Small Animal IMRT Using 3D-Printed Compensators

被引:10
|
作者
Redler, Gage [1 ]
Pearson, Erik [2 ]
Liu, Xinmin [2 ]
Gertsenshteyn, Inna [2 ]
Epel, Boris [2 ]
Pelizzari, Charles [2 ]
Aydogan, Bulent [2 ]
Weichselbaum, Ralph [2 ]
Halpern, Howard J. [2 ]
Wiersma, Rodney D. [3 ]
机构
[1] H Lee Moffitt Canc Ctr & Res Inst, Dept Radiat Oncol, Tampa, FL 33612 USA
[2] Univ Chicago, Dept Radiat & Cellular Oncol, Chicago, IL 60637 USA
[3] Univ Penn, Dept Radiat Oncol, Philadelphia, PA 19104 USA
来源
INTERNATIONAL JOURNAL OF RADIATION ONCOLOGY BIOLOGY PHYSICS | 2021年 / 110卷 / 02期
基金
美国国家卫生研究院;
关键词
CONFORMAL RADIOTHERAPY; RADIATION-THERAPY; HYPOXIC FRACTION; HIGH-RESOLUTION; ADVANCED CANCER; TUMOR HYPOXIA; OXYGEN IMAGES; DOSIMETRY; SYSTEM; DESIGN;
D O I
10.1016/j.ijrobp.2020.12.028
中图分类号
R73 [肿瘤学];
学科分类号
100214 ;
摘要
Purpose: Preclinical radiation replicating clinical intensity modulated radiation therapy (IMRT) techniques can provide data translatable to clinical practice. For this work, treatment plans were created for oxygen-guided dose-painting in small animals using inverse-planned IMRT. Spatially varying beam intensities were achieved using 3-dimensional (3D)-printed compensators. Methods and Materials: Optimized beam fluence from arbitrary gantry angles was determined using a verified model of the XRAD225Cx treatment beam. Compensators were 3D-printed with varied thickness to provide desired attenuation using copper/polylactic-acid. Spatial resolution capabilities were investigated using printed test-patterns. Following American Association of Physicists in Medicine TG119, a 5-beam IMRT plan was created for a miniaturized (similar to 1/8th scale) C-shape target. Electron paramagnetic resonance imaging of murine tumor oxygenation guided simultaneous integrated boost (SIB) plans conformally treating tumor to a base dose (Rx(1)) with boost (Rx(2)) based on tumor oxygenation. The 3D-printed compensator intensity modulation accuracy and precision was evaluated by individually delivering each field to a phantom containing radiochromic film and subsequent per-field gamma analysis. The methodology was validated end-to-end with composite delivery (incorporating 3D-printed tungsten/polylactic-acid beam trimmers to reduce out-of-field leakage) of the oxygen-guided SIB plan to a phantom containing film and subsequent gamma analysis. Results: Resolution test-patterns demonstrate practical printer resolution of similar to 0.7 mm, corresponding to 1.0 mm bixels at the isocenter. The miniaturized C-shape plan provides planning target volume coverage (V-95% = 95%) with organ sparing (organs at risk D-max < 50%). The SIB plan to hypoxic tumor demonstrates the utility of this approach (hypoxic tumor V-95%,(Rx2) = 91.6%, normoxic tumor V-95%,V-Rx1 = 95.7%, normal tissue V-100%,V-Rx1 = 7.1%). The more challenging SIB plan to boost the normoxic tumor rim achieved normoxic tumor V-95%,V-Rx2 = 90.9%, hypoxic tumor V-95%,V-Rx1 = 62.7%, and normal tissue V-100%,V-Rx2 = 5.3%. Average per-field gamma passing rates using 3%/1.0 mm, 3%/0.7 mm, and 3%/0.5 mm criteria were 98.8% +/- 2.8%, 96.6% +/- 4.1%, and 90.6% +/- 5.9%, respectively. Composite delivery of the hypoxia boost plan and gamma analysis (3%/1 mm) gave passing results of 95.3% and 98.1% for the 2 measured orthogonal dose planes. Conclusions: This simple and cost-effective approach using 3D-printed compensators for small-animal IMRT provides a methodology enabling preclinical studies that can be readily translated into the clinic. The presented oxygen-guided dose-painting demonstrates that this methodology will facilitate studies driving much needed biologic personalization of radiation therapy for improvements in patient outcomes. (C) 2020 Elsevier Inc. All rights reserved.
引用
收藏
页码:551 / 565
页数:15
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