Modeling skin collimation using the electron pencil beam redefinition algorithm

被引:7
作者
Chi, PCM
Hogstrom, KR
Starkschall, G
Antolak, JA
Boyd, RA
机构
[1] Univ Texas, MD Anderson Canc Ctr, Dept Radiat Phys, Houston, TX 77030 USA
[2] Univ Texas, Grad Sch Biomed Sci, Med Phys Program, Houston, TX 77030 USA
关键词
electron radiotherapy; pencil-beam algorithm; skin collimation; electron-arc therapy;
D O I
10.1118/1.2064808
中图分类号
R8 [特种医学]; R445 [影像诊断学];
学科分类号
1002 ; 100207 ; 1009 ;
摘要
Skin collimation is an important tool for electron beam therapy that is used to minimize the penumbra when treating near critical structures, at extended treatment distances, with bolus, or using arc therapy, It is usually made of lead or lead alloy material that conforms to and is placed on patient surface. Presently, commercially available treatment-planning systems lack the ability to model skin collimation and to accurately calculate dose in its presence. The purpose of the present work was to evaluate the use of the pencil beam redefinition algorithm (PBRA) in calculating dose in the presence of skin collimation. Skin collimation was incorporated into the PBRA by terminating the transport of electrons once they enter the skin collimator. Both fixed- and arced-beam dose calculations for arced-beam geometries were evaluated by comparing them with measured dose distributions for 10- and 15-MeV beams. Fixed-beam dose distributions were measured in water at 88-cm source-to-surface distance with an air gap of 32 cm. The 6 X 20-cm(2) field (dimensions projected to isocenter) had a 10-mm thick lead collimator placed on the surface of the water with its edge 5 cm inside the field's edge located at +10 cm. Arced-beam dose distributions were measured in a 13.5-cm radius polystyrene circular phantom. The beam was arced 90 degrees (-45 degrees to +45 degrees), and 10-mm thick lead collimation was placed at +/- 30 degrees. For the fixed beam at 10 MeV, the PBRA-calculated dose agreed with measured dose to within 2.0-mm distance to agreement (DTA) in the regions of high-dose gradient and 2.0% in regions of low dose gradient. At 15 MeV, the PBRA agreed to within a 2.0-mm DTA in the regions of high-dose gradient; however, the PBRA underestimated the dose by as much as 5.3% over small regions at depths less than 2 cm because it did not model electrons scattered from the edge of the skin collimation. For arced beams at 10 MeV, the agreement was 1-mm DTA in the high-dose gradient regions, and 2% in the low-dose gradient regions. For arced beams at 15 MeV, the agreement was I turn in the high-dose gradient regions, and in the low-dose gradient region at depth less than 2 cm, as much as 5% dose difference was observed. This study demonstrated the ease with which skin collimation can be incorporated into the PBRA. The good agreement of PBRA calculated with measured dose shows that the PBRA is likely sufficiently accurate for clinical use in the presence of skin collimation for electron arc therapy. To further improve the accuracy of the PBRA in regions having significant electrons scattered from the edge of the skin collimation would require transporting the electrons through the lead skin collimation near its edges. (c) 2005 American Association of Physicists in Medicine.
引用
收藏
页码:3409 / 3418
页数:10
相关论文
共 23 条
[1]   VERIFICATION OF A 2-DIMENSIONAL PENCIL BEAM ARC ELECTRON DOSE CALCULATION ALGORITHM [J].
ANTOLAK, JA ;
ELKHATIB, E ;
SCRIMGER, JW .
MEDICAL PHYSICS, 1993, 20 (06) :1735-1742
[2]   Effect of using an initial polyenergetic spectrum with the pencil-beam redefinition algorithm for electron-dose calculations in water [J].
Boyd, RA ;
Hogstrom, KR ;
Rosen, II .
MEDICAL PHYSICS, 1998, 25 (11) :2176-2185
[3]   Electron pencil-beam redefinition algorithm dose calculations in the presence of heterogeneities [J].
Boyd, RA ;
Hogstrom, KR ;
Starkschall, G .
MEDICAL PHYSICS, 2001, 28 (10) :2096-2104
[4]  
Boyd RA., 2001, THESIS U TEXAS HLTH
[5]  
CHI PC, 2004, THESIS U TEXAS HLTH
[6]  
Hogstrom K. R., 2003, PRINCIPLES PRACTICE, P252
[7]   DESIGN OF METALLIC ELECTRON-BEAM CONES FOR AN INTRAOPERATIVE THERAPY LINEAR-ACCELERATOR [J].
HOGSTROM, KR ;
BOYER, AL ;
SHIU, AS ;
OCHRAN, TG ;
KIRSNER, SM ;
KRISPEL, F ;
RICH, T .
INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS, 1990, 18 (05) :1223-1232
[8]   ELECTRON-BEAM DOSE CALCULATIONS [J].
HOGSTROM, KR ;
MILLS, MD ;
ALMOND, PR .
PHYSICS IN MEDICINE AND BIOLOGY, 1981, 26 (03) :445-459
[9]   A TWO-DIMENSIONAL PENCIL-BEAM ALGORITHM FOR CALCULATION OF ARC ELECTRON DOSE DISTRIBUTIONS [J].
HOGSTROM, KR ;
KURUP, RG ;
SHIU, AS ;
STARKSCHALL, G .
PHYSICS IN MEDICINE AND BIOLOGY, 1989, 34 (03) :315-341
[10]  
HOGSTROM KR, 1991, FRONT RADIAT THER ON, V25, P30