Accuracy of holmium-166 SPECT/CT quantification over a large range of activities.

IF 3 2区 医学 Q2 RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING EJNMMI Physics Pub Date : 2024-09-26 DOI:10.1186/s40658-024-00683-7
Lovisa E L Westlund Gotby, Daphne Lobeek, Joey Roosen, Maarten de Bakker, Mark W Konijnenberg, J Frank W Nijsen
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引用次数: 0

Abstract

Background: Quantitative imaging is a crucial step for dosimetry in radionuclide therapies. Traditionally, SPECT/CT imaging is quantified based on scanner-specific conversion factors or self-calibration, but recently absolute quantification methods have been introduced in commercial SPECT reconstruction software (Broad Quantification, Siemens Healthineers). In this phantom study we investigate the accuracy of three quantification methods for holmium-166 SPECT/CT imaging, and provide recommendations for clinical dosimetry.

Methods: One cylindrical phantom, filled with a homogeneous holmium-166-chloride activity concentration solution, was imaged at one time point to determine a scanner-specific conversion factor, and to characterize the spatial dependency of the activity concentration recovery. One Jaszczak phantom with six fillable spheres, 10:1 sphere-to-background ratio, was imaged over a large range of holmium-166 activities (61-3130 MBq). The images were reconstructed with either an ordered subset expectation maximization (OSEM, Flash3D-reconstruction; scanner-specific quantification or self-calibration quantification) or an ordered subset conjugate gradient (OSCG, xSPECT-reconstruction; Broad Quantification) algorithm. These three quantification methods were compared for the data of the Jaszczak phantom and evaluated based on whole phantom recovered activity, activity concentration recovery coefficients (ACRC), and recovery curves.

Results: The activity recovery in the Jaszczak phantom was 28-115% for the scanner-specific, and 57-97% for the Broad Quantification quantification methods, respectively. The self-calibration-based activity recovery is inherently always 100%. The ACRC for the largest sphere (Ø60 mm, ~ 113 mL) ranged over (depending on the activity level) 0.22-0.89, 0.76-0.86, 0.39-0.72 for scanner-specific, self-calibration and Broad Quantification, respectively.

Conclusion: Of the three investigated quantification methods, the self-calibration technique produces quantitative SPECT images with the highest accuracy in the investigated holmium-166 activity range.

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钬-166 SPECT/CT 定量在较大活动范围内的准确性。
背景:定量成像是放射性核素疗法剂量测定的关键步骤。传统上,SPECT/CT 成像的定量是基于扫描仪特定的转换系数或自我校准,但最近商业 SPECT 重建软件(Broad Quantification,西门子医疗集团)引入了绝对定量方法。在这项模型研究中,我们调查了三种钬-166 SPECT/CT 成像量化方法的准确性,并为临床剂量测定提供了建议:方法:在一个时间点对一个充满均匀的钬-166-氯化物活性浓度溶液的圆柱形模型进行成像,以确定扫描仪特定的转换系数,并描述活性浓度恢复的空间依赖性。在很大的钬-166 活性范围(61-3130 MBq)内,对一个有六个可填充球体的 Jaszczak 体模进行了成像,球体与背景的比例为 10:1。图像采用有序子集期望最大化(OSEM,Flash3D-重建;特定扫描仪量化或自我校准量化)或有序子集共轭梯度(OSCG,xSPECT-重建;广泛量化)算法重建。我们比较了这三种量化方法在 Jaszczak 体模中的数据,并根据整个体模的活动恢复、活动浓度恢复系数 (ACRC) 和恢复曲线进行了评估:结果:在 Jaszczak 体模中,扫描仪特定量化方法的活性恢复率为 28-115%,而广泛量化量化方法的活性恢复率为 57-97%。基于自校准的活动恢复率本质上始终为 100%。最大球体(直径 60 毫米,约 113 毫升)的 ACRC 分别为 0.22-0.89、0.76-0.86、0.39-0.72(取决于活动水平),扫描仪专用、自我校准和广义定量的 ACRC 分别为 0.22-0.89、0.76-0.86、0.39-0.72:结论:在所研究的三种定量方法中,自校准技术在所研究的钬-166 放射性活度范围内生成的 SPECT 定量图像准确度最高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
EJNMMI Physics
EJNMMI Physics Physics and Astronomy-Radiation
CiteScore
6.70
自引率
10.00%
发文量
78
审稿时长
13 weeks
期刊介绍: EJNMMI Physics is an international platform for scientists, users and adopters of nuclear medicine with a particular interest in physics matters. As a companion journal to the European Journal of Nuclear Medicine and Molecular Imaging, this journal has a multi-disciplinary approach and welcomes original materials and studies with a focus on applied physics and mathematics as well as imaging systems engineering and prototyping in nuclear medicine. This includes physics-driven approaches or algorithms supported by physics that foster early clinical adoption of nuclear medicine imaging and therapy.
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