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用于放射治疗期间容积成像的 X 射线源阵列。

X-ray source arrays for volumetric imaging during radiotherapy treatment.

机构信息

Faculty of Medicine and Health, Image X Institute, University of Sydney, Sydney, 2015, Australia.

School of Health and Biomedical Sciences, Medical Imaging Facility, Royal Melbourne Institute of Technology, Melbourne, 3083, Australia.

出版信息

Sci Rep. 2023 Jun 16;13(1):9776. doi: 10.1038/s41598-023-36708-x.

Abstract

This work presents a novel hardware configuration for radiotherapy systems to enable fast 3D X-ray imaging before and during treatment delivery. Standard external beam radiotherapy linear accelerators (linacs) have a single X-ray source and detector located at ± 90° from the treatment beam respectively. The entire system can be rotated around the patient acquiring multiple 2D X-ray images to create a 3D cone-beam Computed Tomography (CBCT) image before treatment delivery to ensure the tumour and surrounding organs align with the treatment plan. Scanning with a single source is slow relative to patient respiration or breath holds and cannot be performed during treatment delivery, limiting treatment delivery accuracy in the presence of patient motion and excluding some patients from concentrated treatment plans that would be otherwise expected to have improved outcomes. This simulation study investigated whether recent advances in carbon nanotube (CNT) field emission source arrays, high frame rate (60 Hz) flat panel detectors and compressed sensing reconstruction algorithms could circumvent imaging limitations of current linacs. We investigated a novel hardware configuration incorporating source arrays and high frame rate detectors into an otherwise standard linac. We investigated four potential pre-treatment scan protocols that could be achieved in a 17 s breath hold or 2-10 1 s breath holds. Finally, we demonstrated for the first time volumetric X-ray imaging during treatment delivery by using source arrays, high frame rate detectors and compressed sensing. Image quality was assessed quantitatively over the CBCT geometric field of view as well as across each axis through the tumour centroid. Our results demonstrate that source array imaging enables larger volumes to be imaged with acquisitions as short as 1 s albeit with reduced image quality arising from lower photon flux and shorter imaging arcs.

摘要

这项工作提出了一种新的放射治疗系统硬件配置,能够在治疗过程中快速进行 3D X 射线成像。标准的外束放射治疗直线加速器(linac)分别在治疗束的±90°处具有单一的 X 射线源和探测器。整个系统可以围绕患者旋转,采集多个 2D X 射线图像,在治疗前创建 3D 锥形束计算机断层扫描(CBCT)图像,以确保肿瘤和周围器官与治疗计划对齐。与患者呼吸或屏气相比,使用单个源进行扫描速度较慢,并且在治疗过程中无法进行扫描,这限制了患者运动存在时的治疗准确性,并排除了一些本应预期获得改善结果的集中治疗计划的患者。这项模拟研究调查了最近在碳纳米管(CNT)场发射源阵列、高帧率(60 Hz)平板探测器和压缩感知重建算法方面的进展是否可以规避当前直线加速器的成像限制。我们研究了一种新的硬件配置,即将源阵列和高帧率探测器纳入标准直线加速器。我们研究了四种潜在的预治疗扫描方案,这些方案可以在 17 秒的屏气或 2-10 秒的屏气中完成。最后,我们首次展示了在使用源阵列、高帧率探测器和压缩感知的情况下,在治疗过程中进行容积 X 射线成像。通过 CBCT 几何视场以及通过肿瘤中心点的每个轴,对图像质量进行了定量评估。我们的结果表明,源阵列成像能够在 1 秒的采集时间内对更大的体积进行成像,尽管由于光子通量较低和成像弧较短,图像质量会降低。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5d74/10275902/b70c5b06ae1f/41598_2023_36708_Fig1_HTML.jpg

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