Reducing stray radiation dose to patients receiving passively scattered proton radiotherapy for prostate cancer

被引:50
作者
Taddei, Phillip J. [1 ]
Fontenot, Jonas D. [1 ]
Zheng, Yuanshui [1 ]
Mirkovic, Dragan [1 ]
Lee, Andrew K. [1 ]
Titt, Uwe [1 ]
Newhauser, Wayne D. [1 ]
机构
[1] Univ Texas MD Anderson Canc Ctr, Houston, TX 77030 USA
关键词
D O I
10.1088/0031-9155/53/8/009
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Proton beam radiotherapy exposes healthy tissue to stray radiation emanating from the treatment unit and secondary radiation produced within the patient. These exposures provide no known benefit and may increase a patient's risk of developing a radiogenic second cancer. The aim of this study was to explore strategies to reduce stray radiation dose to a patient receiving a 76 Gy proton beam treatment for cancer of the prostate. The whole-body effective dose from stray radiation, E, was estimated using detailed Monte Carlo simulations of a passively scattered proton treatment unit and an anthropomorphic phantom. The predicted value of E was 567 mSv, of which 320 mSv was attributed to leakage from the treatment unit; the remainder arose from scattered radiation that originated within the patient. Modest modifications of the treatment unit reduced E by 212 mSv. Surprisingly, E from a modified passive-scattering device was only slightly higher ( 109 mSv) than from a nozzle with no leakage, e. g., that which may be approached with a spot-scanning technique. These results add to the body of evidence supporting the suitability of passively scattered proton beams for the treatment of prostate cancer, confirm that the effective dose from stray radiation was not excessive, and, importantly, show that it can be substantially reduced by modest enhancements to the treatment unit.
引用
收藏
页码:2131 / 2147
页数:17
相关论文
共 48 条
[1]   Secondary neutron and photon dose in proton therapy [J].
Agosteo, S ;
Birattari, C ;
Caravaggio, M ;
Silari, M ;
Tosi, G .
RADIOTHERAPY AND ONCOLOGY, 1998, 48 (03) :293-305
[2]  
BILLINGS MP, 1973, G4655 MDC
[3]   Secondary dose exposures during 200 MeV proton therapy [J].
Binns, PJ ;
Hough, JH .
RADIATION PROTECTION DOSIMETRY, 1997, 70 (1-4) :441-444
[4]   ISOCENTRIC FAST-NEUTRON THERAPY FACILITY AT EDINBURGH [J].
BONNETT, DE ;
WILLIAMS, JR ;
PARNELL, CJ .
BRITISH JOURNAL OF RADIOLOGY, 1980, 53 (625) :12-20
[5]  
BRAHME A, 1983, Radiotherapy and Oncology, V1, P65, DOI 10.1016/S0167-8140(83)80008-5
[6]   Therapeutic step and shoot proton beam spot-scanning with a multi-leaf collimator: A Monte Carlo study [J].
Bues, M ;
Newhauser, WD ;
Titt, U ;
Smith, AR .
RADIATION PROTECTION DOSIMETRY, 2005, 115 (1-4) :164-169
[7]   Compact multileaf collimator for conformal and intensity modulated fast neutron therapy: Electromechanical design and validation [J].
Farr, J. B. ;
Maughan, R. L. ;
Yudelev, M. ;
Blosser, E. ;
Brandon, J. ;
Horste, T. ;
Forman, J. D. .
MEDICAL PHYSICS, 2006, 33 (09) :3313-3320
[8]   Stray radiation exposure during proton radiotherapy of the prostate: The influence of the patient on scatter and production [J].
Fontenot, J. D. ;
Zheng, Y. ;
Taddei, P. ;
Newhauser, W. .
MEDICAL PHYSICS, 2007, 34 (06) :2507-2507
[9]   Design tools for proton therapy nozzles based on the double-scattering foil technique [J].
Fontenot, JD ;
Newhauser, WD ;
Titt, U .
RADIATION PROTECTION DOSIMETRY, 2005, 116 (1-4) :211-215
[10]   Equivalent dose and effective dose from stray radiation during passively scattered proton radiotherapy for prostate cancer [J].
Fontenot, Jonas ;
Taddei, Phillip ;
Zheng, Yuanshui ;
Mirkovic, Dragan ;
Jordan, Thomas ;
Newhauser, Wayne .
PHYSICS IN MEDICINE AND BIOLOGY, 2008, 53 (06) :1677-1688