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在基于同步加速器的放射治疗设施中,比较主动扫描碳离子与质子时运动对剂量传递准确性的影响。

The Influence of Motion on the Delivery Accuracy When Comparing Actively Scanned Carbon Ions versus Protons at a Synchrotron-Based Radiotherapy Facility.

作者信息

Lebbink Franciska, Stock Markus, Georg Dietmar, Knäusl Barbara

机构信息

MedAustron Ion Therapy Centre, Medical Physics, 2700 Wiener Neustadt, Austria.

Department of Radiation Oncology, Medical University of Vienna, 1090 Vienna, Austria.

出版信息

Cancers (Basel). 2022 Mar 31;14(7):1788. doi: 10.3390/cancers14071788.

Abstract

Motion amplitudes, in need of mitigation for moving targets irradiated with pulsed carbon ions and protons, were identified to guide the decision on treatment and motion mitigation strategy. Measurements with PinPoint ionisation chambers positioned in an anthropomorphic breathing phantom were acquired to investigate different tumour motion scenarios, including rib and lung movements. The effect of beam delivery dynamics and spot characteristics was considered. The dose in the tumour centre was deteriorated up to 10% for carbon ions but only up to 5% for protons. Dose deviations in the penumbra increased by a factor of two when comparing carbon ions to protons, ranging from 2 to 30% for an increasing motion amplitude that was strongly dependent on the beam intensity. Layer rescanning was able to diminish the dose distortion caused by tumour motion, but an increase in spot size could reduce it even further to 5% within the target and 10% at the penumbra. An increased need for motion mitigation of carbon ions compared to protons was identified to assure target coverage and sparing of adjacent organs at risk in the penumbra region and outside the target. For the clinical implementation of moving target treatments at a synchrotron-based particle facility complex, time dependencies needed to be considered.

摘要

对于接受脉冲碳离子和质子照射的移动靶区,确定其运动幅度以指导治疗决策和运动缓解策略。使用放置在人体呼吸模型中的PinPoint电离室进行测量,以研究不同的肿瘤运动情况,包括肋骨和肺部运动。考虑了束流传输动力学和束斑特性的影响。碳离子照射时肿瘤中心的剂量恶化高达10%,而质子照射时仅高达5%。与质子相比,碳离子的半影区剂量偏差增加了一倍,随着运动幅度增加,偏差范围为2%至30%,且强烈依赖于束流强度。分层重扫描能够减少肿瘤运动引起的剂量畸变,但增大束斑尺寸可将其进一步降低至靶区内5%,半影区10%。已确定与质子相比,碳离子对运动缓解的需求增加,以确保靶区覆盖以及在半影区和靶区外保护相邻的危险器官。对于基于同步加速器的粒子设施复合体中移动靶区治疗的临床实施,需要考虑时间依赖性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cd42/8997550/f88f303fd7f8/cancers-14-01788-g001.jpg

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