Ishihara Yoshitomo, Nakamura Mitsuhiro, Miyabe Yuki, Mukumoto Nobutaka, Matsuo Yukinori, Sawada Akira, Kokubo Masaki, Mizowaki Takashi, Hiraoka Masahiro
Department of Radiation Oncology and Image-applied Therapy, Graduate School of Medicine, Kyoto University, Kyoto 606-8507, Japan.
Department of Radiation Oncology and Image-applied Therapy, Graduate School of Medicine, Kyoto University, Kyoto 606-8507, Japan.
Phys Med. 2017 Mar;35:59-65. doi: 10.1016/j.ejmp.2017.02.004. Epub 2017 Feb 16.
To develop a four-dimensional (4D) dose calculation system for real-time tumor tracking (RTTT) irradiation by the Vero4DRT.
First, a 6-MV photon beam delivered by the Vero4DRT was simulated using EGSnrc. A moving phantom position was directly measured by a laser displacement gauge. The pan and tilt angles, monitor units, and the indexing time indicating the phantom position were also extracted from a log file. Next, phase space data at any angle were created from both the log file and particle data under the dynamic multileaf collimator. Irradiation both with and without RTTT, with the phantom moving, were simulated using several treatment field sizes. Each was compared with the corresponding measurement using films. Finally, dose calculation for each computed tomography dataset of 10 respiratory phases with the X-ray head rotated was performed to simulate the RTTT irradiation (4D plan) for lung, liver, and pancreatic cancer patients. Dose-volume histograms of the 4D plan were compared with those calculated on the single reference respiratory phase without the gimbal rotation [three-dimensional (3D) plan].
Differences between the simulated and measured doses were less than 3% for RTTT irradiation in most areas, except the high-dose gradient. For clinical cases, the target coverage in 4D plans was almost identical to that of the 3D plans. However, the doses to organs at risk in the 4D plans varied at intermediate- and low-dose levels.
Our proposed system has acceptable accuracy for RTTT irradiation in the Vero4DRT and is capable of simulating clinical RTTT plans.
开发一种用于Vero4DRT实时肿瘤追踪(RTTT)照射的四维(4D)剂量计算系统。
首先,使用EGSnrc模拟Vero4DRT输出的6兆伏光子束。通过激光位移计直接测量移动模体的位置。还从日志文件中提取平移和倾斜角度、监测单位以及指示模体位置的分度时间。接下来,根据日志文件和动态多叶准直器下的粒子数据创建任意角度的相空间数据。使用几种治疗野尺寸模拟了模体移动时有无RTTT的照射情况。每种情况都与使用胶片的相应测量结果进行比较。最后,对X射线头旋转的10个呼吸相位的每个计算机断层扫描数据集进行剂量计算,以模拟肺癌、肝癌和胰腺癌患者的RTTT照射(4D计划)。将4D计划的剂量体积直方图与在无万向节旋转的单一参考呼吸相位上计算的剂量体积直方图(三维(3D)计划)进行比较。
除高剂量梯度区域外,大多数区域的RTTT照射模拟剂量与测量剂量之间的差异小于3%。对于临床病例,4D计划中的靶区覆盖情况与3D计划几乎相同。然而,4D计划中危及器官的剂量在中低剂量水平有所不同。
我们提出的系统对于Vero4DRT中的RTTT照射具有可接受的准确性,并且能够模拟临床RTTT计划。