Institute of Radiooncology - OncoRay, Helmholtz-Zentrum Dresden-Rossendorf, Dresden, Germany.
OncoRay - National Center for Radiation Research in Oncology, Faculty of Medicine, University Hospital Carl Gustav Carus, Technische Universität Dresden, Helmholtz-Zentrum Dresden-Rossendorf, Dresden, Germany.
Med Phys. 2019 Jan;46(1):25-33. doi: 10.1002/mp.13261. Epub 2018 Nov 19.
Systems for integrated magnetic resonance guided radiation therapy (MRgRT) provide real-time and online MRI guidance for unequaled targeting performance of moving tumors and organs at risk. The clinical introduction of such systems requires dedicated methods for commissioning and routine machine quality assurance (QA). The aim of the study was to develop a commissioning protocol and method for automatic quantification of target motion and geometric accuracy using a 4D MRI motion phantom.
The commissioning was performed on a clinically used 3 T MR scanner. The phantom was positioned on a flat tabletop overlay using an in-house constructed base plate for a quick and reproducible setup. The torso-shaped phantom body, which was filled with mineral oil as signal generating medium, included a 3D grid structure for image distortion analysis and a cylindrical thru-hole in which a software-controlled moving rod with a hypo-intense background gel and a decentralized hyper-intense target simulated 3D organ motion patterns. To allow for sequence optimization, MR relaxometry was performed to determine the longitudinal T and transverse T relaxation times of both target and background gel in the movable cylinder. The geometric image distortion was determined as the mean and maximum 3D Euclidean distance (Δ , Δ ) of grid points determined by nonrigid registration of a 3D spoiled gradient echo MRI scan and a CT scan. Sinusoidal 1D/2D/3D motion trajectories, varying in amplitude and frequency, as well as an exemplary 1D MR navigator diaphragm motion pattern extracted from a healthy volunteer scan, were scanned by means of 2D cine MRI and 4D MRI. Target positions were automatically extracted from 2D cine MRI using an in-house developed software tool.
The base plate enabled a reproducible setup with a deviation of <1 mm in all directions. Relaxometry yielded T /T values for target and background gel of 208.1 ± 2.8/30.5 ± 4.7 ms and 871 ± 36/13.4 ± 1.3 ms, respectively. The 3D geometric image distortion increased with distance from the magnetic isocenter, with Δ = 0.58 ± 0.30 mm and Δ = 1.31 mm. The frequencies of the reconstructed motion patterns agreed with the preset values within 0.5%, whereas the reconstructed amplitudes showed a maximum deviation to the preset amplitudes of <0.5 mm in AP/LR direction and <0.3 mm in IS direction.
A method and protocol for commissioning of a 4D MRI motion phantom on a 3 T MR scanner for MRgRT was developed. High-contrast and geometrically reliable 2D cine MR images of the phantom's moving target could be obtained. The preset motion parameters could be extracted with sufficient spatio-temporal accuracy from 2D cine MRI in all motion directions. The overall 3D geometric image distortion of <1.31 mm within the phantom grid confirms geometric accuracy of the clinically utilized 3D spoiled gradient echo sequence. The method developed can be used for routine QA tests of spatio-temporally resolved MRI data in MRgRT.
集成磁共振引导放射治疗(MRgRT)系统为移动肿瘤和危及器官提供了实时在线的磁共振引导,从而实现了无与伦比的靶向性能。此类系统的临床应用需要专门的调试方法和常规机器质量保证(QA)。本研究的目的是开发一种调试协议和方法,用于使用 4D MRI 运动体模自动量化目标运动和几何精度。
在临床使用的 3T MR 扫描仪上进行了调试。使用内部制造的基板将体模放置在平坦的台面上,以便快速且可重复地设置。仿体形状的体模体充满了矿物油作为信号产生介质,包括一个 3D 网格结构,用于图像失真分析,以及一个圆柱形通孔,其中一个软件控制的移动棒具有低信号背景凝胶和分散的高信号目标,模拟了 3D 器官运动模式。为了允许进行序列优化,进行了磁共振弛豫测量,以确定可移动圆柱体中目标和背景凝胶的纵向 T 和横向 T 弛豫时间。通过非刚性注册 3D 扰相梯度回波 MRI 扫描和 CT 扫描来确定网格点的平均和最大 3D 欧式距离(Δ、Δ),以确定几何图像失真。通过二维电影 MRI 和 4D MRI 扫描了幅度和频率变化的正弦 1D/2D/3D 运动轨迹,以及从健康志愿者扫描中提取的示例 1D MR 导航器隔膜运动模式。使用内部开发的软件工具从二维电影 MRI 中自动提取目标位置。
基板允许在所有方向上具有 <1mm 的可重复性设置偏差。弛豫测量得到目标和背景凝胶的 T/T 值分别为 208.1±2.8/30.5±4.7ms 和 871±36/13.4±1.3ms。3D 几何图像失真随距离磁体等中心的增加而增加,Δ=0.58±0.30mm 和 Δ=1.31mm。重建运动模式的频率与预设值相差在 0.5%以内,而重建幅度在 AP/LR 方向上最大偏差至预设幅度小于 0.5mm,在 IS 方向上最大偏差至预设幅度小于 0.3mm。
开发了一种在 3T MR 扫描仪上对用于 MRgRT 的 4D MRI 运动体模进行调试的方法和协议。可以从所有运动方向的二维电影 MRI 中获得具有高对比度和几何可靠性的体模移动目标的图像。可以从二维电影 MRI 中以足够的时空精度提取预设的运动参数。体模网格内的整体 3D 几何图像失真 <1.31mm 证实了临床使用的 3D 扰相梯度回波序列的几何精度。所开发的方法可用于 MRgRT 中时空分辨 MRI 数据的常规 QA 测试。