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研究孔径近似方法,建立用于笔形束扫描质子治疗的聚焦动态准直系统模型。

Investigating aperture-based approximations to model a focused dynamic collimation system for pencil beam scanning proton therapy.

机构信息

Department of Medical Physics, School of Medicine and Public Health, University of Wisconsin-Madison, 1111 Highland Avenue, Madison, WI, 53705, United States of America.

Department of Radiation Oncology, University of Iowa Hospitals and Clinics, 200 Hawkins Drive, Iowa City, IA, 52242, United States of America.

出版信息

Biomed Phys Eng Express. 2022 Feb 18;8(2). doi: 10.1088/2057-1976/ac525f.

Abstract

. The Dynamic Collimation System (DCS) is an energy layer-specific collimation device designed to reduce the lateral penumbra in pencil beam scanning proton therapy. The DCS consists of two pairs of nickel trimmers that rapidly and independently move and rotate to intercept the scanning proton beam and an integrated range shifter to treat targets less than 4 cm deep. This work examines the validity of a single aperture approximation to model the DCS, a commonly used approximation in commercial treatment planning systems, as well as higher-order aperture-based approximations for modeling DCS-collimated dose distributions.. An experimentally validated TOPAS/Geant4-based Monte Carlo model of the DCS integrated with a beam model of the IBA pencil beam scanning dedicated nozzle was used to simulate DCS- and aperture-collimated 100 MeV beamlets and composite treatment plans. The DCS was represented by three different aperture approximations: a single aperture placed halfway between the upper and lower trimmer planes, two apertures located at the upper and lower trimmer planes, and four apertures, located at both the upstream and downstream faces of each pair of trimmers. Line profiles and three-dimensional regions of interest were used to evaluate the validity and limitations of the aperture approximations investigated.. For pencil beams without a range shifter, minimal differences were observed between the DCS and single aperture approximation. For range shifted beamlets, the single aperture approximation yielded wider penumbra widths (up to 18%) in the X-direction and sharper widths (up to 9.4%) in the Y-direction. For the example treatment plan, the root-mean-square errors (RMSEs) in an overall three-dimensional region of interest were 1.7%, 1.3%, and 1.7% for the single aperture, two aperture, and four aperture models, respectively. If the region of interest only encompasses the lateral edges outside of the target, the resulting RMSEs were 1.7%, 1.1%, and 0.5% single aperture, two aperture, and four aperture models, respectively.. Monte Carlo simulations of the DCS demonstrated that a single aperture approximation is sufficient for modeling pristine fields at the Bragg depth while range shifted fields require a higher-order aperture approximation. For the treatment plan considered, the double aperture model performed the best overall, however, the four-aperture model most accurately modeled the lateral field edges at the expense of increased dose differences proximal to and within the target.

摘要

动态准直系统 (DCS) 是一种针对能量层的准直设备,旨在降低笔形束扫描质子治疗中的侧向半影。DCS 由两对快速且独立移动和旋转的镍微调器以及一个集成的射程移动器组成,用于治疗深度小于 4 厘米的靶区。本工作研究了用单孔径近似模型来模拟 DCS 的有效性,这是商业治疗计划系统中常用的近似方法,以及用于模拟 DCS 准直剂量分布的高阶孔径近似方法。本文使用基于 TOPAS/Geant4 的经实验验证的 DCS 蒙特卡罗模型,该模型与 IBA 笔形束扫描专用喷嘴的光束模型相结合,模拟了 DCS 和孔径准直的 100MeV 射束和复合治疗计划。DCS 由三种不同的孔径近似表示:一个位于上、下微调器平面之间的中间位置的单孔径,两个位于上、下微调器平面的孔径,以及四个位于每对微调器前后的孔径。线轮廓和三维感兴趣区域用于评估所研究的孔径近似方法的有效性和局限性。对于没有射程移动器的笔形束,DCS 和单孔径近似之间几乎没有差异。对于射程偏移的射束,单孔径近似在 X 方向上产生更宽的半影宽度(高达 18%),在 Y 方向上产生更陡峭的宽度(高达 9.4%)。对于示例治疗计划,在整个三维感兴趣区域的均方根误差 (RMSE) 分别为 1.7%、1.3%和 1.7%,对于单孔径、双孔径和四孔径模型。如果感兴趣区域仅包含靶区外侧的横向边缘,则得到的 RMSE 分别为 1.7%、1.1%和 0.5%,对于单孔径、双孔径和四孔径模型。DCS 的蒙特卡罗模拟表明,单孔径近似足以模拟布拉格深度处的原始射束,而射程偏移射束需要高阶孔径近似。对于考虑的治疗计划,双孔径模型总体上表现最好,但是四孔径模型在牺牲靶区近端和内部剂量差异的情况下最准确地模拟了横向射束边缘。

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