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基于图像驱动和模型的磁共振引导放疗腹部三维运动估计

Image-driven, model-based 3D abdominal motion estimation for MR-guided radiotherapy.

作者信息

Stemkens Bjorn, Tijssen Rob H N, de Senneville Baudouin Denis, Lagendijk Jan J W, van den Berg Cornelis A T

机构信息

Department of Radiotherapy, University Medical Center Utrecht, Heidelberglaan 100, 3584 CX Utrecht, The Netherlands.

出版信息

Phys Med Biol. 2016 Jul 21;61(14):5335-55. doi: 10.1088/0031-9155/61/14/5335. Epub 2016 Jun 30.

Abstract

Respiratory motion introduces substantial uncertainties in abdominal radiotherapy for which traditionally large margins are used. The MR-Linac will open up the opportunity to acquire high resolution MR images just prior to radiation and during treatment. However, volumetric MRI time series are not able to characterize 3D tumor and organ-at-risk motion with sufficient temporal resolution. In this study we propose a method to estimate 3D deformation vector fields (DVFs) with high spatial and temporal resolution based on fast 2D imaging and a subject-specific motion model based on respiratory correlated MRI. In a pre-beam phase, a retrospectively sorted 4D-MRI is acquired, from which the motion is parameterized using a principal component analysis. This motion model is used in combination with fast 2D cine-MR images, which are acquired during radiation, to generate full field-of-view 3D DVFs with a temporal resolution of 476 ms. The geometrical accuracies of the input data (4D-MRI and 2D multi-slice acquisitions) and the fitting procedure were determined using an MR-compatible motion phantom and found to be 1.0-1.5 mm on average. The framework was tested on seven healthy volunteers for both the pancreas and the kidney. The calculated motion was independently validated using one of the 2D slices, with an average error of 1.45 mm. The calculated 3D DVFs can be used retrospectively for treatment simulations, plan evaluations, or to determine the accumulated dose for both the tumor and organs-at-risk on a subject-specific basis in MR-guided radiotherapy.

摘要

呼吸运动在腹部放射治疗中引入了很大的不确定性,传统上需要使用较大的边界。磁共振直线加速器(MR-Linac)将提供机会,在放疗前和治疗期间获取高分辨率的磁共振图像。然而,容积磁共振成像时间序列无法以足够的时间分辨率表征三维肿瘤和危及器官的运动。在本研究中,我们提出了一种基于快速二维成像和基于呼吸相关磁共振成像的个体运动模型,以高空间和时间分辨率估计三维变形矢量场(DVF)的方法。在束前阶段,采集回顾性排序的四维磁共振成像,通过主成分分析对运动进行参数化。该运动模型与放疗期间采集的快速二维电影磁共振图像相结合,生成时间分辨率为476毫秒的全场三维DVF。使用磁共振兼容运动体模确定输入数据(四维磁共振成像和二维多层采集)的几何精度和拟合程序,平均精度为1.0-1.5毫米。该框架在七名健康志愿者的胰腺和肾脏上进行了测试。使用其中一个二维切片对计算出的运动进行独立验证,平均误差为1.45毫米。计算出的三维DVF可用于回顾性治疗模拟、计划评估,或在磁共振引导放疗中基于个体确定肿瘤和危及器官的累积剂量。

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