Rahimi Faezeh, Nurzed Bilguun, Eigentler Thomas W, Berangi Mostafa, Oberacker Eva, Kuehne Andre, Ghadjar Pirus, Millward Jason M, Schuhmann Rolf, Niendorf Thoralf
Berlin Ultrahigh Field Facility, Max-Delbrück-Center for Molecular Medicine in the Helmholtz Association, 13125 Berlin, Germany.
FG Theoretische Elektrotechnik, Technical University of Berlin, 10587 Berlin, Germany.
Bioengineering (Basel). 2024 Jul 19;11(7):733. doi: 10.3390/bioengineering11070733.
Thermal Magnetic Resonance (ThermalMR) integrates Magnetic Resonance Imaging (MRI) diagnostics and targeted radio-frequency (RF) heating in a single theranostic device. The requirements for MRI (magnetic field) and targeted RF heating (electric field) govern the design of ThermalMR applicators. We hypothesize that helmet RF applicators (HPA) improve the efficacy of ThermalMR of brain tumors versus an annular phased RF array (APA). An HPA was designed using eight broadband self-grounded bow-tie (SGBT) antennae plus two SGBTs placed on top of the head. An APA of 10 equally spaced SGBTs was used as a reference. Electromagnetic field (EMF) simulations were performed for a test object (phantom) and a human head model. For a clinical scenario, the head model was modified with a tumor volume obtained from a patient with glioblastoma multiforme. To assess performance, we introduced multi-target evaluation (MTE) to ensure whole-brain slice accessibility. We implemented time multiplexed vector field shaping to optimize RF excitation. Our EMF and temperature simulations demonstrate that the HPA improves performance criteria critical to MRI and enhances targeted RF and temperature focusing versus the APA. Our findings are a foundation for the experimental implementation and application of a HPA en route to ThermalMR of brain tumors.
热磁共振(ThermalMR)在单个治疗诊断设备中集成了磁共振成像(MRI)诊断和靶向射频(RF)加热功能。MRI(磁场)和靶向RF加热(电场)的要求决定了ThermalMR应用器的设计。我们假设头盔式RF应用器(HPA)相较于环形相控RF阵列(APA)能提高脑肿瘤ThermalMR的疗效。一个HPA是使用八个宽带自接地蝴蝶结(SGBT)天线加上放置在头部上方的两个SGBT设计而成。一个由10个等间距SGBT组成的APA用作参考。对一个测试对象(模型)和一个人体头部模型进行了电磁场(EMF)模拟。对于临床场景,使用从多形性胶质母细胞瘤患者获取的肿瘤体积对头部模型进行了修改。为了评估性能,我们引入了多目标评估(MTE)以确保全脑切片的可达性。我们实施了时分复用矢量场整形以优化RF激发。我们的EMF和温度模拟表明,与APA相比,HPA改善了对MRI至关重要的性能标准,并增强了靶向RF和温度聚焦。我们的研究结果是在脑肿瘤ThermalMR的道路上进行HPA实验实施和应用的基础。