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Technical Note: Experimental results from a prototype high-field inline MRI-linac

机译:技术说明:高磁场在线MRI直线加速器原型的实验结果

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摘要

© 2016 American Association of Physicists in Medicine. Purpose: The pursuit of real-time image guided radiotherapy using optimal tissue contrast has seen the development of several hybrid magnetic resonance imaging (MRI)-treatment systems, high field and low field, and inline and perpendicular configurations. As part of a new MRI-linac program, an MRI scanner was integrated with a linear accelerator to enable investigations of a coupled inline MRI-linac system. This work describes results from a prototype experimental system to demonstrate the feasibility of a high field inline MR-linac. Methods: The magnet is a 1.5 T MRI system (Sonata, Siemens Healthcare) was located in a purpose built radiofrequency (RF) cage enabling shielding from and close proximity to a linear accelerator with inline (and future perpendicular) orientation. A portable linear accelerator (Linatron, Varian) was installed together with a multileaf collimator (Millennium, Varian) to provide dynamic field collimation and the whole assembly built onto a stainless-steel rail system. A series of MRI-linac experiments was performed to investigate (1) image quality with beam on measured using a macropodine (kangaroo) ex vivo phantom; (2) the noise as a function of beam state measured using a 6-channel surface coil array; and (3) electron contamination effects measured using Gafchromic film and an electronic portal imaging device (EPID). Results: (1) Image quality was unaffected by the radiation beam with the macropodine phantom image with the beam on being almost identical to the image with the beam off. (2) Noise measured with a surface RF coil produced a 25% elevation of background intensity when the radiation beam was on. (3) Film and EPID measurements demonstrated electron focusing occurring along the centerline of the magnet axis. Conclusions: A proof-of-concept high-field MRI-linac has been built and experimentally characterized. This system has allowed us to establish the efficacy of a high field inline MRI-linac and study a number of the technical challenges and solutions.
机译:©2016美国医学物理学会。目的:追求使用最佳组织对比度的实时图像引导放射疗法已经看到了几种混合磁共振成像(MRI)处理系统,高场和低场以及直线和垂直配置的发展。作为新的MRI-linac程序的一部分,MRI扫描器与线性加速器集成在一起,从而能够研究耦合的串联MRI-linac系统。这项工作描述了原型实验系统的结果,以证明高场串联MR直线加速器的可行性。方法:磁体是一个1.5 T MRI系统(Sonata,Siemens Healthcare),位于一个专用的射频(RF)笼中,该屏蔽罩可以屏蔽并紧密靠近呈直线(和将来垂直)方向的线性加速器。安装了便携式线性加速器(Linatron,瓦里安)和多叶准直器(Millennium,瓦里安),以提供动态场准直,并将整个组件安装在不锈钢导轨系统上。进行了一系列的MRI-直线加速器实验,以研究(1)使用巨足类(袋鼠)离体体模对光束进行成像时的图像质量; (2)使用6通道表面线圈阵列测得的噪声与光束状态的关系; (3)使用Gafchromic胶片和电子门禁成像设备(EPID)测量的电子污染效应。结果:(1)巨光束幻影图像的辐射束与关闭时的图像几乎相同,而辐射束的图像质量不受影响。 (2)当辐射束打开时,使用表面RF线圈测量的噪声会使背景强度提高25%。 (3)薄膜和EPID测量表明,电子聚焦沿磁轴的中心线发生。结论:建立了概念验证的高场MRI直线加速器,并进行了实验表征。该系统使我们能够确定高场在线MRI直线加速器的功效,并研究了许多技术挑战和解决方案。

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