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利用平行孔准直器的双光子符合方法进行同时多核素成像。

Simultaneous multi-nuclide imaging via double-photon coincidence method with parallel hole collimators.

机构信息

Department of Nuclear Engineering and Management, School of Engineering, The University of Tokyo, 7-3-1, Hongo, Bunkyo-ku, Tokyo, Japan.

Department of Bioengineering, School of Engineering, The University of Tokyo, 7-3-1, Hongo, Bunkyo-ku, Tokyo, Japan.

出版信息

Sci Rep. 2021 Jun 25;11(1):13330. doi: 10.1038/s41598-021-92583-4.

Abstract

Multi-tracer imaging can provide useful information in the definitive diagnosis and research of medical, biological, and pharmaceutical sciences. Single-photon emission computed tomography (SPECT) is one of the nuclear medicine imaging modalities widely used for diagnosis or medical research and has a multi-tracer imaging capability. One of the drawbacks of multi-tracer imaging is crosstalk from other gamma rays, which affects the reconstructed image. Scattering correction methods, such as the dual- and triple-energy window methods, are used for conventional SPECT imaging to reduce the background caused by the crosstalk. This study proposes another crosstalk reduction method. Some nuclides emit two or more gamma rays through intermediate levels. Thus, detecting these gamma rays with the coincidence method allows us to distinguish a true gamma ray signal and a background signal. The nuclide position can be estimated at the intersection of two gamma rays using collimators. We demonstrate herein simultaneous In and Lu imaging via the double-photon coincidence method using GAGG detectors and parallel hole collimators. The double-photon coincidence method greatly reduces the background caused by other gamma rays and offers higher-quality images than does conventional imaging.

摘要

多示踪剂成像是医学、生物和制药科学中明确诊断和研究的有用信息。单光子发射计算机断层扫描 (SPECT) 是一种广泛用于诊断或医学研究的核医学成像方式,具有多示踪剂成像能力。多示踪剂成像的一个缺点是来自其他伽马射线的串扰,这会影响重建图像。散射校正方法,如双能和三能窗方法,用于传统的 SPECT 成像,以减少串扰引起的背景。本研究提出了另一种串扰减少方法。一些核素通过中间能级发射两个或更多伽马射线。因此,使用符合方法检测这些伽马射线可以使我们区分真实的伽马射线信号和背景信号。使用准直器,可以在两个伽马射线的交点处估计核素位置。我们在此通过 GAGG 探测器和平行孔准直器使用双光子符合方法展示了同时进行的 In 和 Lu 成像。双光子符合方法大大减少了其他伽马射线引起的背景,并提供了比传统成像更高质量的图像。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5352/8233320/8aaa3f96f012/41598_2021_92583_Fig1_HTML.jpg

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