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质子治疗物理与生物学路线图

Roadmap: proton therapy physics and biology.

机构信息

Department of Radiation Oncology, Massachusetts General Hospital, Boston, United States of America.

Department of Radiation Oncology, Harvard Medical School, Boston, United States of America.

出版信息

Phys Med Biol. 2021 Feb 26;66(5). doi: 10.1088/1361-6560/abcd16.

Abstract

The treatment of cancer with proton radiation therapy was first suggested in 1946 followed by the first treatments in the 1950s. As of 2020, almost 200 000 patients have been treated with proton beams worldwide and the number of operating proton therapy (PT) facilities will soon reach one hundred. PT has long moved from research institutions into hospital-based facilities that are increasingly being utilized with workflows similar to conventional radiation therapy. While PT has become mainstream and has established itself as a treatment option for many cancers, it is still an area of active research for various reasons: the advanced dose shaping capabilities of PT cause susceptibility to uncertainties, the high degrees of freedom in dose delivery offer room for further improvements, the limited experience and understanding of optimizing pencil beam scanning, and the biological effect difference compared to photon radiation. In addition to these challenges and opportunities currently being investigated, there is an economic aspect because PT treatments are, on average, still more expensive compared to conventional photon based treatment options. This roadmap highlights the current state and future direction in PT categorized into four different themes, 'improving efficiency', 'improving planning and delivery', 'improving imaging', and 'improving patient selection'.

摘要

质子放射疗法治疗癌症的想法最早于 1946 年提出,首次治疗则在 20 世纪 50 年代。截至 2020 年,全世界已有近 20 万名患者接受了质子束治疗,运营质子治疗(PT)设施的数量也即将达到 100 个。PT 早已从研究机构发展为基于医院的设施,其治疗流程与传统放射疗法越来越相似,应用也越来越广泛。尽管 PT 已成为主流,并已确立为许多癌症的治疗选择,但由于以下原因,它仍是一个活跃的研究领域:PT 先进的剂量成型能力导致对不确定性敏感、剂量输送的高度自由度为进一步改进提供了空间、笔形束扫描的优化经验有限且理解有限,以及与光子辐射相比的生物学效应差异。除了目前正在研究的这些挑战和机遇外,还有一个经济方面的原因,因为与传统的基于光子的治疗方案相比,PT 治疗的费用平均仍然更高。本路线图将质子治疗的现状和未来方向分为四个不同主题,分别是“提高效率”、“改善计划和交付”、“改善成像”和“改善患者选择”。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/26f5/9275016/e39c1902e359/nihms-1818356-f0001.jpg

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