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用于超高剂量率质子辐照中剂量、剂量率和传能线密度验证的表征装置。

Characterizing devices for validation of dose, dose rate, and LET in ultra high dose rate proton irradiations.

作者信息

Harrison Nathan, Charyyev Serdar, Oancea Cristina, Stanforth Alexander, Gelover Edgar, Zhou Shuang, Dynan William S, Zhang Tiezhi, Biegalski Steven, Lin Liyong

机构信息

Emory University, Atlanta, Georgia, USA.

Stanford University, Stanford, California, USA.

出版信息

Med Phys. 2024 Nov;51(11):8411-8422. doi: 10.1002/mp.17359. Epub 2024 Aug 17.

Abstract

BACKGROUND

Ultra high dose rate (UHDR) radiotherapy using ridge filter is a new treatment modality known as conformal FLASH that, when optimized for dose, dose rate (DR), and linear energy transfer (LET), has the potential to reduce damage to healthy tissue without sacrificing tumor killing efficacy via the FLASH effect.

PURPOSE

Clinical implementation of conformal FLASH proton therapy has been limited by quality assurance (QA) challenges, which include direct measurement of UHDR and LET. Voxel DR distributions and LET spectra at planning target margins are paramount to the DR/LET-related sparing of organs at risk. We hereby present a methodology to achieve experimental validation of these parameters.

METHODS

Dose, DR, and LET were measured for a conformal FLASH treatment plan involving a 250-MeV proton beam and a 3D-printed ridge filter designed to uniformly irradiate a spherical target. We measured dose and DR simultaneously using a 4D multi-layer strip ionization chamber (MLSIC) under UHDR conditions. Additionally, we developed an "under-sample and recover (USRe)" technique for a high-resolution pixelated semiconductor detector, Timepix3, to avoid event pile-up and to correct measured LET at high-proton-flux locations without undesirable beam modifications. Confirmation of these measurements was done using a MatriXX PT detector and by Monte Carlo (MC) simulations.

RESULTS

MC conformal FLASH computed doses had gamma passing rates of >95% (3 mm/3% criteria) when compared to MatriXX PT and MLSIC data. At the lateral margin, DR showed average agreement values within 0.3% of simulation at 100 Gy/s and fluctuations ∼10% at 15 Gy/s. LET spectra in the proximal, lateral, and distal margins had Bhattacharyya distances of <1.3%.

CONCLUSION

Our measurements with the MLSIC and Timepix3 detectors shown that the DR distributions for UHDR scenarios and LET spectra using USRe are in agreement with simulations. These results demonstrate that the methodology presented here can be used effectively for the experimental validation and QA of FLASH treatment plans.

摘要

背景

使用脊形滤波器的超高剂量率(UHDR)放射治疗是一种新的治疗方式,即适形FLASH,当针对剂量、剂量率(DR)和线能量转移(LET)进行优化时,有可能在不牺牲肿瘤杀伤效果的情况下,通过FLASH效应减少对健康组织的损伤。

目的

适形FLASH质子治疗的临床应用受到质量保证(QA)挑战的限制,这些挑战包括UHDR和LET的直接测量。计划靶区边缘的体素DR分布和LET谱对于与DR/LET相关的危及器官的 sparing 至关重要。我们在此提出一种方法来实现这些参数的实验验证。

方法

对一个适形FLASH治疗计划进行剂量、DR和LET测量,该计划涉及250 MeV质子束和一个3D打印的脊形滤波器,设计用于均匀照射一个球形靶区。我们在UHDR条件下使用4D多层条带电离室(MLSIC)同时测量剂量和DR。此外,我们为高分辨率像素化半导体探测器Timepix3开发了一种“欠采样和恢复(USRe)”技术,以避免事件堆积,并在不进行不良束流修改的情况下校正高质子通量位置处测量的LET。使用MatriXX PT探测器并通过蒙特卡罗(MC)模拟对这些测量进行确认。

结果

与MatriXX PT和MLSIC数据相比,MC适形FLASH计算剂量的伽马通过率>95%(3 mm/3%标准)。在侧边缘,DR在100 Gy/s时显示出与模拟值的平均一致性在0.3%以内,在15 Gy/s时波动约10%。近端、侧端和远端边缘的LET谱的Bhattacharyya距离<1.3%。

结论

我们使用MLSIC和Timepix3探测器的测量结果表明,UHDR场景的DR分布和使用USRe的LET谱与模拟结果一致。这些结果表明,本文提出的方法可有效地用于FLASH治疗计划的实验验证和QA。

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