177Lu-SPECT/CT 重建中恢复系数的位置依赖性--模型模拟和测量。

IF 3 2区 医学 Q2 RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING EJNMMI Physics Pub Date : 2024-06-28 DOI:10.1186/s40658-024-00662-y
Julian Leube, Wies Claeys, Johan Gustafsson, Maikol Salas-Ramirez, Michael Lassmann, Michel Koole, Johannes Tran-Gia
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引用次数: 0

摘要

背景:虽然由于新开发的治疗性放射性药物,定量 SPECT 的重要性大大增加,但目前仍没有统一 SPECT 成像的认证计划。定量 177Lu SPECT/CT 的认证工作目前正在进行中。本研究的目的是验证球体在模型中的位置是否会对恢复产生影响,因此需要在 SPECT 协调中加以考虑。此外,还研究了这些恢复系数对潜在的部分容积校正以及吸收剂量估算的影响:方法:利用 SPECT/CT 采集的低剂量 CT,采用基于阈值的半自动方法创建了计算机版本的 NEMA 人体模型。根据质量密度图、探测器轨道和球体中心,使用蒙特卡洛模拟生成了所有可能的720个球体配置的PET和SPECT版NEMA人体模型的真实SPECT采集。在没有更新(CASToR)和有分辨率建模(STIR)的情况下,进行了不同更新次数的 SPECT 重建。计算了所有排列、重建方法和模型的恢复系数,并研究了它们与球体定位的关系。最后,使用六种不同球体配置的 SPECT/CT 采集验证了基于模拟的研究结果:我们的分析表明,球体定位对重建方法和模型类型的恢复都有显著影响。虽然分辨率建模的复原率明显更高,但在 720 种排列组合中,复原率的相对差异更大。在检查恢复的极值时,没有分辨率建模的重建主要受球体位置的影响,而有分辨率建模的重建则受相邻两个球体体积的影响较大。SPECT 测量结果证实了这些观察结果,恢复曲线与模拟数据显示出良好的整体一致性:我们的研究表明,球体定位对在 NEMA 球体模型测量中获得的恢复效果有重大影响,因此在未来的 SPECT 评审中应加以考虑。此外,应重新考虑通常用于 PVC 的单次测量方法,以考虑位置依赖性。
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Position dependence of recovery coefficients in 177Lu-SPECT/CT reconstructions - phantom simulations and measurements.

Background: Although the importance of quantitative SPECT has increased tremendously due to newly developed therapeutic radiopharmaceuticals, there are still no accreditation programs to harmonize SPECT imaging. Work is currently underway to develop an accreditation for quantitative 177Lu SPECT/CT. The aim of this study is to verify whether the positioning of the spheres within the phantom has an influence on the recovery and thus needs to be considered in SPECT harmonization. In addition, the effects of these recovery coefficients on a potential partial volume correction as well as absorbed-dose estimates are investigated.

Methods: Using a low-dose CT of a SPECT/CT acquisition, a computerized version of the NEMA body phantom was created using a semi-automatic threshold-based method. Based on the mass-density map, the detector orbit, and the sphere centers, realistic SPECT acquisitions of all possible 720 sphere configurations of both the PET and the SPECT versions of the NEMA Body Phantom were generated using Monte Carlo simulations. SPECT reconstructions with different numbers of updates were performed without (CASToR) and with resolution modeling (STIR). Recovery coefficients were calculated for all permutations, reconstruction methods, and phantoms, and their dependence on the sphere positioning was investigated. Finally, the simulation-based findings were validated using SPECT/CT acquisitions of six different sphere configurations.

Results: Our analysis shows that sphere positioning has a significant impact on the recovery for both of the reconstruction methods and the phantom type. Although resolution modeling resulted in significantly higher recovery, the relative variation in recovery within the 720 permutations was even larger. When examining the extreme values of the recovery, reconstructions without resolution modeling were influenced primarily by the sphere position, while with resolution modeling the volume of the two adjacent spheres had a larger influence. The SPECT measurements confirmed these observations, and the recovery curves showed good overall agreement with the simulated data.

Conclusion: Our study shows that sphere positioning has a significant impact on the recovery obtained in NEMA sphere phantom measurements and should therefore be considered in a future SPECT accreditation. Furthermore, the single-measurement method normally performed for PVC should be reconsidered to account for the position dependency.

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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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