most accurately and precisely matched lesion dimensions, with a lethal electric field threshold of 575 ± 67 V/cm for the protocols used. The linear dynamic model also attains accurate predictions with a simpler function. These findings can aid renal IRE treatment planning under varying electrode geometries and pulse strengths. Histology showed a wholly necrotic core lesion at the highest electric fields, surrounded by a transitional perimeter of differential tissue viability dependent on renal structure.
Keywords
bioelectric phenomena; biological effects of fields; biological techniques; biomedical electrodes; blood vessels; cellular biophysics; electric field measurement; kidney; numerical analysis; patient treatment; pulsed electroacoustic methods; tumours; IRE electric pulses; blood vessels; cellular susceptibility; electrical conductivity behavior; electrode geometries; humane euthanasia; in vivo IRE ablation; intrapulse current measurement; irreversible electroporation ablation; kidney ablation; kidney tumor treatment; lesion dimensions; lethal electric field threshold; linear dynamic model; necrotic core lesion; numerical models; organ-specific electrical property; pulse protocol; pulse strengths; renal IRE treatment; renal structure; surgical resection; targeted nephron-sparing approach; thermal ablation; tissue modeling; tissue volume; ureters; voltage-to-distance ratio; Conductivity; Electric fields; Electrodes; Kidney; Lesions; Numerical models; Protocols; Bioimpedance; Dynamic conductivity; IRE; Nonthermal Focal Tumor Ablation; Translational Targeted Cancer Therapy; dynamic conductivity; nonthermal focal tumor ablation; translational targeted cancer therapy;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/TBME.2014.2360374
Filename
6910275
Link To Document