Suppr超能文献

高分辨率和高灵敏度 PET 用于单胺能核的定量分子成像:GATE 模拟研究。

High-resolution and high-sensitivity PET for quantitative molecular imaging of the monoaminergic nuclei: A GATE simulation study.

机构信息

Department of Biomedical Engineering, College of Engineering and Applied Sciences, Stony Brook University, Stony Brook, New York, USA.

Department of Electrical and Computer Engineering, College of Engineering and Applied Sciences, Stony Brook University, Stony Brook, New York, USA.

出版信息

Med Phys. 2022 Jul;49(7):4430-4444. doi: 10.1002/mp.15653. Epub 2022 May 15.

Abstract

PURPOSE

Quantitative in vivo molecular imaging of fine brain structures requires high-spatial resolution and high-sensitivity. Positron emission tomography (PET) is an attractive candidate to introduce molecular imaging into standard clinical care due to its highly targeted and versatile imaging capabilities based on the radiotracer being used. However, PET suffers from relatively poor spatial resolution compared to other clinical imaging modalities, which limits its ability to accurately quantify radiotracer uptake in brain regions and nuclei smaller than 3 mm in diameter. Here we introduce a new practical and cost-effective high-resolution and high-sensitivity brain-dedicated PET scanner, using our depth-encoding Prism-PET detector modules arranged in a conformal decagon geometry, to substantially reduce the partial volume effect and enable accurate radiotracer uptake quantification in small subcortical nuclei.

METHODS

Two Prism-PET brain scanner setups were proposed based on our 4-to-1 and 9-to-1 coupling of scintillators to readout pixels using  mm and  mm crystal columns, respectively. Monte Carlo simulations of our Prism-PET scanners, Siemens Biograph Vision, and United Imaging EXPLORER were performed using Geant4 application for tomographic emission (GATE). National Electrical Manufacturers Association (NEMA) standard was followed for the evaluation of spatial resolution, sensitivity, and count-rate performance. An ultra-micro hot spot phantom was simulated for assessing image quality. A modified Zubal brain phantom was utilized for radiotracer imaging simulations of 5-HT receptors, which are abundant in the raphe nuclei (RN), and norepinephrine transporters, which are highly concentrated in the bilateral locus coeruleus (LC).

RESULTS

The Prism-PET brain scanner with 1.5 mm crystals is superior to that with 1 mm crystals as the former offers better depth-of-interaction (DOI) resolution, which is key to realizing compact and conformal PET scanner geometries. We achieved uniform 1.3 mm full-width-at-half-maximum (FWHM) spatial resolutions across the entire transaxial field-of-view (FOV), a NEMA sensitivity of 52.1 kcps/MBq, and a peak noise equivalent count rate (NECR) of 957.8 kcps at 25.2 kBq/mL using 450-650 keV energy window. Hot spot phantom results demonstrate that our scanner can resolve regions as small as 1.35 mm in diameter at both center and 10 cm away from the center of the transaixal FOV. Both 5-HT receptor and norepinephrine transporter brain simulations prove that our Prism-PET scanner enables accurate quantification of radiotracer uptake in small brain regions, with a 1.8-fold and 2.6-fold improvement in the dorsal RN as well as a 3.2-fold and 4.4-fold improvement in the bilateral LC compared to the Biograph Vision and EXPLORER, respectively.

CONCLUSIONS

Based on our simulation results, the proposed high-resolution and high-sensitivity Prism-PET brain scanner is a promising cost-effective candidate to achieve quantitative molecular neuroimaging of small but important brain regions with PET clinically viable.

摘要

目的

定量活体脑部微观结构的分子成像需要高空间分辨率和高灵敏度。正电子发射断层扫描(PET)是一种有吸引力的候选方法,可以将分子成像引入标准临床护理中,因为它基于使用的放射性示踪剂具有高度靶向和多功能的成像能力。然而,与其他临床成像模式相比,PET 的空间分辨率相对较差,这限制了其在直径小于 3 毫米的脑区和核内准确量化放射性示踪剂摄取的能力。在这里,我们引入了一种新的实用且具有成本效益的高分辨率和高灵敏度的专用脑部 PET 扫描仪,使用我们的深度编码棱镜-PET 探测器模块以共形十边形几何形状排列,以大大减少部分容积效应,并实现小皮质下核内放射性示踪剂摄取的准确量化。

方法

根据我们对闪烁体的 4 对 1 和 9 对 1 的耦合,提出了两种基于棱镜-PET 脑部扫描仪的设置,分别使用 mm 和 mm 晶体柱来读取像素。使用 Geant4 应用程序进行断层发射(GATE)对我们的棱镜-PET 扫描仪、西门子 Biograph Vision 和联合成像 EXPLORER 进行了蒙特卡罗模拟。遵循国家电器制造商协会(NEMA)标准来评估空间分辨率、灵敏度和计数率性能。模拟了一个超微热点体模,用于评估图像质量。使用改良的 Zubal 脑体模模拟了 5-羟色胺受体的放射性示踪剂成像,5-羟色胺受体在中缝核(RN)中丰富,去甲肾上腺素转运体在双侧蓝斑核(LC)中高度集中。

结果

具有 1.5 mm 晶体的棱镜-PET 脑部扫描仪优于具有 1 mm 晶体的扫描仪,因为前者提供了更好的深度-交互(DOI)分辨率,这是实现紧凑和共形 PET 扫描仪几何形状的关键。我们在整个横向视野(FOV)中实现了均匀的 1.3 毫米全宽半最大值(FWHM)空间分辨率、52.1 kcps/MBq 的 NEMA 灵敏度和 25.2 kBq/mL 时 957.8 kcps 的峰值噪声等效计数率(NECR)。热点体模结果表明,我们的扫描仪可以在横向 FOV 的中心和距中心 10 厘米处分辨直径小至 1.35 毫米的区域。5-羟色胺受体和去甲肾上腺素转运体的脑模拟都证明,我们的棱镜-PET 扫描仪能够准确量化小脑区的放射性示踪剂摄取,与 Biograph Vision 和 EXPLORER 相比,背侧 RN 增加了 1.8 倍和 2.6 倍,双侧 LC 增加了 3.2 倍和 4.4 倍。

结论

根据我们的模拟结果,所提出的高分辨率和高灵敏度棱镜-PET 脑部扫描仪是一种很有前途的具有成本效益的候选方法,可以在临床上可行的 PET 中实现对小但重要的脑区进行定量分子神经成像。

相似文献

引用本文的文献

本文引用的文献

3
State of the art in total body PET.全身正电子发射断层扫描(PET)的技术现状
EJNMMI Phys. 2020 May 25;7(1):35. doi: 10.1186/s40658-020-00290-2.

文献检索

告别复杂PubMed语法,用中文像聊天一样搜索,搜遍4000万医学文献。AI智能推荐,让科研检索更轻松。

立即免费搜索

文件翻译

保留排版,准确专业,支持PDF/Word/PPT等文件格式,支持 12+语言互译。

免费翻译文档

深度研究

AI帮你快速写综述,25分钟生成高质量综述,智能提取关键信息,辅助科研写作。

立即免费体验