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基于源追踪测量和不确定性的时间分辨临床剂量体积指标、计算和预测,以辅助 HDR 近距离治疗的验证和误差检测——一项原理验证研究。

Time-resolved clinical dose volume metrics, calculations and predictions based on source tracking measurements and uncertainties to aid treatment verification and error detection for HDR brachytherapy-a proof-of-principle study.

机构信息

Department of Radiation Oncology (Maastro), GROW-Research Institute for Oncology and Reproduction, Maastricht University Medical Centre+, Maastricht, The Netherlands.

出版信息

Phys Med Biol. 2024 Jun 25;69(13). doi: 10.1088/1361-6560/ad580e.

Abstract

High-dose-rate (HDR) brachytherapy lacks routinely available treatment verification methods. Real-time tracking of the radiation source during HDR brachytherapy can enhance treatment verification capabilities. Recent developments in source tracking allow for measurement of dwell times and source positions with high accuracy. However, more clinically relevant information, such as dose discrepancies, is still needed. To address this, a real-time dose calculation implementation was developed to provide more relevant information from source tracking data. A proof-of-principle of the developed tool was shown using source tracking data obtained from a 3D-printed anthropomorphic phantom.Software was developed to calculate dose-volume-histograms (DVH) and clinical dose metrics from experimental HDR prostate treatment source tracking data, measured in a realistic pelvic phantom. Uncertainty estimation was performed using repeat measurements to assess the inherent dose measuring uncertainty of thedosimetry (IVD) system. Using a novel approach, the measurement uncertainty can be incorporated in the dose calculation, and used for evaluation of cumulative dose and clinical dose-volume metrics after every dwell position, enabling real-time treatment verification.The dose calculated from source tracking measurements aligned with the generated uncertainty bands, validating the approach. Simulated shifts of 3 mm in 5/17 needles in a single plan caused DVH deviations beyond the uncertainty bands, indicating errors occurred during treatment. Clinical dose-volume metrics could be monitored in a time-resolved approach, enabling early detection of treatment plan deviations and prediction of their impact on the final dose that will be delivered in real-time.Integrating dose calculation with source tracking enhances the clinical relevance of IVD methods. Phantom measurements show that the developed tool aids in tracking treatment progress, detecting errors in real-time and post-treatment evaluation. In addition, it could be used to define patient-specific action limits and error thresholds, while taking the uncertainty of the measurement system into consideration.

摘要

高剂量率(HDR)近距离治疗缺乏常规可用的治疗验证方法。在 HDR 近距离治疗期间实时跟踪辐射源可以增强治疗验证能力。最近的源跟踪发展允许高精度测量驻留时间和源位置。然而,仍需要更具临床相关性的信息,例如剂量差异。为了解决这个问题,开发了一种实时剂量计算实现方法,以便从源跟踪数据中提供更多相关信息。使用从 3D 打印的人体模型获得的源跟踪数据,对开发的工具进行了原理验证。开发了软件来计算剂量体积直方图(DVH)和临床剂量指标,这些数据来自在现实骨盆模型中测量的实验性 HDR 前列腺治疗源跟踪数据。使用重复测量进行不确定度估计,以评估剂量学(IVD)系统的固有剂量测量不确定度。使用新颖的方法,可以将测量不确定度纳入剂量计算中,并用于评估每个驻留位置后的累积剂量和临床剂量体积指标,从而实现实时治疗验证。从源跟踪测量计算得出的剂量与生成的不确定带吻合,验证了该方法。在单个计划中,模拟的 5/17 根针中的 3 毫米移位导致 DVH 偏差超出不确定带,表明治疗过程中出现了错误。可以采用时间分辨的方法监测临床剂量体积指标,从而能够及早发现治疗计划偏差,并预测它们对实时交付的最终剂量的影响。将剂量计算与源跟踪相结合,可以增强 IVD 方法的临床相关性。体模测量表明,所开发的工具有助于跟踪治疗进展,实时检测误差,并在治疗后进行评估。此外,它可以用于定义患者特异性的行动限制和误差阈值,同时考虑测量系统的不确定性。

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