Microwave ablation devices for interventional oncology

被引:12
作者
Ward, Robert C. [1 ]
Healey, Terrance T. [1 ]
Dupuy, Damian E. [1 ]
机构
[1] Brown Univ, Rhode Isl Hosp, Dept Diagnost Imaging, Warren Alpert Med Sch, Providence, RI 02903 USA
关键词
ablation; dielectric hysteresis; electromagnetic radiation; heat sink; microwave radiation; US FDA 501(k) clearance; THERMAL ABLATION; TUMOR ABLATION; EX-VIVO; HEPATOCELLULAR-CARCINOMA; RADIOFREQUENCY ABLATION; LUNG MALIGNANCIES; HEPATIC-TUMORS; CLINICAL-TRIAL; CT FINDINGS; HUMAN LIVER;
D O I
10.1586/ERD.12.77
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Microwave ablation is one of the several options in the ablation armamentarium for the treatment of malignancy, offering several potential benefits when compared with other ablation, radiation, surgical and medical treatment modalities. The basic microwave system consists of the generator, power distribution system and antennas. Often under image ( computed tomography or ultrasound) guidance, a needle-like antenna is inserted percutaneously into the tumor, where local microwave electromagnetic radiation is emitted from the probe's active tip, producing frictional tissue heating, capable of causing cell death by coagulation necrosis. Half of the microwave ablation systems use a 915 MHz generator and the other half use a 2450 MHz generator. To date, there are no completed clinical trials comparing microwave devices head-to-head. Prospective comparisons of microwave technology with other treatment alternatives, as well as head-to-head comparison with each microwave device, is needed if this promising field will garner more widespread support and use in the oncology community.
引用
收藏
页码:225 / 238
页数:14
相关论文
共 43 条
[1]   Microwaves create larger ablations than radiofrequency when controlled for power in ex vivo tissue [J].
Andreano, A. ;
Huang, Yu ;
Meloni, M. Franca ;
Lee, Fred T., Jr. ;
Brace, Christopher .
MEDICAL PHYSICS, 2010, 37 (06) :2967-2973
[2]   A review of coaxial-based interstitial antennas for hepatic microwave ablation [J].
Bertram, John M. ;
Yang, Deshan ;
Converse, Mark C. ;
Webster, John G. ;
Mahvi, David M. .
Critical Reviews in Biomedical Engineering, 2006, 34 (03) :187-213
[3]   Microwave ablation for unresectable hepatic tumours: Clinical results using a novel microwave probe and generator [J].
Bhardwaj, N. ;
Strickland, A. D. ;
Ahmad, F. ;
El-Abassy, M. ;
Morgan, B. ;
Robertson, G. S. M. ;
Lloyd, D. M. .
EJSO, 2010, 36 (03) :264-268
[4]   Microwave Ablation Technology: What Every User Should Know [J].
Brace, Christopher L. .
CURRENT PROBLEMS IN DIAGNOSTIC RADIOLOGY, 2009, 38 (02) :61-67
[5]   Radiofrequency and Microwave Ablation of the Liver, Lung, Kidney, and Bone: What Are the Differences? [J].
Brace, Christopher L. .
CURRENT PROBLEMS IN DIAGNOSTIC RADIOLOGY, 2009, 38 (03) :135-143
[6]   Pulmonary Thermal Ablation: Comparison of Radiofrequency and Microwave Devices by Using Gross Pathologic and CT Findings in a Swine Model [J].
Brace, Christopher L. ;
Hinshaw, J. Louis ;
Laeseke, Paul F. ;
Sampson, Lisa A. ;
Lee, Fred T., Jr. .
RADIOLOGY, 2009, 251 (03) :705-711
[7]   Local Tumor Progression of Hepatocellular Carcinoma After Microwave Percutaneous Ablation: A Preliminary Report [J].
Brunello, Franco ;
Carucci, Patrizia ;
Gaia, Silvia ;
Rolle, Emanuela ;
Brunocilla, Paola Rita ;
Castiglione, Anna ;
Ciccone, Giovannino ;
Rizzetto, Mario .
GASTROENTEROLOGY RESEARCH, 2012, 5 (01) :28-32
[8]   Alternatives to Surgery for Early Stage Non-Small Cell Lung Cancer-Ready for Prime Time? [J].
Das, Millie ;
Abdelmaksoud, Mohamed H. K. ;
Loo, Billy W., Jr. ;
Kothary, Nishita .
CURRENT TREATMENT OPTIONS IN ONCOLOGY, 2010, 11 (1-2) :24-35
[9]  
Dodd GD, 2012, SOC INT RAD SIR ANN
[10]   Image-guided Thermal Ablation of Lung Malignancies [J].
Dupuy, Damian E. .
RADIOLOGY, 2011, 260 (03) :633-655