Mohajer Jonathan Kim, Nisbet Andrew, Velliou Eirini, Ajaz Mazhar, Schettino Giuseppe
1 Department of Physics, University of Surrey , Guildford , UK.
2 Medical Radiation Science group, National Physical Laboratory , Teddington , UK.
Br J Radiol. 2019 Feb;92(1094):20180484. doi: 10.1259/bjr.20180484. Epub 2018 Oct 31.
The clinical introduction of MRI-guided radiotherapy has prompted consideration of the potential impact of the static magnetic field on biological responses to radiation. This review provides an introduction to the mechanisms of biological interaction of radiation and magnetic fields individually, in addition to a description of the magnetic field effects on megavoltage photon beams at the macroscale, microscale and nanoscale arising from the Lorentz force on secondary charged particles. A relatively small number of scientific studies have measured the impact of combined static magnetic fields and ionising radiation on biological endpoints of relevance to radiotherapy. Approximately, half of these investigations found that static magnetic fields in combination with ionising radiation produced a significantly different outcome compared with ionising radiation alone. strength static magnetic fields appear to modestly influence the radiation response via a mechanism distinct from modification to the dose distribution. This review intends to serve as a reference for future biological studies, such that understanding of static magnetic field plus ionising radiation synergism may be improved, and if necessary, accounted for in MRI-guided radiotherapy treatment planning.
磁共振成像引导放射治疗的临床应用促使人们考虑静磁场对辐射生物反应的潜在影响。本综述除了描述宏观、微观和纳米尺度上洛伦兹力对二次带电粒子产生的静磁场对兆伏光子束的影响外,还分别介绍了辐射与磁场的生物相互作用机制。相对较少的科学研究测量了静磁场和电离辐射联合作用对放射治疗相关生物终点的影响。其中大约一半的研究发现,与单独的电离辐射相比,静磁场与电离辐射联合作用产生了显著不同的结果。静磁场强度似乎通过一种不同于剂量分布改变的机制适度影响辐射反应。本综述旨在为未来的生物学研究提供参考,以便更好地理解静磁场加电离辐射的协同作用,如有必要,在磁共振成像引导放射治疗的治疗计划中加以考虑。