Dosimetric and geometric characteristics of a small animal image-guided irradiator using 3D dosimetry/optical CT scanner

被引:10
作者
Na, Yong Hum [1 ]
Wang, Yi-Fang [1 ]
Black, Paul J. [1 ]
Velten, Christian [2 ]
Qian, Xin [1 ]
Lin, Shih-Chi [2 ]
Adamovics, John [3 ]
Wuu, Cheng-Shie [1 ,2 ]
机构
[1] Columbia Univ, Dept Radiat Oncol, New York, NY 10032 USA
[2] Columbia Univ, Dept Appl Phys & Appl Math, New York, NY 10027 USA
[3] Rider Univ, Dept Chem, Lawrenceville, NJ 08648 USA
关键词
3D dosimetry; optical computed tomography; PRESAGE; small animal irradiator; ACCURACY; MODELS; FILMS; EBT2;
D O I
10.1002/mp.12955
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
PurposeThe precise dosimetric and geometric characteristics of small animal irradiators are essential to achieving reproducible dose delivery, especially in cases where image-guidance is utilized. Currently, radiochromic film is the established measurement tool used to evaluate beam characteristics for these systems. However, only 2D information can be acquired with film. This study characterized both the dosimetric and geometric properties of the small animal research radiation platform (SARRP, Xstrahl) for commissioning purposes using a 3D radiochromic dosimetry system with a submillimeter resolution optical computed tomography (OCT) scanner. MethodsLike a modern clinical linear accelerator, the SARRP features both a beam delivery system and a cone beam computed tomography (CBCT) imaging system. Dosimetric and geometric characteristics of the SARRP were studied using EBT3 radiochromic film and 3D PRESAGE dosimeters. Dosimetric measurements included percent depth dose (PDD) curves and beam profiles. For geometric evaluation, the isocenter sizes of the treatment stage and gantry rotations as well as their coincidence were measured using star shot patterns. A commercial Epson Expression 11000XL flatbed scanner was used for readout of irradiated EBT3 films at 300dpi resolution. Each irradiated PRESAGE dosimeter was scanned using a submillimeter resolution single laser beam OCT scanner. Acquired data were reconstructed with a resolution of 0.3mm/pixel. ResultsPDD data measured from films and 3D dosimeters agree to within 3% for depths up to 5cm, for both 3x3 and 10x10mm(2) fixed collimation. Profiles were analyzed at 10, 20, and 30mm depth for 3x3mm(2) and 10x10mm(2) fields. The FWHM measurements for both dosimeters agreed to within 0.01mm, and the penumbras agreed to within 0.1mm for 3x3mm(2) and 0.5mm for 10x10mm(2). Gantry and treatment stage isocenter sizes were determined to be 0.21 and 0.43mm using EBT3 film, and 1.72 and 0.75mm using PRESAGE dosimeters. Absolute isocenter shifts, evaluated with 3D phantoms, were 0.80mm for the gantry rotation isocenter (treatment isocenter) with respect to the laser-defined setup isocenter, and 0.71mm for the gantry rotation isocenter relative to treatment stage rotation isocenter (CBCT isocenter). The difference between CBCT isocenter and laser-defined setup isocenter was 0.68mm. ConclusionsThis study demonstrated that 3D PRESAGE dosimeters can be used for verification of precise targeting for the SARRP. This 3D dosimetry system can be utilized to obtain information on both geometric and dosimetric properties, as well as acquire beam data parameters for the purpose of commissioning image-guided small animal irradiator systems.
引用
收藏
页码:3330 / 3339
页数:10
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