Department of Radiation Oncology, School of Medicine and Klinikum rechts der Isar, Technical University of Munich (TUM), Ismaninger Str. 22, Munich, Germany; Physics Department, Technical University of Munich (TUM), James-Franck-Str. 1, 85748, Garching, Germany.
Department of Radiation Oncology, School of Medicine and Klinikum rechts der Isar, Technical University of Munich (TUM), Ismaninger Str. 22, Munich, Germany; Institute of Radiation Medicine (IRM), Helmholtz Zentrum München, Ingolstädter Landstr. 1, 85764, Neuherberg, Germany.
Z Med Phys. 2022 Aug;32(3):261-272. doi: 10.1016/j.zemedi.2022.02.004. Epub 2022 Mar 31.
In the field of preclinical radiotherapy, many new developments were driven by technical innovations. To make research of different groups comparable in that context and reliable, high quality has to be maintained. Therefore, standardized protocols and programs should be used. Here we present a guideline for a comprehensive and efficient quality assurance program for an image-guided small animal irradiation system, which is meant to test all the involved subsystems (imaging, treatment planning, and the irradiation system in terms of geometric accuracy and dosimetric aspects) as well as the complete procedure (end-to-end test) in a time efficient way. The suggestions are developed on a Small Animal Radiation Research Platform (SARRP) from Xstrahl (Xstrahl Ltd., Camberley, UK) and are presented together with proposed frequencies (from monthly to yearly) and experiences on the duration of each test. All output and energy related measurements showed stable results within small variation. Also, the motorized parts (couch, gantry) and other geometrical alignments were very stable. For the checks of the imaging system, the results are highly dependent on the chosen protocol and differ according to the settings. We received nevertheless stable and comparably good results for our mainly used protocol. All investigated aspects of treatment planning were exactly fulfilled and also the end-to-end test showed satisfying values. The mean overall time we needed for our checks to have a well monitored machine is less than two hours per month.
在临床前放射治疗领域,许多新技术的发展都是由技术创新推动的。为了使不同小组的研究具有可比性和可靠性,必须保持高质量。因此,应该使用标准化的协议和程序。在这里,我们提出了一个全面、高效的图像引导小动物照射系统质量保证计划指南,该计划旨在以高效的方式测试所有涉及的子系统(成像、治疗计划以及从几何精度和剂量学方面来看的照射系统)以及整个过程(端到端测试)。这些建议是在 Xstrahl(英国坎伯利的 Xstrahl 有限公司)的小动物放射研究平台(SARRP)上制定的,并与建议的频率(每月到每年)以及每个测试的持续时间相关经验一起呈现。所有输出和能量相关测量结果均显示出较小变化范围内的稳定结果。此外,电动部件(治疗床、旋转架)和其他几何对准也非常稳定。对于成像系统的检查,结果高度依赖于所选的协议,并根据设置而有所不同。然而,我们为主要使用的协议获得了稳定且可比的良好结果。治疗计划的所有检查方面都完全符合要求,端到端测试也显示出了满意的结果。我们每月用于对设备进行监控的总时间平均不到两个小时。