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基于光谱分析脉冲响应函数的 TSPO PET 成像参数图

Parametric Mapping for TSPO PET Imaging with Spectral Analysis Impulsive Response Function.

机构信息

Department of Neuroimaging, IoPPN, King's College London, London, UK.

Department of Information Engineering, Padova University, Padova, Italy.

出版信息

Mol Imaging Biol. 2021 Aug;23(4):560-571. doi: 10.1007/s11307-020-01575-9. Epub 2021 Jan 21.

Abstract

PURPOSE

The aim of this study was to investigate the use of spectral analysis (SA) for voxel-wise analysis of TSPO PET imaging studies. TSPO PET quantification is methodologically complicated by the heterogeneity of TSPO expression and its cell-dependent modulation during neuroinflammatory response. Compartmental models to account for this complexity exist, but they are unreliable at the high noise typical of voxel data. On the contrary, SA is noise-robust for parametric mapping and provides useful information about tracer kinetics with a free compartmental structure.

PROCEDURES

SA impulse response function (IRF) calculated at 90 min after tracer injection was used as main parameter of interest in 3 independent PET imaging studies to investigate its sensitivity to (1) a TSPO genetic polymorphism (rs6971) known to affect tracer binding in a cross-sectional analysis of healthy controls scanned with [11C]PBR28 PET; (2) TSPO density with [11C]PBR28 in a competitive blocking study with a TSPO blocker, XBD173; and (3) the higher affinity of a second radiotracer for TSPO, by using data from a head-to-head comparison between [11C]PBR28 and [11C]ER176 scans.

RESULTS

SA-IRF produced parametric maps of visually good quality. These were sensitive to TSPO genotype (mean relative difference between high- and mixed-affinity binders = 25 %) and TSPO availability (mean signal displacement after 90 mg oral administration of XBD173 = 39 %). Regional averages of voxel-wise IRF estimates were strongly associated with regional total distribution volume (V) estimated with a 2-tissue compartmental model with vascular compartment (Pearson's r = 0.86 ± 0.11) but less strongly with standard 2TCM-V (Pearson's r = 0.76 ± 0.32). Finally, SA-IRF estimates for [11C]ER176 were significantly higher than [11C]PBR28 ones, consistent with the higher amount of specific binding of the former tracer.

CONCLUSIONS

SA-IRF can be used for voxel-wise quantification of TSPO PET data because it generates high-quality parametric maps, it is sensitive to TSPO availability and genotype, and it accounts for the complexity of TSPO tracer kinetics with no additional assumptions.

摘要

目的

本研究旨在探讨光谱分析(SA)在 TSPO PET 成像研究体素分析中的应用。TSPO 表达的异质性及其在神经炎症反应中的细胞依赖性调节使得 TSPO PET 定量方法变得复杂。存在用于解释这种复杂性的房室模型,但在典型的高噪声体素数据中不可靠。相反,SA 对于参数映射是抗噪的,并提供有关示踪剂动力学的有用信息,而无需附加的房室结构。

过程

在 3 项独立的 PET 成像研究中,使用在示踪剂注射后 90 分钟计算的 SA 脉冲响应函数(IRF)作为主要感兴趣参数,以研究其对(1)已知影响健康对照者[11C]PBR28 PET 扫描中示踪剂结合的 TSPO 遗传多态性(rs6971)的敏感性;(2)用 TSPO 阻滞剂 XBD173 进行竞争性阻滞研究时的 TSPO 密度;(3)使用 [11C]PBR28 和 [11C]ER176 扫描之间头对头比较的数据,对 TSPO 更高亲和力的第二种放射性示踪剂的敏感性。

结果

SA-IRF 生成了视觉质量良好的参数图。这些图对 TSPO 基因型(高亲和力和混合亲和力结合物之间的平均相对差异=25%)和 TSPO 可用性(口服 90mg XBD173 后信号位移的平均值=39%)敏感。体素水平 IRF 估计值的区域平均值与使用具有血管隔室的 2 组织房室模型估计的区域总分布容积(V)密切相关(Pearson's r=0.86±0.11),但与标准 2TCM-V 的相关性较弱(Pearson's r=0.76±0.32)。最后,[11C]ER176 的 SA-IRF 估计值明显高于 [11C]PBR28,这与前者示踪剂的特异性结合量较高一致。

结论

SA-IRF 可用于 TSPO PET 数据的体素定量,因为它生成高质量的参数图,对 TSPO 可用性和基因型敏感,并在不增加额外假设的情况下解释 TSPO 示踪剂动力学的复杂性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c9e5/8277653/1e47b54f9808/11307_2020_1575_Fig1_HTML.jpg

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