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FLASH质子治疗的技术挑战。

Technical challenges for FLASH proton therapy.

作者信息

Jolly Simon, Owen Hywel, Schippers Marco, Welsch Carsten

机构信息

University College London, United Kingdom.

Cockcroft Institute of Accelerator Science and Technology, United Kingdom; University of Manchester, United Kingdom.

出版信息

Phys Med. 2020 Oct;78:71-82. doi: 10.1016/j.ejmp.2020.08.005. Epub 2020 Sep 15.

DOI:10.1016/j.ejmp.2020.08.005
PMID:32947086
Abstract

There is growing interest in the radiotherapy community in the application of FLASH radiotherapy, wherein the dose is delivered to the entire treatment volume in less than a second. Early pre-clinical evidence suggests that these extremely high dose rates provide significant sparing of healthy tissue compared to conventional radiotherapy without reducing the damage to cancerous cells. This interest has been reflected in the proton therapy community, with early tests indicating that the FLASH effect is also present with high dose rate proton irradiation. In order to deliver clinically relevant doses at FLASH dose rates significant technical hurdles must be overcome in the accelerator technology before FLASH proton therapy can be realised. Of these challenges, increasing the average current from the present clinical range of 1-10 nA to in excess of 100 nA is at least feasible with existing technology, while the necessity for rapid energy adjustment on the order of a few milliseconds is much more challenging, particularly for synchrotron-based systems. However, the greatest challenge is to implement full pencil beam scanning, where scanning speeds 2 orders of magnitude faster than the existing state-of-the-art will be necessary, along with similar improvements in the speed and accuracy of associated dosimetry. Hybrid systems utilising 3D-printed patient specific range modulators present the most likely route to clinical delivery. However, to correctly adapt and develop existing technology to meet the challenges of FLASH, more pre-clinical studies are needed to properly establish the beam parameters that are necessary to produce the FLASH effect.

摘要

放射治疗界对FLASH放射治疗的应用兴趣日益浓厚,在这种治疗中,剂量在不到一秒的时间内传递到整个治疗体积。早期临床前证据表明,与传统放射治疗相比,这些极高的剂量率能显著减少健康组织的受照剂量,同时不降低对癌细胞的损伤。这种兴趣也反映在质子治疗领域,早期测试表明高剂量率质子照射也存在FLASH效应。为了在FLASH剂量率下提供临床相关剂量,在实现FLASH质子治疗之前,加速器技术必须克服重大技术障碍。在这些挑战中,将平均电流从目前临床范围的1 - 10 nA提高到超过100 nA,利用现有技术至少是可行的,而在几毫秒量级上进行快速能量调整的必要性则更具挑战性,特别是对于基于同步加速器的系统。然而,最大的挑战是实现全笔形束扫描,这需要扫描速度比现有最先进技术快2个数量级,同时相关剂量测定的速度和准确性也需要有类似的提高。利用3D打印的患者特异性射程调制器的混合系统是实现临床应用最有可能的途径。然而,为了正确调整和开发现有技术以应对FLASH的挑战,需要更多的临床前研究来正确确定产生FLASH效应所需的束流参数。

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