Center for Proton Therapy, Paul Scherrer Institute, 5232 Villigen, Switzerland.
Center for Proton Therapy, Paul Scherrer Institute, 5232 Villigen, Switzerland.
Z Med Phys. 2022 Feb;32(1):52-62. doi: 10.1016/j.zemedi.2020.07.001. Epub 2020 Aug 20.
We present the commissioning and quality assurance of our clinical protocol for respiratory gating in pencil beam scanning proton therapy for cancer patients with moving targets. In a novel approach, optical tracking has been integrated in the therapy workflow and used to monitor respiratory motion from multiple surrogates, applied on the patients' chest. The gating system was tested under a variety of experimental conditions, specific to proton therapy, to evaluate reaction time and reproducibility of dose delivery control. The system proved to be precise in the application of beam gating and allowed the mitigation of dose distortions even for large (1.4cm) motion amplitudes, provided that adequate treatment windows were selected. The total delivered dose was not affected by the use of gating, with measured integral error within 0.15cGy. Analysing high-resolution images of proton transmission, we observed negligible discrepancies in the geometric location of the dose as a function of the treatment window, with gamma pass rate greater than 95% (2%/2mm) compared to stationary conditions. Similarly, pass rate for the latter metric at the 3%/3mm level was observed above 97% for clinical treatment fields, limiting residual movement to 3mm at end-exhale. These results were confirmed in realistic clinical conditions using an anthropomorphic breathing phantom, reporting a similarly high 3%/3mm pass rate, above 98% and 94%, for regular and irregular breathing, respectively. Finally, early results from periodic QA tests of the optical tracker have shown a reliable system, with small variance observed in static and dynamic measurements.
我们介绍了针对移动目标癌症患者的笔形束扫描质子治疗呼吸门控的临床方案的调试和质量保证。在一种新颖的方法中,光学跟踪已集成到治疗工作流程中,用于从多个替代物(应用于患者胸部)监测呼吸运动。该门控系统在各种特定于质子治疗的实验条件下进行了测试,以评估剂量输送控制的反应时间和可重复性。该系统在应用束门控方面表现出精确性,并且即使对于较大的(1.4cm)运动幅度,只要选择了足够的治疗窗口,也可以减轻剂量失真。使用门控不会影响总输送剂量,测量的积分误差在 0.15cGy 以内。通过分析质子传输的高分辨率图像,我们观察到剂量的几何位置与治疗窗口之间几乎没有差异,与固定条件相比,伽马通过率大于 95%(2%/2mm)。同样,在 3%/3mm 水平上,对于临床治疗场,后者指标的通过率超过 97%,将残余运动限制在呼气末期的 3mm 以内。在使用人体呼吸模拟物的现实临床条件下,这些结果得到了证实,报告了类似的高 3%/3mm 通过率,分别为 98%和 94%,用于常规和不规则呼吸。最后,光学跟踪器的定期 QA 测试的早期结果表明该系统可靠,在静态和动态测量中观察到的方差较小。