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PETcoil:第二代适用于同时 PET/MRI 的可穿透射频的 TOF-PET 脑插入式探头的初步结果。

PETcoil: first results from a second-generation RF-penetrable TOF-PET brain insert for simultaneous PET/MRI.

机构信息

Molecular Imaging Instrumentation Laboratory, Department of Radiology, Stanford University, Stanford, CA, United States of America.

出版信息

Phys Med Biol. 2024 Sep 9;69(18). doi: 10.1088/1361-6560/ad7221.

Abstract

Simultaneous positron emission tomography (PET)/magnetic resonance imaging provides concurrent information about anatomic, functional, and molecular changes in disease. We are developing a second generation MR-compatible RF-penetrable TOF-PET insert. The insert has a smaller scintillation crystal size and ring diameter compared to clinical whole-body PET scanners, resulting in higher spatial resolution and sensitivity. This paper reports the initial system performance of this full-ring PET insert. The global photopeak energy resolution and global coincidence time resolution, 11.74 ± 0.03 % FWHM and 238.1 ± 0.5 ps FWHM, respectively, are preserved as we scaled up the system to a full ring comprising 12, 288 LYSO-SiPM channels (crystal size: 3.2 × 3.2 × 20 mm). Throughout a ten-hour experiment, the system performance remained stable, exhibiting a less than 1% change in all measured parameters. In a resolution phantom study, the system successfully resolved all 2.8 mm diameter rods, achieving an average VPR of 0.28 ± 0.08 without TOF and 0.24 ± 0.07 with TOF applied. Moreover, the implementation of TOF in the Hoffman phantom study also enhanced image quality. Initial MR compatibility studies of the full PET ring were performed with it unpowered as a milestone to focus on looking for material and geometry-related artifacts. During all MR studies, the MR body coil functioned as both the transmit and receive coil, and no observable artifacts were detected. As expected, using the body coil also as the RF receiver, MR image signal-to-noise ratio exhibited degradation (∼30%), so we are developing a high quality receive-only coil that resides inside the PET ring.

摘要

正电子发射断层扫描(PET)/磁共振成像(MRI)同时提供疾病的解剖、功能和分子变化的相关信息。我们正在开发第二代兼容磁共振的射频可穿透的时间-of-flight(TOF)-正电子发射断层扫描(PET)插入式探测器。与临床全身 PET 扫描仪相比,该插入式探测器具有更小的闪烁晶体尺寸和环直径,从而实现了更高的空间分辨率和灵敏度。本文报告了该全环 PET 插入式探测器的初始系统性能。当我们将系统扩展到一个由 12 个、288 个 LYSO-SiPM 通道组成的完整环时(晶体尺寸:3.2×3.2×20mm),系统的全局光电峰能量分辨率和全局符合时间分辨率分别保持在 11.74±0.03%(半高全宽)和 238.1±0.5ps(半高全宽)。在十个小时的实验过程中,系统性能保持稳定,所有测量参数的变化均小于 1%。在分辨率体模研究中,系统成功地分辨出所有 2.8mm 直径的棒,在不应用 TOF 的情况下,平均 VPR 为 0.28±0.08,应用 TOF 时平均 VPR 为 0.24±0.07。此外,在 Hoffman 体模研究中应用 TOF 也提高了图像质量。对完整的 PET 环进行了初步的磁共振兼容性研究,这是一个里程碑,重点是寻找与材料和几何形状相关的伪影。在所有的磁共振研究中,磁共振体线圈既作为发射线圈又作为接收线圈,没有观察到明显的伪影。正如预期的那样,使用体线圈作为射频接收器也会导致磁共振图像信噪比下降(约 30%),因此我们正在开发一种位于 PET 环内部的高质量仅接收线圈。

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