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基于植入金属标记物的质子诱导X射线发射的眼部质子治疗射程验证

Range verification for eye proton therapy based on proton-induced x-ray emissions from implanted metal markers.

作者信息

La Rosa Vanessa, Kacperek Andrzej, Royle Gary, Gibson Adam

机构信息

Department of Medical Physics and Bioengineering, University College London, WC1E 6BT, UK.

出版信息

Phys Med Biol. 2014 Jun 7;59(11):2623-38. doi: 10.1088/0031-9155/59/11/2623. Epub 2014 May 1.

Abstract

Metal fiducial markers are often implanted on the back of the eye before proton therapy to improve target localization and reduce patient setup errors. We aim to detect characteristic x-ray emissions from metal targets during proton therapy to verify the treatment range accuracy. Initially gold was chosen for its biocompatibility properties. Proton-induced x-ray emissions (PIXE) from a 15 mm diameter gold marker were detected at different penetration depths of a 59 MeV proton beam at the CATANA proton facility at INFN-LNS (Italy). The Monte Carlo code Geant4 was used to reproduce the experiment and to investigate the effect of different size markers, materials, and the response to both mono-energetic and fully modulated beams. The intensity of the emitted x-rays decreases with decreasing proton energy and thus decreases with depth. If we assume the range to be the depth at which the dose is reduced to 10% of its maximum value and we define the residual range as the distance between the marker and the range of the beam, then the minimum residual range which can be detected with 95% confidence level is the depth at which the PIXE peak is equal to 1.96 σ(bkg), which is the standard variation of the background noise. With our system and experimental setup this value is 3 mm, when 20 GyE are delivered to a gold marker of 15 mm diameter. Results from silver are more promising. Even when a 5 mm diameter silver marker is placed at a depth equal to the range, the PIXE peak is 2.1 σ(bkg). Although these quantitative results are dependent on the experimental setup used in this research study, they demonstrate that the real-time analysis of the PIXE emitted by fiducial metal markers can be used to derive beam range. Further analysis are needed to demonstrate the feasibility of the technique in a clinical setup.

摘要

在质子治疗前,通常会在眼后部植入金属基准标记物,以改善靶区定位并减少患者摆位误差。我们旨在检测质子治疗期间金属靶标的特征性X射线发射,以验证治疗范围的准确性。最初选择金是因其生物相容性。在意大利国家核物理研究所(INFN-LNS)的卡塔纳质子设施中,对直径15毫米的金标记物在59 MeV质子束的不同穿透深度下检测质子诱导X射线发射(PIXE)。使用蒙特卡罗代码Geant4重现实验,并研究不同尺寸标记物、材料以及对单能束和完全调制束的响应的影响。发射的X射线强度随质子能量降低而降低,因此随深度降低。如果我们假设范围是剂量降低到其最大值的10%时的深度,并将剩余范围定义为标记物与束的范围之间的距离,那么在95%置信水平下能够检测到的最小剩余范围就是PIXE峰等于1.96σ(背景)时的深度,其中σ(背景)是背景噪声的标准偏差。对于我们的系统和实验设置,当向直径15毫米的金标记物输送20 GyE时,该值为3毫米。银的结果更有前景。即使将直径5毫米的银标记物放置在等于范围的深度处,PIXE峰也为2.1σ(背景)。尽管这些定量结果取决于本研究中使用的实验设置,但它们表明对基准金属标记物发射的PIXE进行实时分析可用于推导束的范围。需要进一步分析以证明该技术在临床设置中的可行性。

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