Department of Radiotherapy, Erasmus MC Cancer Institute, Rotterdam, The Netherlands.
Department of Electrical Engineering, Eindhoven University of Technology, Eindhoven, The Netherlands.
Int J Hyperthermia. 2021;38(1):1660-1671. doi: 10.1080/02656736.2021.2005160.
In High Dose Rate Brachytherapy for prostate cancer there is a need for a new way of increasing cancer cell kill in combination with a stable dose to the organs at risk. In this study, we propose a novel ThermoBrachy applicator that offers the unique ability to apply interstitial hyperthermia while simultaneously serving as an afterloading catheter for high dose rate brachytherapy for prostate cancer. This approach achieves a higher thermal enhancement ratio than in sequential application of radiation and hyperthermia and has the potential to decrease the overall treatment time.
The new applicator uses the principle of capacitively coupled electrodes. We performed a proof of concept experiment to demostrate the feasibility of the proposed applicator. Moreover, we used electromagnetic and thermal simulations to evaluate the power needs and temperature homogeneity in different tissues. Furthermore we investigated whether dynamic phase and amplitude adaptation can be used to improve longitudinal temperature control.
Simulations demonstrate that the electrodes achieve good temperature homogeneity in a homogenous phantom when following current applicator spacing guidelines. Furthermore, we demonstrate that by dynamic phase and amplitude adaptation provides a great advancement for further adaptability of the heating pattern.
This newly designed ThermoBrachy applicator has the potential to revise the interest in interstitial thermobrachytherapy, since the simultaneous application of radiation and hyperthermia enables maximum thermal enhancement and at maximum efficiency for patient and organization.
在高剂量率近距离放射治疗前列腺癌中,需要有一种新的方法来增加癌细胞的杀伤率,并与风险器官的稳定剂量相结合。在这项研究中,我们提出了一种新型的热近距离放射治疗适形器,它具有独特的能力,可以在同时进行间质高热治疗的同时,作为前列腺癌高剂量率近距离放射治疗的后装导管。这种方法比辐射和热疗的顺序应用具有更高的热增强比,并有可能降低整体治疗时间。
新的适形器使用电容耦合电极的原理。我们进行了一项概念验证实验,以证明所提出的适形器的可行性。此外,我们使用电磁和热模拟来评估不同组织中的功率需求和温度均匀性。此外,我们还研究了动态相位和幅度自适应是否可以用于改善纵向温度控制。
模拟结果表明,当遵循电流适形器间距指南时,电极在均匀模型中实现了良好的温度均匀性。此外,我们还证明了通过动态相位和幅度自适应可以为加热模式的进一步适应性提供很大的改进。
这种新设计的热近距离放射治疗适形器有可能重新引起人们对间质热近距离放射治疗的兴趣,因为辐射和热疗的同时应用可以实现最大的热增强和最大的患者和组织效率。