Illawarra Cancer Care Centre, Wollongong, Australia.
Med Phys. 2012 Feb;39(2):874-90. doi: 10.1118/1.3676181.
In recent times, longitudinal field MRI-linac systems have been proposed for 6 MV MRI-guided radiotherapy (MRIgRT). The magnetic field is parallel with the beam axis and so will alter the transport properties of any electron contamination particles. The purpose of this work is to provide a first investigation into the potential effects of the MR and fringe magnetic fields on the electron contamination as it is transported toward a phantom, in turn, providing an estimate of the expected patient skin dose changes in such a modality.
Geant4 Monte Carlo simulations of a water phantom exposed to a 6 MV x-ray beam were performed. Longitudinal magnetic fields of strengths between 0 and 3 T were applied to a 30 × 30 × 20 cm(3) phantom. Surrounding the phantom there is a region where the magnetic field is at full MRI strength, consistent with clinical MRI systems. Beyond this the fringe magnetic field entering the collimation system is also modeled. The MRI-coil thickness, fringe field properties, and isocentric distance are varied and investigated. Beam field sizes of 5 × 5, 10 × 10, 15 × 15 and 20 × 20 cm(2) were simulated. Central axis dose, 2D virtual entry skin dose films, and 70 μm skin depth doses were calculated using high resolution scoring voxels.
In the presence of a longitudinal magnetic field, electron contamination from the linear accelerator is encouraged to travel almost directly toward the patient surface with minimal lateral spread. This results in a concentration of electron contamination within the x-ray beam outline. This concentration is particularly encouraged if the fringe field encompasses the collimation system. Skin dose increases of up to 1000% were observed for certain configurations and increases above Dmax were common. In nonmagnetically shielded cases, electron contamination generated from the jaw faces and air column is trapped and propagated almost directly to the phantom entry region, giving rise to intense dose hot spots inside the x-ray treatment field. These range up to 1000% or more of Dmax at the CAX, depending on field size, isocenter, and coil thickness. In the case of a fully magnetically shielded collimation system and the lowest MRI field of 0.25 T, the entry skin dose is expected to increase to at least 40%, 50%, 65%, and 80% of Dmax for 5 × 5, 10 × 10, 15 × 15, and 20 × 20 cm(2), respectively.
Electron contamination from the linac head and air column may cause considerable skin dose increases or hot spots at the beam central axis on the entry side of a phantom or patient in longitudinal field 6 MV MRIgRT. This depends heavily on the properties of the magnetic fringe field entering the linac beam collimation system. The skin dose increase is also related to the MRI-coil thickness, the fringe field, and the isocenter distance of the linac. The results of this work indicate that the properties of the MRI fringe field, electron contamination production, and transport must be considered carefully during the design stage of a longitudinal MRI-linac system.
最近,提出了用于 6 MV MRI 引导放疗(MRIgRT)的纵向磁场 MRI-直线加速器系统。磁场与射束轴平行,因此会改变任何电子污染颗粒的输运特性。这项工作的目的是首次研究在将电子污染物质输送到模体时,MR 和边缘磁场对电子污染物质的潜在影响,从而估计在这种模式下患者皮肤剂量的预期变化。
对暴露于 6 MV X 射线束的水模体进行了 Geant4 蒙特卡罗模拟。对 30×30×20 cm³的模体施加了强度在 0 到 3 T 之间的纵向磁场。在模体周围,存在一个磁场处于全 MRI 强度的区域,与临床 MRI 系统一致。在此之外,还对进入准直系统的边缘磁场进行建模。研究了 MRI 线圈厚度、边缘场特性和等中心距离的变化。模拟了 5×5、10×10、15×15 和 20×20 cm²的射束场大小。使用高分辨率评分体素计算了中心轴剂量、2D 虚拟入口皮肤剂量膜和 70 μm 皮肤深度剂量。
在存在纵向磁场的情况下,来自直线加速器的电子污染物质被鼓励几乎直接向患者表面传播,横向扩散最小。这导致电子污染物质在 X 射线束轮廓内集中。如果边缘场包含准直系统,则会特别鼓励这种集中。对于某些配置,观察到皮肤剂量增加高达 1000%,并且通常超过 Dmax。在未屏蔽的情况下,从机头面和空气柱产生的电子污染物质被捕获并几乎直接传播到模体入口区域,在 X 射线治疗场内部产生强烈的剂量热点。这些热点在 CAX 处的剂量高达 1000%或更高,具体取决于射束大小、等中心和线圈厚度。在完全屏蔽的准直系统和最低 0.25 T 的 MRI 场的情况下,入口皮肤剂量预计将增加至少 40%、50%、65%和 80%,分别为 5×5、10×10、15×15 和 20×20 cm²,Dmax。
来自直线加速器机头和空气柱的电子污染物质可能会导致在纵向 6 MV MRIgRT 中,模体或患者入口侧的射束中心轴上的皮肤剂量显著增加或出现热点。这在很大程度上取决于进入直线加速器束准直系统的边缘磁场的特性。皮肤剂量的增加还与 MRI 线圈厚度、边缘场和直线加速器的等中心距离有关。这项工作的结果表明,在纵向 MRI-直线加速器系统的设计阶段,必须仔细考虑 MRI 边缘场的特性、电子污染物质的产生和输运。