DocumentCode :
978266
Title :
In vivo results of a new focal tissue ablation technique: irreversible electroporation
Author :
Edd, Jon F. ; Horowitz, Liana ; Davalos, Rafael V. ; Mir, Lluis M. ; Rubinsky, Boris
Author_Institution :
Dept. of Mech. Eng., California Univ., Berkeley, CA, USA
Volume :
53
Issue :
7
fYear :
2006
fDate :
7/1/2006 12:00:00 AM
Firstpage :
1409
Lastpage :
1415
Abstract :
This paper reports results of in vivo experiments that confirm the feasibility of a new minimally invasive method for tissue ablation, irreversible electroporation (IRE). Electroporation is the generation of a destabilizing electric potential across biological membranes that causes the formation of nanoscale defects in the lipid bilayer. In IRE, these defects are permanent and lead to cell death. This paper builds on our earlier theoretical work and demonstrates that IRE can become an effective method for nonthermal tissue ablation requiring no drugs. To test the capability of IRE pulses to ablate tissue in a controlled fashion, we subjected the livers of male Sprague-Dawley rats to a single 20-ms-long square pulse of 1000 V/cm, which calculations had predicted would cause nonthermal IRE. Three hours after the pulse, treated areas in perfusion-fixed livers exhibited microvascular occlusion, endothelial cell necrosis, and diapedeses, resulting in ischemic damage to parenchyma and massive pooling of erythrocytes in sinusoids. However, large blood vessel architecture was preserved. Hepatocytes displayed blurred cell borders, pale eosinophilic cytoplasm, variable pyknosis and vacuolar degeneration. Mathematical analysis indicates that this damage was primarily nonthermal in nature and that sharp borders between affected and unaffected regions corresponded to electric fields of 300-500 V/cm.
Keywords :
bioelectric potentials; biomembranes; blood; blood vessels; cellular biophysics; haemorheology; lipid bilayers; liver; surgery; 20 ms; biological membranes; blood vessel; blurred cell borders; diapedeses; electric potential; endothelial cell necrosis; focal tissue ablation; hepatocytes; irreversible electroporation; ischemic damage; lipid bilayer; male Sprague-Dawley rats; massive erythrocyte pooling; microvascular occlusion; pale eosinophilic cytoplasm; parenchyma; perfusion-fixed livers; vacuolar degeneration; variable pyknosis; Biomembranes; Drugs; Electric potential; In vivo; Lipidomics; Liver; Minimally invasive surgery; Nanobioscience; Rats; Testing; Bioheat equation; cancer therapy; electro-permeabilization; finite element analysis; microvascular occlusion; Animals; Catheter Ablation; Computer Simulation; Electroporation; Hepatectomy; Liver; Male; Models, Biological; Rats; Rats, Sprague-Dawley; Treatment Outcome;
fLanguage :
English
Journal_Title :
Biomedical Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9294
Type :
jour
DOI :
10.1109/TBME.2006.873745
Filename :
1643410
Link To Document :
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