OncoRay-National Center for Radiation Research in Oncology, Faculty of Medicine and University Hospital Carl Gustav Carus, Technische Universität Dresden, Helmholtz-Zentrum Dresden-Rossendorf, Dresden, Germany. Helmholtz-Zentrum Dresden-Rossendorf, Institute of Radiooncology-OncoRay, Dresden, Germany. Both authors contributed equally to this work.
Phys Med Biol. 2018 Nov 22;63(23):23LT01. doi: 10.1088/1361-6560/aaece8.
On-line image guidance using magnetic resonance (MR) imaging is expected to improve the targeting accuracy of proton therapy. However, to date no combined system exists. In this study, for the first time a low-field open MR scanner was integrated with a static proton research beam line to test the feasibility of simultaneous irradiation and imaging. The field-of-view of the MR scanner was aligned with the beam by taking into account the Lorentz force induced beam deflection. Various imaging sequences for extremities were performed on a healthy volunteer and on a patient with a soft-tissue sarcoma of the upper arm, both with the proton beam line switched off. T -weighted spin echo images of a tissue-mimicking phantom were acquired without beam, with energised beam line magnets and during proton irradiation. Beam profiles were acquired for the MR scanner's static magnetic field alone and in combination with the dynamic gradient fields during the acquisition of different imaging sequences. It was shown that MR imaging is feasible in the electromagnetically contaminated environment of a proton therapy facility. The observed quality of the anatomical MR images was rated to be sufficient for target volume definition and positioning. The tissue-mimicking phantom showed no visible beam-induced image degradation. The beam profiles depicted no influence due to the dynamic gradient fields of the imaging sequences. This study proves that simultaneous irradiation and in-beam MR imaging is technically feasible with a low-field MR scanner integrated with a static proton research beam line.
在线磁共振(MR)图像引导有望提高质子治疗的靶向准确性。然而,迄今为止,还没有联合系统。在这项研究中,首次将低场开放式 MR 扫描仪与静态质子研究束线集成,以测试同时照射和成像的可行性。考虑到洛伦兹力引起的束偏转,通过考虑洛伦兹力引起的束偏转,将 MR 扫描仪的视场与束对齐。在没有质子束线的情况下,对健康志愿者和患有上臂软组织肉瘤的患者进行了各种肢体成像序列,同时关闭了质子束线。在没有光束、励磁束线磁铁以及在质子照射期间,对组织模拟体模进行了 T 加权自旋回波成像。在采集不同成像序列期间,仅采集了 MR 扫描仪的静态磁场的磁场分布,并采集了与动态梯度磁场组合的磁场分布。结果表明,MR 成像在质子治疗设施的电磁污染环境中是可行的。观察到的解剖 MR 图像质量足以满足靶区定义和定位的要求。组织模拟体模显示在光束诱导的图像退化。由于成像序列的动态梯度场,描绘的光束分布没有影响。这项研究证明了低场 MR 扫描仪与静态质子研究束线集成后,同时进行照射和在线 MR 成像在技术上是可行的。