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一种使用与解剖运动同步的扫描离子束治疗移动肿瘤的系统的剂量学验证。

Dosimetric Validation of a System to Treat Moving Tumors Using Scanned Ion Beams That Are Synchronized With Anatomical Motion.

作者信息

Lis Michelle, Newhauser Wayne, Donetti Marco, Wolf Moritz, Steinsberger Timo, Paz Athena, Graeff Christian

机构信息

Biophysics, GSI Helmholtzzentrum für Schwerionenforschung GmbH, Darmstadt, Germany.

Department of Physics and Astronomy, Louisiana State University, Baton Rouge, LA, United States.

出版信息

Front Oncol. 2021 Sep 8;11:712126. doi: 10.3389/fonc.2021.712126. eCollection 2021.

Abstract

PURPOSE

The purpose of this study was to validate the dosimetric performance of scanned ion beam deliveries with motion-synchronization to heterogenous targets.

METHODS

A 4D library of treatment plans, comprised of up to 10 3D sub-plans, was created with robust and conventional 4D optimization methods. Each sub-plan corresponded to one phase of periodic target motion. The plan libraries were delivered to a test phantom, comprising plastic slabs, dosimeters, and heterogenous phantoms. This phantom emulated range changes that occur when treating moving tumors. Similar treatment plans, but without motion synchronization, were also delivered to a test phantom with a stationary target and to a moving target; these were used to assess how the target motion degrades the quality of dose distributions and the extent to which motion synchronization can improve dosimetric quality. The accuracy of calculated dose distributions was verified by comparison with corresponding measurements. Comparisons utilized the gamma index analysis method. Plan quality was assessed based on conformity, dose coverage, overdose, and homogeneity values, each extracted from calculated dose distributions.

RESULTS

High pass rates for the gamma index analysis confirmed that the methods used to calculate and reconstruct dose distributions were sufficiently accurate for the purposes of this study. Calculated and reconstructed dose distributions revealed that the motion-synchronized and static deliveries exhibited similar quality in terms of dose coverage, overdose, and homogeneity for all deliveries considered. Motion-synchronization substantially improved conformity in deliveries with moving targets. Importantly, measurements at multiple locations within the target also confirmed that the motion-synchronized delivery system satisfactorily compensated for changes in beam range caused by the phantom motion. Specifically, the overall planning and delivery approach achieved the desired dose distribution by avoiding range undershoots and overshoots caused by tumor motion.

CONCLUSIONS

We validated a dose delivery system that synchronizes the movement of the ion beam to that of a moving target in a test phantom. Measured and calculated dose distributions revealed that this system satisfactorily compensated for target motion in the presence of beam range changes due to target motion. The implication of this finding is that the prototype system is suitable for additional preclinical research studies, such as irregular anatomic motion.

摘要

目的

本研究的目的是验证对异质靶区进行运动同步的扫描离子束照射的剂量学性能。

方法

采用稳健和传统的4D优化方法创建了一个治疗计划的4D库,该库由多达10个3D子计划组成。每个子计划对应于周期性靶区运动的一个阶段。将计划库传送到一个测试模体,该模体包括塑料板、剂量仪和异质模体。该模体模拟了治疗移动肿瘤时发生的射程变化。类似的治疗计划,但没有运动同步,也被传送到一个具有静止靶区的测试模体和一个移动靶区;这些用于评估靶区运动如何降低剂量分布的质量以及运动同步可以在多大程度上提高剂量学质量。通过与相应测量结果的比较来验证计算剂量分布的准确性。比较采用伽马指数分析方法。基于从计算剂量分布中提取的适形性、剂量覆盖、过量和均匀性值来评估计划质量。

结果

伽马指数分析的高通过率证实,用于计算和重建剂量分布的方法对于本研究目的而言足够准确。计算和重建的剂量分布表明,对于所有考虑的照射,运动同步照射和静态照射在剂量覆盖、过量和均匀性方面表现出相似的质量。运动同步显著改善了移动靶区照射的适形性。重要的是,在靶区内多个位置的测量也证实,运动同步照射系统令人满意地补偿了由模体运动引起的射野射程变化。具体而言,总体计划和照射方法通过避免肿瘤运动引起的射程不足和超量,实现了所需的剂量分布。

结论

我们验证了一种剂量照射系统,该系统在测试模体中将离子束的运动与移动靶区的运动同步。测量和计算的剂量分布表明,该系统在存在由于靶区运动引起的射野射程变化的情况下,令人满意地补偿了靶区运动。这一发现的意义在于,该原型系统适用于额外的临床前研究,如不规则解剖运动。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/79d8/8456027/1060b5b5a3f5/fonc-11-712126-g001.jpg

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