蒙地卡罗在 FLASH 效应机理建模中的应用:综述。

IF 3.3 3区 医学 Q2 ENGINEERING, BIOMEDICAL
Gavin Pikes, Joshua Dass, Suki Gill, Martin Ebert, Mark Reynolds, Pejman Rowshanfarzad
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引用次数: 0

摘要

FLASH放疗采用bbb40 Gy/s的超高剂量率,与常规剂量率治疗相比,可以减少正常组织并发症,同时仍然确保相同水平的肿瘤控制。这可能给患者带来的潜在好处已经引起了放射肿瘤学界的极大兴趣,但这还没有转化为对FLASH效应的直接理解。氧消耗和轨道间相互作用假说是目前对FLASH背后机制的主要解释,但这些仍然没有得到很好的理解,关于FLASH的确切基础和最佳诱导所需的治疗参数仍然存在许多问题。蒙特卡罗模拟可能是解开FLASH背后奥秘的关键,允许在基本层面上分析基础机制,其中可以研究单个辐射粒子,DNA链和化学物质之间的相互作用。然而,目前,在模拟结果和它们所支持的不同机制的重要性方面仍然存在很大的分歧。这篇综述讨论了目前使用蒙特卡罗方法对FLASH机制的研究。给出了所有主要研究的模拟参数和结果。讨论主要围绕氧气消耗和轨道间相互作用假设,尽管也提到了其他更新颖的理论。根据所讨论的文章,提供了未来模拟的一般建议列表。这篇评论强调了一些有用的参数和模拟方法,可能需要最终理解FLASH效果。 。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Monte Carlo in the mechanistic modelling of the FLASH effect: a review.

FLASH radiotherapy employs ultra-high dose rates of>40Gy s-1, which may reduce normal tissue complication as compared to conventional dose rate treatments, while still ensuring the same level of tumour control. The potential benefit this can offer to patients has been the cause of great interest within the radiation oncology community, but this has not translated to a direct understanding of the FLASH effect. The oxygen depletion and inter-track interaction hypotheses are currently the leading explanations as to the mechanisms behind FLASH, but these are still not well understood, with many questions remaining about the exact underpinnings of FLASH and the treatment parameters required to optimally induce it. Monte Carlo simulations may hold the key to unlocking the mystery behind FLASH, allowing for analysis of the underpinning mechanisms at a fundamental level, where the interactions between individual radiation particles, DNA strands and chemical species can be studied. Currently, however, there is still a great deal of disagreement in simulation findings and the importance of the different mechanisms they support. This review discusses current studies into the mechanisms of FLASH using the Monte Carlo method. The simulation parameters and results for all major investigations are provided. Discussion primarily revolves around the oxygen depletion and inter-track interactions hypotheses, though other, more novel, theories are also mentioned. A general list of recommendations for future simulations is provided, informed by the articles discussed. This review highlights some of the useful parameters and simulation methodologies that may be required to finally understand the FLASH effect.

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来源期刊
Physics in medicine and biology
Physics in medicine and biology 医学-工程:生物医学
CiteScore
6.50
自引率
14.30%
发文量
409
审稿时长
2 months
期刊介绍: The development and application of theoretical, computational and experimental physics to medicine, physiology and biology. Topics covered are: therapy physics (including ionizing and non-ionizing radiation); biomedical imaging (e.g. x-ray, magnetic resonance, ultrasound, optical and nuclear imaging); image-guided interventions; image reconstruction and analysis (including kinetic modelling); artificial intelligence in biomedical physics and analysis; nanoparticles in imaging and therapy; radiobiology; radiation protection and patient dose monitoring; radiation dosimetry
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