High-frequency irreversible electroporation (H-FIRE) for non-thermal ablation without muscle contraction

被引:272
作者
Arena, Christopher B. [1 ]
Sano, Michael B. [1 ]
Rossmeisl, John H., Jr. [2 ]
Caldwell, John L. [3 ]
Garcia, Paulo A. [1 ]
Rylander, Marissa Nichole [4 ]
Davalos, Rafael V. [1 ]
机构
[1] Virginia Tech Wake Forest Univ, Sch Biomed Engn & Sci, Bioelectromech Syst Lab, Blacksburg, VA 24061 USA
[2] Virginia Maryland Reg Coll Vet Med, Blacksburg, VA 24061 USA
[3] Virginia Tech, Bradley Dept Elect & Comp Engn, Bioelectromech Syst Lab, Blacksburg, VA 24061 USA
[4] Virginia Tech Wake Forest Univ, Sch Biomed Engn & Sci, Tissue Engn Nanotechnol & Canc Res Lab, Blacksburg, VA 24061 USA
来源
BIOMEDICAL ENGINEERING ONLINE | 2011年 / 10卷
基金
美国国家科学基金会;
关键词
Bipolar pulses; Biphasic pulses; Focal ablation; Focal therapy; Heterogeneous tissue; Nerve stimulation; Thermal damage; Electropermeabilization; Electrochemotherapy; nanosecond Pulsed Electric Field; CELL-MEMBRANE ELECTROPERMEABILIZATION; BIPOLAR RECTANGULAR PULSES; THERMAL-DAMAGE; ELECTRIC-FIELD; DIELECTRIC-PROPERTIES; TISSUE ABLATION; BRAIN-TUMORS; ELECTROCHEMOTHERAPY; THERAPY; MODEL;
D O I
10.1186/1475-925X-10-102
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Background: Therapeutic irreversible electroporation (IRE) is an emerging technology for the non-thermal ablation of tumors. The technique involves delivering a series of unipolar electric pulses to permanently destabilize the plasma membrane of cancer cells through an increase in transmembrane potential, which leads to the development of a tissue lesion. Clinically, IRE requires the administration of paralytic agents to prevent muscle contractions during treatment that are associated with the delivery of electric pulses. This study shows that by applying high-frequency, bipolar bursts, muscle contractions can be eliminated during IRE without compromising the non-thermal mechanism of cell death. Methods: A combination of analytical, numerical, and experimental techniques were performed to investigate high-frequency irreversible electroporation (H-FIRE). A theoretical model for determining transmembrane potential in response to arbitrary electric fields was used to identify optimal burst frequencies and amplitudes for in vivo treatments. A finite element model for predicting thermal damage based on the electric field distribution was used to design non-thermal protocols for in vivo experiments. H-FIRE was applied to the brain of rats, and muscle contractions were quantified via accelerometers placed at the cervicothoracic junction. MRI and histological evaluation was performed post-operatively to assess ablation. Results: No visual or tactile evidence of muscle contraction was seen during H-FIRE at 250 kHz or 500 kHz, while all IRE protocols resulted in detectable muscle contractions at the cervicothoracic junction. H-FIRE produced ablative lesions in brain tissue that were characteristic in cellular morphology of non-thermal IRE treatments. Specifically, there was complete uniformity of tissue death within targeted areas, and a sharp transition zone was present between lesioned and normal brain. Conclusions: H-FIRE is a feasible technique for non-thermal tissue ablation that eliminates muscle contractions seen in IRE treatments performed with unipolar electric pulses. Therefore, it has the potential to be performed clinically without the administration of paralytic agents.
引用
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页数:20
相关论文
共 55 条
[1]   Preclinical Validation of Electrochemotherapy as an Effective Treatment for Brain Tumors [J].
Agerholm-Larsen, Birgit ;
Iversen, Helle K. ;
Ibsen, Per ;
Moller, Jakob M. ;
Mahmood, Faisal ;
Jensen, Kurt Svarre ;
Gehl, Julie .
CANCER RESEARCH, 2011, 71 (11) :3753-3762
[2]   Principles of and Advances in Percutaneous Ablation [J].
Ahmed, Muneeb ;
Brace, Christopher L. ;
Lee, Fred T., Jr. ;
Goldberg, S. Nahum .
RADIOLOGY, 2011, 258 (02) :351-369
[3]   Tumor Ablation with Irreversible Electroporation [J].
Al-Sakere, Bassim ;
Andre, Franck ;
Bernat, Claire ;
Connault, Elisabeth ;
Opolon, Paule ;
Davalos, Rafael V. ;
Rubinsky, Boris ;
Mir, Lluis M. .
PLOS ONE, 2007, 2 (11)
[4]  
[Anonymous], 1996, COMPILATION DIELECTR
[5]  
[Anonymous], 1990, PHYS PROPERTIES TISS
[6]   Theoretical Considerations of Tissue Electroporation With High-Frequency Bipolar Pulses [J].
Arena, Christopher B. ;
Sano, Michael B. ;
Rylander, Marissa Nichole ;
Davalos, Rafael V. .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 2011, 58 (05) :1474-1482
[7]   Irreversible Electroporation: A New Challenge in "Out of Operating Theater" Anesthesia [J].
Ball, Christine ;
Thomson, Kenneth R. ;
Kavnoudias, Helen .
ANESTHESIA AND ANALGESIA, 2010, 110 (05) :1305-1309
[8]   Thermal damage reduction associated with in vivo skin electroporation:: A numerical investigation justifying aggressive pre-cooling [J].
Becker, S. M. ;
Kuznetsov, A. V. .
INTERNATIONAL JOURNAL OF HEAT AND MASS TRANSFER, 2007, 50 (1-2) :105-116
[9]   Diverse effects of nanosecond pulsed electric fields on cells and tissues [J].
Beebe, SJ ;
White, J ;
Blackmore, PF ;
Deng, YP ;
Somers, K ;
Schoenbach, KH .
DNA AND CELL BIOLOGY, 2003, 22 (12) :785-796
[10]   Thermal modeling of lesion growth with radiofrequency ablation devices [J].
Chang, Isaac A. ;
Nguyen, Uyen D. .
BIOMEDICAL ENGINEERING ONLINE, 2004, 3 (1)