激光-康普顿x射线源扫描k边相减(SKES)成像。

IF 3.2 2区 医学 Q1 RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING
Medical physics Pub Date : 2025-01-28 DOI:10.1002/mp.17638
Trevor Reutershan, Christine V. Nguyen, Haytham H. Effarah, Eric C. Nelson, Kyle D. Chesnut, Christopher P. J. Barty
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引用次数: 0

摘要

背景:k边减法(KES)成像是一种双能成像技术,通过减去x射线拍摄的图像来增强对比度,x射线的图像高于和低于特定造影剂的k边能量。由此产生的重建在空间上识别造影剂积聚的位置,即使被人体组织的复杂和异质分布所掩盖。当x射线源是准单能量和可调谐时,这种方法是最成功的,传统上只有在同步加速器上才能满足这些条件。激光康普顿x射线源(LCSs)是一种紧凑的替代同步辐射与准单能量x射线光谱。使用lcs进行KES成像的临床应用的一个限制是需要大量的时间来调整x射线光谱到两种不同的能量。目的:我们介绍了一种称为扫描k边减影(SKES)的成像技术,该技术利用角度相关激光-康普顿x射线光谱在乳房x线摄影的设置中。将通过一系列的仿真研究来评估该技术的可行性和实用性。SKES成像的目标是使用激光-康普顿x射线源实现快速k边缘减影成像。该技术不依赖于调整激光-康普顿相互作用参数的耗时过程。方法:基于目前正在开发的x波段线性电子加速器架构,使用3D粒子跟踪软件和Mathematica相结合的方式对激光-康普顿相互作用物理进行建模。由此产生的角度相关激光-康普顿x射线束通过含有碘对比增强插入物的数字压缩乳房幻影传播,然后使用Matlab蒙特卡罗传播软件传播到数字平板探测器。这种扫描采集技术与直接能量调谐法(DET)以及临床可用的双能量对比增强乳房x线照相术(CEM)系统进行了比较。结果:使用LCS在扫描配置中进行KES成像能够产生与直接能量调谐方法相当质量的KES图像。SKES能够检测到碘造影剂浓度低于目前临床可用水平的肿瘤,包括通常被致密纤维腺组织掩盖的病变。在归一化到平均腺体剂量后,SKES仅使用3%的剂量就能生成与CEM具有相同对比度的KES图像。结论:利用LCSs提供的独特的准单色和角度相关x射线光谱,可以获得比常规系统对比度更高、剂量更小的对比度增强减影图像,提高致密乳腺组织患者的肿瘤检出率。该技术的扫描配置可以加速该技术的临床转化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Scanning K-edge subtraction (SKES) imaging with laser-compton x-ray sources

Scanning K-edge subtraction (SKES) imaging with laser-compton x-ray sources

Background

K-edge subtraction (KES) imaging is a dual-energy imaging technique that enhances contrast by subtracting images taken with x-rays that are above and below the K-edge energy of a specified contrast agent. The resulting reconstruction spatially identifies where the contrast agent accumulates, even when obscured by complex and heterogeneous distributions of human tissue. This method is most successful when x-ray sources are quasimonoenergetic and tunable, conditions that have traditionally only been met at synchrotrons. Laser-Compton x-ray sources (LCSs) are a compact alternative to synchrotron radiation with a quasimonoenergetic x-ray spectrum. One limitation in the clinical application of KES imaging with LCSs has been the extensive time required to tune the x-ray spectrum to two different energies.

Purpose

We introduce an imaging technique called scanning K-edge subtraction (SKES) that leverages the angle-correlated laser-Compton x-ray spectrum in the setting of mammography. The feasibility and utility of this technique will be evaluated through a series of simulation studies. The goal of SKES imaging is to enable rapid K-edge subtraction imaging using a laser-Compton x-ray source. The technique does not rely on the time-consuming process of tuning laser-Compton interaction parameters.

Methods

Laser-Compton interaction physics are modeled using conditions based on an X-band linear electron accelerator architecture currently under development using a combination of 3D particle tracking software and Mathematica. The resulting angle-correlated laser-Compton x-ray beam is propagated through digitally compressed breast phantoms containing iodine contrast-enhanced inserts and then to a digital flat-panel detector using a Matlab Monte Carlo propagation software. This scanning acquisition technique is compared to the direct energy tuning method (DET), as well as to a clinically available dual-energy contrast-enhanced mammography (CEM) system.

Results

KES imaging in a scanning configuration using an LCS was able to generate a KES image of comparable quality to the direct energy tuning method. SKES was able to detect tumors with iodine contrast concentrations lower than what is clinically available today including lesions that are typically obscured by dense fibroglandular tissue. After normalizing to mean glandular dose, SKES is able to generate a KES image with equal contrast to CEM using only 3% of the dose.

Conclusions

By leveraging the unique quasimonochromatic and angle-correlated x-ray spectrum offered by LCSs, a contrast-enhanced subtraction image can be obtained with significantly more contrast and less dose compared to conventional systems, and improve tumor detection in patients with dense breast tissue. The scanning configuration of this technique could accelerate the clinical translation of this technology.

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来源期刊
Medical physics
Medical physics 医学-核医学
CiteScore
6.80
自引率
15.80%
发文量
660
审稿时长
1.7 months
期刊介绍: Medical Physics publishes original, high impact physics, imaging science, and engineering research that advances patient diagnosis and therapy through contributions in 1) Basic science developments with high potential for clinical translation 2) Clinical applications of cutting edge engineering and physics innovations 3) Broadly applicable and innovative clinical physics developments Medical Physics is a journal of global scope and reach. By publishing in Medical Physics your research will reach an international, multidisciplinary audience including practicing medical physicists as well as physics- and engineering based translational scientists. We work closely with authors of promising articles to improve their quality.
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