质子治疗研究束线在克里斯蒂NHS基金会信托。

IF 1.6 Q3 RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING
Nicholas T Henthorn, John-William Warmenhoven, Samuel P Ingram, Samuel P Manger, Michael J Merchant, Hywel Owen, Ranald I Mackay, Karen J Kirkby, Michael J Taylor
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引用次数: 0

摘要

质子治疗是一种相对较新的癌症治疗方式,有几个开放的研究问题,特别是在生物学领域。由于巨大的基础设施成本,该模式保留给专科治疗,限制了患者结果数据集。这需要通过体外和体内系统进行基础研究的补充。同样,新疗法(如FLASH)的安全性和潜在益处应在临床转化之前在实验室环境中进行验证。需要更多地获得临床相关研究平台。这项工作展示了曼彻斯特质子治疗研究设施的能力,以供实验者评估,以满足他们的研究目标。详细介绍了研究光束线几何形状,以及在自动样品处理环境室内进行体外样品辐照的工作流程。测量了质子研究束线的绝对剂量和剂量深度。提出了在能量和剂量率范围内的剂量校准,并对拟合进行了数学描述。将测量的或计划的剂量转换为样品剂量的方法包括用于研究质子范围效应的生物学研究。对影响光斑大小和场均匀性的光束光学元件进行了测量,用于样品辐照和光束模型的开发。建立了蒙特卡罗光束模型来预测物理上困难的测量,并与整个测量进行了比较。FLASH可实现的剂量率与绝对剂量学准确度一起呈现。在建立光束线方面,放射生物学研究是一个重点。特别注意开发高通量可重复的体外辐照工作流程,并与相邻的放射生物学实验室进行即时处理。这将减少文献中所见的实验不确定性,具有精确的剂量学、严格的环境控制和高度的通用性。在这项工作中呈现的基础设施是英国独特的设施。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The proton therapy research beamline at the Christie NHS foundation trust.

Proton therapy is a relatively new modality for cancer treatment and has several open research questions, particularly in the biological realm. Due to large infrastructure costs the modality is reserved for specialist treatment, limiting the patient outcome dataset. This requires supplementation with fundamental research throughin vitroandin vivosystems. Similarly, the safety and potential benefits of new treatments, such as FLASH, should be demonstrated in lab environments prior to clinical translation. Greater access to clinically relevant research platforms is required. This work presents the capabilities of the Manchester proton therapy research facility for experimentalists' assessment to meet their research goals. Details of the research beamline geometry are presented, along with workflows forin vitrosample irradiation within an automated sample handling environmental chamber. Absolute dose and dose depth of the proton research beamline was measured. The dose calibration across a range of energies and dose rates is presented and fits are mathematically described. Methods to convert measured, or planned, dose to sample dose are presented including for biological studies investigating end of proton range effects. Elements of the beam optics, impacting on spot size and therefore field homogeneity, were measured for sample irradiation and beam model development. A Monte Carlo beam model was established to predict physically difficult measurements and is compared to measurements throughout. Achievable dose rates for FLASH are presented alongside absolute dosimetric accuracy. There was a focus on radiobiological research in establishing the beamline. Special care was taken to develop high-throughput repeatablein vitroirradiation workflows, with an adjacent radiobiological lab for immediate processing. This will lead to a reduction in experimental uncertainties seen in the literature with demonstrated accurate dosimetry, tight environmental control, and a high degree of versatility. The infrastructure presented in this work is a unique facility in the UK.

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来源期刊
Biomedical Physics & Engineering Express
Biomedical Physics & Engineering Express RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING-
CiteScore
2.80
自引率
0.00%
发文量
153
期刊介绍: BPEX is an inclusive, international, multidisciplinary journal devoted to publishing new research on any application of physics and/or engineering in medicine and/or biology. Characterized by a broad geographical coverage and a fast-track peer-review process, relevant topics include all aspects of biophysics, medical physics and biomedical engineering. Papers that are almost entirely clinical or biological in their focus are not suitable. The journal has an emphasis on publishing interdisciplinary work and bringing research fields together, encompassing experimental, theoretical and computational work.
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