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Investigation of the effects of treatment planning variables in small animal radiotherapy dose distributions

机译:治疗计划变量对小动物放疗剂量分布的影响研究

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摘要

>Purpose: Methods used for small animal radiation treatment have yet to achieve the same dose targeting as in clinical radiation therapy. Toward understanding how to better plan small animal radiation using a system recently developed for this purpose, the authors characterized dose distributions produced from conformal radiotherapy of small animals in a microCT scanner equipped with a variable-aperture collimator.>Methods: Dose distributions delivered to a cylindrical solid water phantom were simulated using a Monte Carlo algorithm. Phase-space files for 120 kVp x-ray beams and collimator widths of 1–10 mm at isocenter were generated using BEAMnrc software, and dose distributions for evenly spaced beams numbered from 5 to 80 were generated in DOSXYZnrc for a variety of targets, including centered spherical targets in a range of sizes, spherical targets offset from centered by various distances, and various ellipsoidal targets. Dose distributions were analyzed using dose volume histograms. The dose delivered to a mouse bearing a spontaneous lung tumor was also simulated, and dose volume histograms were generated for the tumor, heart, left lung, right lung, and spinal cord.>Results: Results indicated that for centered, symmetric targets, the number of beams required to achieve a smooth dose volume histogram decreased with increased target size. Dose distributions for noncentered, symmetric targets did not exhibit any significant loss of conformality with increasing offset from the phantom center, indicating sufficient beam penetration through the phantom for targeting superficial targets from all angles. Even with variable collimator widths, targeting of asymmetric targets was found to have less conformality than that of spherical targets. Irradiation of a mouse lung tumor with multiple beam widths was found to effectively deliver dose to the tumor volume while minimizing dose to other critical structures.>Conclusions: Overall, this method of generating and analyzing dose distributions provides a quantitative method for developing practical guidelines for small animal radiotherapy treatment planning. Future work should address methods to improve conformality in asymmetric targets.
机译:>目的:用于小动物放射治疗的方法尚未达到与临床放射治疗相同的剂量目标。为了了解如何使用最近为此目的开发的系统更好地计划小动物辐射,作者描述了在配有可变孔径准直仪的microCT扫描仪中对小动物进行适形放疗产生的剂量分布。>方法:使用蒙特卡洛算法模拟了输送到圆柱形固体水体模的剂量分布。使用BEAMnrc软件生成了120 kVp X射线束和等中心点处准直仪宽度为1–10 mm的相空间文件,并在DOSXYZnrc中针对多个目标生成了编号为5至80的均匀间隔光束的剂量分布。在各种尺寸范围内居中放置球形目标,球形目标偏离中心的距离各不相同,以及各种椭圆形目标。使用剂量体积直方图分析剂量分布。还模拟了传递给患有自发性肺肿瘤的小鼠的剂量,并针对肿瘤,心脏,左肺,右肺和脊髓生成了剂量体积直方图。>结果:结果表明,对于中心对称目标,随着目标大小的增加,实现平滑剂量体积直方图所需的光束数量减少。随着从体模中心偏移的增加,非中心对称目标的剂量分布没有显示出任何明显的保形损失,这表明通过体模的足够光束穿透可以从所有角度瞄准浅表目标。甚至在准直器宽度可变的情况下,发现非对称目标的瞄准保形性也要低于球形目标。发现辐射具有多束宽度的小鼠肺肿瘤可以有效地将剂量传递至肿瘤体积,同时将对其他关键结构的剂量降至最低。>结论:总体而言,这种生成和分析剂量分布的方法可提供定量为小动物放疗治疗计划制定实用指南的方法。未来的工作应解决提高非对称目标的一致性的方法。

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