Kavli Institute for the Physics and Mathematics of the Universe (IPMU) (WPI), The University of Tokyo Institutes for Advanced Study (UTIAS), The University of Tokyo, Kashiwa, Chiba, Japan.
iMAGINE-X Inc., Shibuya-ku, Tokyo, Japan.
Med Phys. 2024 Aug;51(8):5308-5320. doi: 10.1002/mp.17124. Epub 2024 May 19.
The recent emergence of targeted radionuclide therapy has increased the demand for imagers capable of visualizing pharmacokinetics in developing radiopharmaceuticals in the preclinical phase. Some radionuclides emit hard x-rays and gamma-rays below 100 keV, in which energy range the performance of conventional NaI scintillators is poor. Multipinhole collimators are also used for small animal imaging with a good spatial resolution but have a limited field of view (FOV).
In this study, a new imager with high sensitivity over a wide FOV in the low-energy band ( 100 keV) was developed for the pharmacokinetic study.
We developed an x-ray and gamma-ray camera for high-resolution spectroscopy, named "CdTe XG-Cam," equipped with a cadmium telluride semiconductor detector and a parallel-hole collimator using a metal 3D printer. To evaluate the camera-system performance, phantom measurements with single and dual nuclides ( , , and were performed. The performance for in vivo imaging was evaluated using tumor-bearing mice to which a nuclide ( or administered.
We simultaneously obtained information on and , which emit emission lines in the low-energy band with peak energies close to each other (23-26 keV for and 27-31 keV for , and applied an analytical method based on spectral model fitting to determine the individual radioactivities accurately. In the small animal imaging, the distributions of the nuclide in tumors were accurately quantified and time-activity curves in tumors are obtained.
The demonstrated capability of our system to perform in vivo imaging suggests that the camera can be used for applications of pharmacokinetics research.
随着靶向放射性核素治疗的出现,对能够在临床前阶段可视化放射性药物药代动力学的成像仪的需求不断增加。一些放射性核素发射低于 100keV 的硬 X 射线和伽马射线,在此能量范围内,传统的碘化钠闪烁体的性能较差。多针孔准直器也用于小动物成像,具有良好的空间分辨率,但视场(FOV)有限。
本研究旨在开发一种在低能段( 100keV)具有宽 FOV 和高灵敏度的新型成像仪,用于药代动力学研究。
我们开发了一种用于高分辨率光谱学的 X 射线和伽马射线相机,命名为“CdTe XG-Cam”,它配备了碲化镉半导体探测器和使用金属 3D 打印机制造的平行孔准直器。为了评估相机系统的性能,使用单和双核素( , , 和 进行了体模测量。使用注射了放射性核素( 或 的荷瘤小鼠评估了体内成像的性能。
我们同时获得了 和 的信息,它们在低能段发射接近彼此的发射线(23-26keV 对于 ,27-31keV 对于 ),并应用了基于光谱模型拟合的分析方法来准确确定单个放射性活度。在小动物成像中,准确地定量了肿瘤中放射性核素的分布,并获得了肿瘤中的时间-活性曲线。
我们的系统进行体内成像的能力表明,该相机可用于药代动力学研究的应用。