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Online proton therapy monitoring: clinical test of a Silicon-photodetector-based in-beam PET

机译:在线质子治疗监测:基于硅光电探测器的束内PET的临床测试

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摘要

Particle therapy exploits the energy deposition pattern of hadron beams. The narrow Bragg Peak at the end of range is a major advantage but range uncertainties can cause severe damage and require online verification to maximise the effectiveness in clinics. In-beam Positron Emission Tomography (PET) is a non-invasive, promising in-vivo technique, which consists in the measurement of the β+ activity induced by beam-tissue interactions during treatment, and presents the highest correlation of the measured activity distribution with the deposited dose, since it is not much influenced by biological washout. Here we report the first clinical results obtained with a state-of-the-art in-beam PET scanner, with on-the-fly reconstruction of the activity distribution during irradiation. An automated time-resolved quantitative analysis was tested on a lacrimal gland carcinoma case, monitored during two consecutive treatment sessions. The 3D activity map was reconstructed every 10 s, with an average delay between beam delivery and image availability of about 6 s. The correlation coefficient of 3D activity maps for the two sessions (above 0.9 after 120 s) and the range agreement (within 1 mm) prove the suitability of in-beam PET for online range verification during treatment, a crucial step towards adaptive strategies in particle therapy.
机译:粒子疗法利用强子束的能量沉积模式。距离终点处较窄的布拉格峰是主要优势,但距离不确定性可能会造成严重损害,需要在线验证以最大程度地提高临床效率。电子束正电子发射断层扫描(PET)是一种非侵入性的,有前途的体内技术,该技术包括测量在治疗过程中射线与组织相互作用引起的β+活性,并呈现出最高的相关性。沉积剂量,因为它不受生物学冲洗的影响很大。在这里,我们报告使用最新的光束中PET扫描仪获得的第一批临床结果,并在辐射过程中实时重建活性分布。对泪腺癌病例进行了自动时间分辨定量分析,并在两个连续的治疗过程中进行了监测。每10微秒重建一次3D活动图,光束传输和图像可用性之间的平均延迟约为6微秒。这两个阶段的3D活性图的相关系数(120 s后为0.9以上)和距离一致性(1毫米内)证明了束内PET在治疗过程中在线范围验证的适用性,这是粒子适应策略的关键一步治疗。

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