Dias André H, Hansen Allan K, Munk Ole L, Gormsen Lars C
Department of Nuclear Medicine and PET Centre, Aarhus University Hospital, Palle Juul-Jensens Boulevard 165, 8200, Aarhus, Denmark.
Department of Clinical Medicine, Aarhus University, Aarhus, Denmark.
EJNMMI Res. 2022 Mar 7;12(1):15. doi: 10.1186/s13550-022-00884-0.
Dynamic whole-body (D-WB) FDG PET/CT is a recently developed technique that allows direct reconstruction of multiparametric images of metabolic rate of FDG uptake (MR) and "free" FDG (DV). Multiparametric images have a markedly different appearance than the conventional SUV images obtained by static PET imaging, and normal values of MR and DV in frequently used reference tissues and organs are lacking. The aim of this study was therefore to: (1) provide an overview of normal MR and DV values and range of variation in organs and tissues; (2) analyse organ time-activity curves (TACs); (3) validate the accuracy of directly reconstructed MR tissue values versus manually calculated K (and MR) values; and (4) explore correlations between demographics, blood glucose levels and MR values. D-WB data from 126 prospectively recruited patients (100 without diabetes and 26 with diabetes) were retrospectively analysed. Participants were scanned using a 70-min multiparametric PET acquisition protocol on a Siemens Biograph Vision 600 PET/CT scanner. 13 regions (bone, brain grey and white matter, colon, heart, kidney, liver, lung, skeletal muscle of the back and thigh, pancreas, spleen, and stomach) as well as representative pathological findings were manually delineated, and values of static PET (SUV), D-WB PET (K, MR and DV) and individual TACs were extracted. Multiparametric values were compared with manual TAC-based calculations of K and MR, and correlations with blood glucose, age, weight, BMI, and injected tracer dose were explored.
Tissue and organ MR values showed little variation, comparable to corresponding SUV variation. All regional TACs were in line with previously published FDG kinetics, and the multiparametric metrics correlated well with manual TAC-based calculations (r = 0.97, p < 0.0001). No correlations were observed between glucose levels and MR in tissues known not to be substrate driven, while tissues with substrate driven glucose uptake had significantly correlated glucose levels and MR values.
The multiparametric D-WB PET scan protocol provides normal MR values with little inter-subject variation and in agreement with manual TAC-based calculations and literature values. The technique therefore facilitates both accurate clinical reports and simpler acquisition of quantitative estimates of whole-body tissue glucose metabolism.
动态全身(D-WB)氟代脱氧葡萄糖正电子发射断层扫描/计算机断层扫描(FDG PET/CT)是一项最近开发的技术,它能够直接重建氟代脱氧葡萄糖摄取代谢率(MR)和“游离”氟代脱氧葡萄糖(DV)的多参数图像。多参数图像的外观与通过静态PET成像获得的传统标准化摄取值(SUV)图像明显不同,并且缺乏常用参考组织和器官中MR和DV的正常值。因此,本研究的目的是:(1)概述器官和组织中MR和DV的正常值及变化范围;(2)分析器官时间-活性曲线(TAC);(3)验证直接重建的MR组织值相对于手动计算的K(和MR)值的准确性;(4)探索人口统计学、血糖水平与MR值之间的相关性。对126例前瞻性招募患者(100例无糖尿病,26例有糖尿病)的D-WB数据进行回顾性分析。参与者使用西门子Biograph Vision 600 PET/CT扫描仪,采用70分钟的多参数PET采集方案进行扫描。手动勾勒出13个区域(骨骼、脑灰质和白质、结肠、心脏、肾脏、肝脏、肺、背部和大腿的骨骼肌、胰腺、脾脏和胃)以及代表性病理结果,并提取静态PET(SUV)、D-WB PET(K、MR和DV)值以及个体TAC。将多参数值与基于手动TAC计算的K和MR进行比较,并探索与血糖、年龄、体重、体重指数和注射示踪剂剂量的相关性。
组织和器官的MR值变化很小,与相应的SUV变化相当。所有区域TAC均与先前发表的FDG动力学一致,并且多参数指标与基于手动TAC的计算具有良好的相关性(r = 0.97,p < 0.0001)。在已知非底物驱动的组织中,未观察到葡萄糖水平与MR之间的相关性,而具有底物驱动葡萄糖摄取的组织中,葡萄糖水平与MR值显著相关。
多参数D-WB PET扫描方案提供的正常MR值个体间差异很小,与基于手动TAC的计算结果和文献值一致。因此,该技术有助于生成准确的临床报告,并更简单地获取全身组织葡萄糖代谢的定量估计值。