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用于粒子束治疗的加速器、龙门架、磁体和成像系统:最新现状与改进前景

Accelerators, Gantries, Magnets and Imaging Systems for Particle Beam Therapy: Recent Status and Prospects for Improvement.

作者信息

Collings Edward W, Lu Lanchun, Gupta Nilendu, Sumption Mike D

机构信息

Department of Materials Science and Engineering, College of Engineering, The Ohio State University, Columbus, OH, United States.

Department of Radiation Oncology, The James Cancer Hospital and Solove Research Institute, Wexner Medical Center and College of Medicine at the Ohio State University, Columbus, OH, United States.

出版信息

Front Oncol. 2022 Feb 15;11:737837. doi: 10.3389/fonc.2021.737837. eCollection 2021.

Abstract

The paper begins by emphasizing the clinical and commercial importance of proton or other charged particle such as carbon ion therapy, refers to the manufacturers of such systems of which more than 120 are installed or under construction worldwide by April 2021. A general review of charged particle therapy systems refers to six manufacturers and provides in tabular form some details of systems installed in the US, Europe, Asia, and elsewhere. In a description of the principles of particle beam therapy a comparison is made of the properties of photons (x-rays) versus protons and protons versus carbon ions. A brief discussion of accelerators in general is followed by descriptions of cyclotrons (including the isosynchronous cyclotron and the synchrocyclotron) and synchrotrons. An interesting case study describes the evolution of a normal-conducting 220 ton cyclotron into an iron-free synchrocyclotron weighing only 5 tons. The general principles of beam handling and gantry design are described. Subsequent sections describe gantry magnets in detail - normal conducting gantry magnets, superconducting gantry magnets for proton- and carbon therapy. Mention is made of a novel CERN-designed superconducting toroidal gantry for hadron therapy, GaToroid. This device, operating under steady state current and magnetic field, is able to deliver a beam at discrete angles over a range of treatment energies. Also considered are low temperature superconducting (LTS) and high temperature superconducting (HTS) magnet windings, and the choice of REBCO conductors for cryogen-free carbon-ion gantries. Finally, the paper mentions an important "Prospect for Improvement", viz: the introduction of MRI image guidance. A well-known property of the particle beam as it passes through tissue is its energy dependent absorption that rises to a pronounced peak (the Bragg peak) at the end of its range. In order to take advantage of this effect the exact targeting of the tumor and positioning of the patient should be guided by imaging visualization using X-ray, CT, and hopefully advanced MRI. Unlike MRI-guided photon therapy the direct interaction of the magnetic field with the charged particle beam presents a huge challenge such that MRI image-guided proton/particle therapy has not yet been available in clinical practice. Modeling studies have been undertaken on the general topic of beam-line/magnetic field interaction using, for example, the software GEANT4 (GEometry And Tracking) a platform for simulating the passage of charged particles through matter using a Monte Carlo method.

摘要

本文开篇强调了质子或其他带电粒子(如碳离子疗法)的临床和商业重要性,提及了此类系统的制造商,截至2021年4月,全球已有120多个此类系统已安装或正在建设中。对带电粒子治疗系统的总体回顾涉及六家制造商,并以表格形式提供了美国、欧洲、亚洲和其他地区已安装系统的一些详细信息。在描述粒子束治疗原理时,对光子(X射线)与质子以及质子与碳离子的特性进行了比较。在对加速器进行简要讨论之后,介绍了回旋加速器(包括等时性回旋加速器和同步回旋加速器)和同步加速器。一个有趣的案例研究描述了一台重达220吨的常规导电回旋加速器如何演变成一台仅重5吨的无铁同步回旋加速器。描述了束流处理和机架设计的一般原则。随后的章节详细描述了机架磁铁——用于质子和碳治疗的常规导电机架磁铁、超导机架磁铁。提到了欧洲核子研究组织(CERN)设计的一种用于强子治疗的新型超导环形机架GaToroid。该设备在稳态电流和磁场下运行,能够在一系列治疗能量下以离散角度输送束流。还讨论了低温超导(LTS)和高温超导(HTS)磁体绕组,以及用于无低温制冷剂碳离子机架的稀土钡铜氧(REBCO)导体的选择。最后,本文提到了一个重要的“改进前景”,即:引入磁共振成像(MRI)图像引导。粒子束穿过组织时的一个众所周知的特性是其能量依赖性吸收,在射程末端会上升到一个明显的峰值(布拉格峰)。为了利用这一效应,肿瘤的精确靶向和患者的定位应由使用X射线、CT以及有望使用先进的MRI的成像可视化来引导。与MRI引导的光子治疗不同,磁场与带电粒子束的直接相互作用带来了巨大挑战,以至于MRI图像引导的质子/粒子治疗尚未在临床实践中应用。已经针对束线/磁场相互作用这一总体主题进行了建模研究,例如使用软件GEANT4(几何与跟踪),这是一个使用蒙特卡罗方法模拟带电粒子穿过物质过程的平台。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f0a6/8885994/9364cd018350/fonc-11-737837-g001.jpg

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