Neuroscience Research Institute, Gachon University, South Korea.
Department of Health Sciences and Technology, GAIHST, Gachon University, South Korea.
PLoS One. 2024 Oct 24;19(10):e0312343. doi: 10.1371/journal.pone.0312343. eCollection 2024.
This simulation-based study presented a novel hybrid RF antenna array designed for neck cancer treatment within a 7T MRI system. The proposed design aimed to provide microwave hyperthermia to release 19F-labeled anticancer drugs from thermosensitive liposomes, facilitating drug concentration monitoring through 19F imaging and enabling 1H anatomical imaging and MR thermometry for temperature control. The design featured a bidirectional microstrip for generating the magnetic |B1|-fields required for 1H and 19F MR imaging, along with a patch antenna for localized RF heating. The bidirectional microstrip was operated at 300 MHz and 280 MHz through the placement of excitation ports at the ends of the antenna and an asymmetric structure along the antenna. Additionally, a patch antenna was positioned at the center. Based on this setup, an array of six antennas was designed. Simulation results using a tissue-mimicking simulation model confirmed the intensity and uniformity of |B1|-fields for both 19F and 1H nuclei, demonstrating the suitability of the design for clinical imaging. RF heating from the patch antennas was effectively localized at the center of the cancer model. In simulations with a human model, average |B1|-fields were 0.21 μT for 19F and 0.12 μT for 1H, with normalized-absolute-average-deviation values of 81.75% and 87.74%, respectively. Hyperthermia treatment was applied at 120 W for 600 s, achieving an average temperature of 40.22°C in the cancer model with a perfusion rate of 1 ml/min/kg. This study demonstrated the potential of a hybrid antenna array for integrating 1H MR, 19F drug monitoring, and hyperthermia.
本基于模拟的研究提出了一种新颖的混合射频天线阵列设计,用于在 7T MRI 系统内治疗颈部癌症。该设计旨在提供微波热疗以从热敏脂质体中释放 19F 标记的抗癌药物,通过 19F 成像实现药物浓度监测,并通过 1H 解剖成像和磁共振测温实现温度控制。该设计采用了双向微带天线,用于产生 1H 和 19F MRI 所需的|B1|-场,同时采用贴片天线进行局部射频加热。双向微带天线在 300 MHz 和 280 MHz 下工作,通过在天线末端放置激励端口和沿天线的不对称结构实现。此外,中心位置还放置了一个贴片天线。在此基础上,设计了一个由六个天线组成的阵列。使用组织模拟仿真模型的仿真结果证实了 19F 和 1H 核的|B1|-场的强度和均匀性,表明该设计适用于临床成像。贴片天线的射频加热有效地集中在癌症模型的中心。在人体模型的模拟中,19F 的平均|B1|-场为 0.21 μT,1H 的平均|B1|-场为 0.12 μT,归一化绝对平均偏差值分别为 81.75%和 87.74%。在 120 W 的功率下进行 600 s 的热疗,在灌注率为 1 ml/min/kg 的情况下,癌症模型的平均温度达到 40.22°C。本研究展示了混合天线阵列在集成 1H MR、19F 药物监测和热疗方面的潜力。