Robustness Against Interfraction Prostate Movement in Scanned Ion Beam Radiation Therapy

被引:10
作者
Jelen, Urszula [1 ,4 ]
Ammazzalorso, Filippo [1 ]
Chanrion, Marie-Anne [1 ,2 ,3 ]
Graef, Sebastian [1 ]
Zink, Klemens [4 ]
Engenhart-Cabillic, Rita [1 ]
Wittig, Andrea [1 ]
机构
[1] Univ Marburg, Dept Radiotherapy & Radiat Oncol, Marburg, Germany
[2] Univ Lyon 1, F-69365 Lyon, France
[3] Univ Appl Sci, Giessen, Germany
[4] Univ Med Ctr Giessen & Marburg, Dept Radiotherapy & Radiat Oncol, D-35043 Marburg, Germany
来源
INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS | 2012年 / 84卷 / 02期
关键词
PROTON THERAPY; CANCER TREATMENT; BONY ANATOMY; ONLINE; RADIOTHERAPY; MOTION; ERRORS;
D O I
10.1016/j.ijrobp.2012.03.058
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Purpose: To assess the robustness of scanned ion beam treatment plans against the interfraction internal target motion and evaluate the limits of validity of target-based isocenter realignment for prostate cancer radiation therapy. Methods and Materials: For 12 prostate patients, scanned beam carbon ion treatment plans were prepared using 2 lateral opposed beams and the raster scanning technique with different clinical target volume (CTV) to planning target volume (PTV) margins (2-10 mm). Internal target motion of 2-15 mm in anteroposterior (AP), superoinferior (SI), and left-to-right (LR) directions was simulated by displacing the CTV contours with respect to the computed tomography data. The plans were recalculated with and without target-based isocenter realignment and the CTV coverage was assessed. Results: For CTV shifts within the applied planning margin, the CI-98% is greater than 98.0%, both with and without isocenter realignment. Without realignment, because of the sharp lateral gradients, the CI-98% shows rapid fall as soon as the target shift exceeds the applied planning margin for all displacement directions. With isocenter realignment, the coverage improves notably for shifts in AP and SI directions and the CI-98% is restored to >95.0% for plans optimized with a 2-mm margin, >97% with a 3-mm margin, and >98% with larger margins. For large corrections, predominately in AP direction, cold spots in the CTV may occur. Their magnitude is dependent on the patients' individual anatomies. Conclusions: Within the physiological limits of internal prostate movement, target-based isocenter realignment results in improved CTV coverage for shifts in AP and SI directions exceeding the applied planning margin. Assuming optimal patient setup reproducibility (eg, immobilization, setup error correction, patient preparation protocols), hence negligible interfraction bone and soft-tissue variations, changes in traversed densities resulting from target-based realignment applied with a reduced planning margin do not induce significant dose deterioration in most of the cases. (C) 2012 Elsevier Inc.
引用
收藏
页码:E257 / E262
页数:6
相关论文
共 19 条
[11]   A beam-specific planning target volume (PTV) design for proton therapy to account for setup and range uncertainties [J].
Park, Peter C. ;
Zhu, X. Ronald ;
Lee, Andrew K. ;
Sahoo, Narayan ;
Melancon, Adam D. ;
Zhang, Lifei ;
Dong, Lei .
International Journal of Radiation Oncology Biology Physics, 2012, 82 (02) :e329-e336
[12]  
SCHOLZ M, 1994, RADIAT PROT DOSIM, V52, P29
[13]   USE OF IMPLANTED MARKERS AND INTERPORTAL ADJUSTMENT WITH REAL-TIME TRACKING RADIOTHERAPY SYSTEM TO REDUCE INTRAFRACTION PROSTATE MOTION [J].
Shimizu, Shinichi ;
Osaka, Yasuhiro ;
Shinohara, Nobuo ;
Sazawa, Ataru ;
Nishioka, Kentaro ;
Suzuki, Ryusuke ;
Onimaru, Rikiya ;
Shirato, Hiroki .
INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 2011, 81 (04) :E393-E399
[14]   INTERFRACTIONAL VARIATIONS IN THE SETUP OF PELVIC BONY ANATOMY AND SOFT TISSUE, AND THEIR IMPLICATIONS ON THE DELIVERY OF PROTON THERAPY FOR LOCALIZED PROSTATE CANCER [J].
Trofimov, Alexei ;
Nguyen, Paul L. ;
Efstathiou, Jason A. ;
Wang, Yi ;
Lu, Hsiao-Ming ;
Engelsman, Martijn ;
Merrick, Scott ;
Cheng, Chee-Wai ;
Wong, James R. ;
Zietman, Anthony L. .
INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 2011, 80 (03) :928-937
[15]   Image guidance based on prostate position for prostate cancer proton therapy [J].
Vargas, Carlos ;
Wagner, Marcus ;
Indelicato, Daniel ;
Fryer, Amber ;
Horne, David ;
Chellini, Angela ;
McKenzie, Craig ;
Lawlor, Paula ;
Mahajan, Chaitali ;
Li, Zuofeng ;
Lin, Liyong ;
Keole, Sameer .
INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 2008, 71 (05) :1322-1328
[16]   Design and construction of a ripple filter for a smoothed depth dose distribution in conformal particle therapy [J].
Weber, U ;
Kraft, G .
PHYSICS IN MEDICINE AND BIOLOGY, 1999, 44 (11) :2765-2775
[17]   Inter- and intrafractional movement-induced dose reduction of prostate target volume in proton beam treatment [J].
Yoon, Myonggeun ;
Kim, Dongwook ;
Shin, Dong Ho ;
Park, Sung Yong ;
Lee, Se Byeong ;
Kim, Dae Yong ;
Kim, Joo Young ;
Pyo, Hong Ryull ;
Cho, Kwan Ho .
INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 2008, 71 (04) :1091-1102
[18]   Introducing an on-line adaptive procedure for prostate image guided intensity modulate proton therapy [J].
Zhang, M. ;
Westerly, D. C. ;
Mackie, T. R. .
PHYSICS IN MEDICINE AND BIOLOGY, 2011, 56 (15) :4947-4965
[19]   Effect of anatomic motion on proton therapy dose distributions in prostate cancer treatment [J].
Zhang, Xiaodong ;
Dong, Lei ;
Lee, Andrew K. ;
Cox, James D. ;
Kuban, Deborah A. ;
Zhu, Ron X. ;
Wang, Xiaochun ;
Li, Yupeng ;
Newhauser, Wayne D. ;
Gillin, Michael ;
Mohan, Radhe .
INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 2007, 67 (02) :620-629