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使用大面积像素化 CZT 模块评估可变孔径全环 SPECT 系统:脑 SPECT 应用的模拟研究。

Evaluation of a variable-aperture full-ring SPECT system using large-area pixelated CZT modules: A simulation study for brain SPECT applications.

机构信息

Department of Radiology and Biomedical Imaging, University of California, San Francisco, CA, USA.

Department of Nonproliferation and National Security, Brookhaven National Laboratory, Upton, NY, USA.

出版信息

Med Phys. 2021 May;48(5):2301-2314. doi: 10.1002/mp.14836. Epub 2021 Mar 30.

Abstract

PURPOSE

Single photon emission computed tomography (SPECT) scanners using cadmium zinc telluride (CZT) offer compact, lightweight, and improved imaging capability over conventional NaI(Tl)-based SPECT scanners. The main purpose in this study is to propose a full-ring SPECT system design with eight large-area CZT detectors that can be used for a broad spectrum of SPECT radiopharmaceuticals and demonstrate the performance of our system in comparison to the reference conventional NaI(Tl)-based two-head Anger cameras.

METHODS

A newly designed full-ring SPECT system is composed of eight large-area CZT cameras (128 mm × 179.2 mm effective area) that can be independently swiveled around their own axes of rotation independently and can have radial motion for varying aperture sizes that can be adapted to different sizes of imaging volume. Extended projection data were generated by conjoining projections of two adjacent detectors to overcome the limited field-of-view (FOV) by each CZT camera. Using Monte Carlo simulations, we evaluated this new system design with digital phantoms including a Derenzo hot rod phantom and a Zubal brain phantom. Comparison of performance metrics such as spatial resolution, sensitivity, contrast-to-noise ratio (CNR), and contrast-recovery ratio was made between our design and conventional SPECT scanners having different pixel sizes and radii of rotation (one clinically well-known type and two arbitrary types matched to our proposed CZT-SPECT geometries).

RESULTS

The proposed scanner could result in up to about three times faster in acquisition time over conventional scan time at same acquisition time per step. The spatial resolution improvement, or deterioration, of our proposed scanner compared to the clinical-type scanner was dependent upon the location of the point source. However, there were overall performance improvements over the three different setups of the conventional scanner particularly in volume sensitivity (approximately up to 1.7 times). Overall, we successfully reconstructed the phantom image for both Tc-based perfusion and I-based dopamine transporter (DaT) brain studies simulated for our new design. In particular, the striatal/background contrast-recovery ratio in 3-to-1 reference ratio was over 0.8 for the I-based DaT study.

CONCLUSIONS

We proposed a variable-aperture full-ring SPECT system using combined pixelated CZT and energy-optimized parallel-hole collimator modules and evaluated the performance of this scanner using relevant digital phantoms and MC simulations. Our studies demonstrated the potential of our new full-ring CZT-SPECT design, showing reduced acquisition time and improved sensitivity with acceptable CNR and spatial resolution.

摘要

目的

基于碲锌镉(CZT)的单光子发射计算机断层扫描(SPECT)扫描仪比传统的基于碘化钠(Tl)的 SPECT 扫描仪具有更紧凑、更轻量、成像能力更强的特点。本研究的主要目的是提出一种具有 8 个大面积 CZT 探测器的全环 SPECT 系统设计,该系统可用于广泛的 SPECT 放射性药物,并展示我们的系统与参考传统的基于 NaI(Tl)的双头 Anger 相机相比的性能。

方法

新设计的全环 SPECT 系统由 8 个大面积 CZT 相机(有效面积 128mm×179.2mm)组成,这些相机可以独立绕自身旋转轴旋转,并可以径向运动,以适应不同的成像体积孔径大小。通过连接两个相邻探测器的投影,扩展了投影数据,以克服每个 CZT 相机的有限视场(FOV)。使用蒙特卡罗模拟,我们对包括 Derenzo 热棒体模和 Zubal 脑体模在内的数字体模进行了这种新系统设计的评估。我们在不同像素大小和旋转半径(一种临床熟知的类型和两种与我们提出的 CZT-SPECT 几何形状匹配的任意类型)的传统 SPECT 扫描仪之间比较了性能指标,如空间分辨率、灵敏度、对比噪声比(CNR)和对比恢复比。

结果

与传统扫描时间相比,在相同的每步采集时间内,建议的扫描仪可以将采集时间缩短约 3 倍。与临床型扫描仪相比,我们提出的扫描仪的空间分辨率提高或降低取决于点源的位置。然而,特别是在体积灵敏度方面,与三种不同设置的传统扫描仪相比,整体性能都有所提高(大约提高了 1.7 倍)。总的来说,我们成功地重建了模拟我们新设计的 Tc 灌注和 I 多巴胺转运体(DaT)脑研究的体模图像。特别是,在 3 到 1 的参考比值下,I 基 DaT 研究的纹状体/背景对比恢复比值超过 0.8。

结论

我们提出了一种使用组合像素化 CZT 和能量优化的平行孔准直器模块的可变孔径全环 SPECT 系统,并使用相关的数字体模和 MC 模拟评估了该扫描仪的性能。我们的研究表明了我们新的全环 CZT-SPECT 设计的潜力,显示出缩短采集时间和提高灵敏度,同时保持可接受的 CNR 和空间分辨率。

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