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超高剂量率剂量学:FLASH 放射治疗的挑战与机遇。

Ultra-high dose rate dosimetry: Challenges and opportunities for FLASH radiation therapy.

机构信息

Istituto Nazionale di Fisica Nucleare, Sezione di Catania, Catania, Italy.

Institute of Radiation Physics, Lausanne University Hospital Lausanne University, Lausanne, Switzerland.

出版信息

Med Phys. 2022 Jul;49(7):4912-4932. doi: 10.1002/mp.15649. Epub 2022 May 7.

Abstract

The clinical translation of FLASH radiotherapy (RT) requires challenges related to dosimetry and beam monitoring of ultra-high dose rate (UHDR) beams to be addressed. Detectors currently in use suffer from saturation effects under UHDR regimes, requiring the introduction of correction factors. There is significant interest from the scientific community to identify the most reliable solutions and suitable experimental approaches for UHDR dosimetry. This interest is manifested through the increasing number of national and international projects recently proposed concerning UHDR dosimetry. Attaining the desired solutions and approaches requires further optimization of already established technologies as well as the investigation of novel radiation detection and dosimetry methods. New knowledge will also emerge to fill the gap in terms of validated protocols, assessing new dosimetric procedures and standardized methods. In this paper, we discuss the main challenges coming from the peculiar beam parameters characterizing UHDR beams for FLASH RT. These challenges vary considerably depending on the accelerator type and technique used to produce the relevant UHDR radiation environment. We also introduce some general considerations on how the different time structure in the production of the radiation beams, as well as the dose and dose-rate per pulse, can affect the detector response. Finally, we discuss the requirements that must characterize any proposed dosimeters for use in UDHR radiation environments. A detailed status of the current technology is provided, with the aim of discussing the detector features and their performance characteristics and/or limitations in UHDR regimes. We report on further developments for established detectors and novel approaches currently under investigation with a view to predict future directions in terms of dosimetry approaches, practical procedures, and protocols. Due to several on-going detector and dosimetry developments associated with UHDR radiation environment for FLASH RT it is not possible to provide a simple list of recommendations for the most suitable detectors for FLASH RT dosimetry. However, this article does provide the reader with a detailed description of the most up-to-date dosimetric approaches, and describes the behavior of the detectors operated under UHDR irradiation conditions and offers expert discussion on the current challenges which we believe are important and still need to be addressed in the clinical translation of FLASH RT.

摘要

FLASH 放疗(RT)的临床转化需要解决与超高剂量率(UHDR)束剂量学和束监测相关的挑战。目前使用的探测器在 UHDR 辐射下会出现饱和效应,需要引入校正因子。科学界对确定最可靠的 UHDR 剂量学解决方案和合适的实验方法非常感兴趣。这一兴趣体现在最近提出的越来越多的关于 UHDR 剂量学的国家和国际项目中。为了实现期望的解决方案和方法,需要进一步优化已经建立的技术,并研究新的辐射探测和剂量学方法。新的知识也将出现,以填补经过验证的协议、评估新的剂量学程序和标准化方法方面的空白。在本文中,我们讨论了 FLASH RT 中 UHDR 束的独特束参数带来的主要挑战。这些挑战因用于产生相关 UHDR 辐射环境的加速器类型和技术而有很大差异。我们还介绍了一些关于不同辐射束产生的时间结构以及每个脉冲的剂量和剂量率如何影响探测器响应的一般考虑因素。最后,我们讨论了任何用于 UDHR 辐射环境的剂量计必须具备的要求。提供了当前技术的详细现状,旨在讨论探测器的特性及其在 UHDR 辐射下的性能特征和/或局限性。我们报告了现有探测器的进一步发展和目前正在研究的新方法,以期在剂量学方法、实际程序和协议方面预测未来的方向。由于与 FLASH RT 的 UHDR 辐射环境相关的几个正在进行的探测器和剂量学发展,不可能为 FLASH RT 剂量学提供最适合的探测器的简单建议列表。然而,本文确实为读者提供了最新剂量学方法的详细描述,描述了在 UHDR 辐照条件下运行的探测器的行为,并就我们认为重要且仍需要在 FLASH RT 的临床转化中解决的当前挑战进行了专家讨论。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4aa4/9544810/41a8c218a4f9/MP-49-4912-g001.jpg

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