DOI QR코드

DOI QR Code

A Study For Optimizing Input Waveforms In Radiofrequency Liver Tumor Ablation Using Finite Element Analysis

유한 요소 해석을 이용한 고주파 간 종양 절제술의 입력 파형 최적화를 위한 연구

  • Lim, Do-Hyung (Department of Biomedical Engineering, Yonsei University, Institute of Medical Engineering) ;
  • NamGung, Bum-Seok (Department of Biomedical Engineering, Yonsei University, Institute of Medical Engineering) ;
  • Lee, Tae-Woo (Department of Biomedical Engineering, Yonsei University, Institute of Medical Engineering) ;
  • Choi, Jin-Seung (Konkuk University, Biomedical Engineering) ;
  • Tack, Gye-Rae (Konkuk University, Biomedical Engineering) ;
  • Kim, Han-Sung (Department of Biomedical Engineering, Yonsei University, Institute of Medical Engineering)
  • Published : 2007.04.30

Abstract

Hepatocellular carcinoma is significant worldwide public health problem with an estimated annually mortality of 1,000,000 people. Radiofrequency (RF) ablation is an interventional technique that in recent years has come to be used for treatment of the hepatocellualr carcinoma, by destructing tumor tissues in high temperatures. Numerous studies have been attempted to prove excellence of RF ablation and to improve its efficiency by various methods. However, the attempts are sometimes paradox to advantages of a minimum invasive characteristic and an operative simplicity in RF ablation. The aim of the current study is, therefore, to suggest an improved RF ablation technique by identifying an optimum RF pattern, which is one of important factors capable of controlling the extent of high temperature region in lossless of the advantages of RF ablation. Three-dimensional finite element (FE) model was developed and validated comparing with the results reported by literature. Four representative Rf patterns (sine, square, exponential, and simulated RF waves), which were corresponding to currents fed during simulated RF ablation, were investigated. Following parameters for each RF pattern were analyzed to identify which is the most optimum in eliminating effectively tumor tissues. 1) maximum temperature, 2) a degree of alteration of maximum temperature in a constant time range (30-40 second), 3) a domain of temperature over $47^{\circ}C$ isothermal temperature (IT), and 4) a domain inducing over 63% cell damage. Here, heat transfer characteristics within the tissues were determined by Bioheat Governing Equation. Developed FE model showed 90-95% accuracy approximately in prediction of maximum temperature and domain of interests achieved during RF ablation. Maximum temperatures for sine, square, exponential, and simulated RF waves were $69.0^{\circ}C,\;66.9^{\circ}C,\;65.4^{\circ}C,\;and\;51.8^{\circ}C$, respectively. While the maximum temperatures were decreased in the constant time range, average time intervals for sine, square, exponential, and simulated RE waves were $0.49{\pm}0.14,\;1.00{\pm}0.00,\;1.65{\pm}0.02,\;and\;1.66{\pm}0.02$ seconds, respectively. Average magnitudes of the decreased maximum temperatures in the time range were $0.45{\pm}0.15^{\circ}C$ for sine wave, $1.93{\pm}0.02^{\circ}C$ for square wave, $2.94{\pm}0.05^{\circ}C$ for exponential wave, and $1.53{\pm}0.06^{\circ}C$ for simulated RF wave. Volumes of temperature domain over $47^{\circ}C$ IT for sine, square, exponential, and simulated RF waves were 1480mm3, 1440mm3, 1380mm3, and 395mm3, respectively. Volumes inducing over 63% cell damage for sine, square, exponential, and simulated RF waves were 114mm3, 62mm3, 17mm3, and 0mm3, respectively. These results support that applying sine wave during RF ablation may be generally the most optimum in destructing effectively tumor tissues, compared with other RF patterns.

Keywords

References

  1. Y. H. Chung, 'Early Diagnosis and Efficient Treatment of Hepatocellular Carcinoma', Journal of Korean Society of Radiological Technology, vol. 27, no. 1, pp. 5-11, 2004
  2. M. Kew, 'The development of hepatocellular carcinoma in humans,' Cancer Surv., vol. 5, pp. 719-739, 1985
  3. D. Haemmerich, S. Tungjitkusolmun, S. Staelin, F. Lee, Jr., D. Mahvi, and J. Webster, 'Finite Element Analysis of Hepatic Multiple Probe Radio-Frequency Ablation, 'IEEE Transactions on Biomedical Engineering, vol. 49, no. 7, pp. 836-842, 2002 https://doi.org/10.1109/TBME.2002.800790
  4. S. D. Lee, C. Y. Kim, H. C. Yu, J. M. Lee, D. G. Kim, and B. H. Cho, 'The Characteristics of Patients and Recurrence Patterns in Patients with Hepatocellular Carcinomia Treated with Radiofrequency Ablation', Korean Journal of HBP Surgery, vol. 7, no. 1, pp. 55-60, 2003
  5. T. Liveraghi, S Goldberg, S. Lazzaroni, F. Meloni, L. Solbitai and G. Gazelle, 'Small hepatocellular carcinoma: treatment with radio-frequency ablation versus ethanol injection,' Radiology, vol. 210, no. 3,pp. 655-661, 1999 https://doi.org/10.1148/radiology.210.3.r99fe40655
  6. H. Rhim, N. Goldberg, G. Dodd III, L. Solbiati, H. Lim, M. Tonolini and O. Cho, 'Essential techniques for successful radio-frequency thermal ablation of malignant hepatic tumors,' Radiographies, vol. 21, pp. 17-35, 2001 https://doi.org/10.1148/radiographics.21.suppl_1.g01oc11s17
  7. G. Gazelle, S. Nahum Goldberg, L. Solbiati and T. Livraghi, 'Tumor ablation with radio-frequency energy,' Radiology, vol. 217, pp. 633-646, 2000 https://doi.org/10.1148/radiology.217.3.r00dc26633
  8. E. Berjano, Theoretical modeling for radio frequency ablation: state-of-the-art and challenge for the future,' Biomedical Engineering Online, 5:24, 2006 https://doi.org/10.1186/1475-925X-5-24
  9. S. Goldberg, G. Gazelle, L. Solbiati, W. Rittman, and P. Mueller, 'Radio- frequency tissue ablation: Increased lesion diameter with a perfusion electrode,' Acad. Radiol., vol. 3, pp. 636-644, 1996 https://doi.org/10.1016/S1076-6332(96)80188-7
  10. T. Lorentzen, 'A cooled needle electrode for radio-frequency tissue ablation: Thermodynamic aspects of improved performance compared with conventional needle design,' Acad. Radiol., vol. 3, pp. 556-563, 1996 https://doi.org/10.1016/S1076-6332(96)80219-4
  11. Y. Miao, Y. Ni, S. Mulier, K. Wang, M, Hoez, P. Mulier, F. Penninckx. J. Yu, I. Scheerder, A. Baert, and G. Marchal, 'Ex vivo experiment on radiofrequency liver ablation with saline infusion through a screw-tip cannulated electrode,' J. Surg. Res., vol. 71, pp. 18-26, 1997
  12. R. Mittleman, S. Huang, W. Guzman, H. Cuenoud, A. Wagshal, and L. Pires, 'Use of saline infusion electrode catheter for improved energy delivery and increased lesion size in radiofrequency catheter ablation,' PACE, vol. 18, pp. 1022-1027, 1995 https://doi.org/10.1111/j.1540-8159.1995.tb04743.x
  13. F. Burdio, A. Guemes, J. Burdio, T. Castiella, M. Gregorio, R. Lozano, and T. Livraghi, 'Hepatic lesion ablation with bipolar salineenhanced radiofrequency in the audible spectrum,' Acad. Radiol., vol. 6, pp. 680-686, 1999 https://doi.org/10.1016/S1076-6332(99)80117-2
  14. E. Delva, Y. Camus, and B. Nordlinger, 'Vascular occlusions for liver resections,' Ann. Surg., vol. 209, pp. 297-304, 1989 https://doi.org/10.1097/00000658-198903000-00008
  15. M. Curley and P. Hamilton, 'Creation of large thermal lesions in liver using saline-enhanced RF ablation,' in Proc. 19th Annu. Int. Conf. IEEE Eng. Med. Biol. Soc., Chicago, IL, pp. 2516-2519, 1997
  16. J. McGahan, W. Gu, J. Brock, H. Tesluk, and C. Jones, 'Hepatic ablation using bipolar radiofrequency electrocautery,' Acad. Radiol., vol. 3, pp. 418-422, 1996 https://doi.org/10.1016/S1076-6332(05)80677-4
  17. I. Chang and U. Nguyen, 'Thermal modeling of lesion growth with radiofrequency ablation devices,' Biomedical Engineering Online, 3:27, 2004 https://doi.org/10.1186/1475-925X-3-27
  18. H. Pennes, 'Analysis of tissue and arterial blood temperatures in the resting human forearm,' Journal of Applied physiology, vol. 1, no.2,pp. 93-122, 1948 https://doi.org/10.1152/jappl.1948.1.2.93
  19. S.Tungjitkusolmun, S. Staelin, D. Haemmerich, J. Tsai, H. Cao, J. Webster, F. Lee, Jr., D. Mahvi, and V. Vorperian, 'Three-dimensional finite-element analyses for radio-frequency hepatic tumor ablation,' IEEE Transactions on Biomedical Engineering, vol. 49, no. 1, pp. 3-9, 2002 https://doi.org/10.1109/10.972834
  20. E. Berjano, J. AliOand J. Saiz, 'Modeling for radio-frequency conductive keratoplasty: implications for the maximum temperature reached in the cornea,' Physiological Measurement, vol. 26, pp.157-172, 2005 https://doi.org/10.1088/0967-3334/26/3/002
  21. S. Goldeberg, M. Stein, G. Gazelle. R. Sheiman, J. Kruskal, and M. Clouse, 'Percutaneous radiofrequency tissue ablation: optimization of pulsed radiofrequency technique to increase coagulation necrosis,' Journal of Vascular and Interventional Radiology, vol. 10, no. 7,pp.907-916, 1999 https://doi.org/10.1016/S1051-0443(99)70136-3
  22. H. Li, X. Zhang, and Y. Yi, 'Measurement of blood perfusion using the temperature response to constant surface flux heating,' International Journal of Thermophysics, vol. 23, no. 6, pp. 1631-1644, 2002 https://doi.org/10.1023/A:1020798119128