基于cz的临床前广谱SPECT (SPECT)对⁹mTc和¹⁷Lu的个体和同时成像

IF 4.6 Q1 RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING
Pedro M. C. C. Encarnação;Pedro M. M. Correia;Baharak Mehrdel;Isabella Bredwell;João F. C. A. Veloso;Javier Caravaca;Youngho Seo
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引用次数: 0

摘要

放射性药物治疗在治疗各种类型的肿瘤中显示出很高的疗效。其中一种已经用于临床的放射性核素是177Lu,它是一种β发射器,也能发射出几个光子,可以用单光子发射计算机断层扫描(SPECT)成像。177Lu的定量成像对于开发新的放射性药物至关重要。能量分辨率是成像多光子发射时的一个重要因素。固态探测器提供了优于闪烁体的性能,闪烁体通常用于商用临床前SPECT扫描仪。本研究证明了99mTc和177Lu定量成像小鼠幻影的可行性,分别和同时,用四个CdZnTe (CZT)探测器头和一个定制的和能量优化的平行孔钨准直器构建SPECT原型。通过自定义实现的一步后期(OSL)图像重建算法,该系统能够成像能量从~70到250 keV。在250 keV以上,图像受到隔膜穿透的显著影响,这与准直器的设计一致。活度为99mTc为2 kBq/mL, 177Lu为45%,回收率在25%以内。与商用的基于ai的临床前SPECT (VECTor4/CT)相比,我们的原型显示出更高的能量分辨率(在140 keV下<5%),具有相似的均匀性和高紧凑设计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Individual and Simultaneous Imaging of ⁹⁹mTc and ¹⁷⁷Lu With a Preclinical Broad Energy-Spectrum CZT-Based SPECT
Radiopharmaceutical therapy has demonstrated a high efficacy in the treatment of various tumor types. One of the radionuclides already used in the clinic is 177Lu, a beta emitter that also emits several photons imageable with single photon emission computed tomography (SPECT). Quantitative imaging of 177Lu is critical for developing new radiopharmaceuticals. Energy resolution is an important factor when imaging multiple photon emissions. Solid-state detectors offer a superior performance over scintillators, that are commonly used in commercially available preclinical SPECT scanners. This study demonstrates the feasibility of 99mTc and 177Lu quantitative imaging in mouse phantoms, individually and simultaneously, with a SPECT prototype built with four CdZnTe (CZT) detector heads and a custom-designed and energy-optimized parallel-hole tungsten collimator. With a custom implementation of the one-step late (OSL) image reconstruction algorithm, the system is capable of imaging energies from ~70 to 250 keV. Above 250 keV, images were significantly affected by septal penetration, consistent with the collimator design. A recovery coefficient within 25% was obtained for activities as low as 2 kBq/mL for 99mTc and 45% for 177Lu. Compared to a commercial NaI-based preclinical SPECT (VECTor4/CT), our prototype showed a superior energy resolution (<5% at 140 keV), a similar uniformity with a high-compact design.
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来源期刊
IEEE Transactions on Radiation and Plasma Medical Sciences
IEEE Transactions on Radiation and Plasma Medical Sciences RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING-
CiteScore
8.00
自引率
18.20%
发文量
109
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