Bhattarai Anjan, Holy Emily Nicole, Wang Yiran, Spencer Benjamin A, Wang Guobao, DeCarli Charles, Fan Audrey P
Department of Neurology, University of California, Davis, 1590 Drew Avenue, Unit #100, CA, 95618, Davis, USA.
Department of Biomedical Engineering, University of California, Davis, Davis, CA, USA.
EJNMMI Res. 2025 May 30;15(1):62. doi: 10.1186/s13550-025-01260-4.
Accurate quantification of tau binding from F-PI-2620 PET requires kinetic modeling and an input function. We aimed to implement a non-invasive Image-derived input function (IDIF) using the state-of-the-art total-body uEXPLORER PET/CT scanner to quantify tau binding and tracer delivery rate from F-PI-2620 in the brain. Additionally, we investigated the impact of scan duration on the quantification of kinetic parameters.
F-PI-2620 total-body PET dynamic (90 min) data from 15 elderly (66-92 years) participants were acquired. Time-activity curves were obtained from grey matter regions of interest (ROIs) known to be affected in Alzheimer's disease, including the medial temporal lobe, posterior cingulate, and lateral parietal cortex. These curves were fitted to the two-tissue compartmental model (2TCM) using a subject-specific IDIF (plasma and metabolite corrected) derived from the descending aorta. ROI-specific kinetic parameters were estimated for different scan durations ranging from 10 to 90 min. The parameters included blood fraction volume (v), rate constants (K, k, k, k), total distribution volume (V), distribution volume ratio (DVR), and tracer arrival delay. Logan graphical analysis was also used to estimate V and compared with 2TCM. Differences in kinetic parameters were observed between ROIs, including significant reduction in tracer delivery rate (K) in the medial temporal lobe (q < 0.001). All kinetic parameters remained relatively stable (compared to parameters quantified with full 90-minute data) after the 60-minute scan window across all ROIs (r ≥ 0.89; p < 0.001), with K showing high stability after 30 min of scan duration (r ≥ 0.92; p < 0.001). Excellent correlation was observed between V estimated using 2TCM and Logan plot analysis (r ≥ 0.96; p < 0.001).
This study demonstrated the utility of IDIF from a lager blood pool, derived using the total-body PET in quantifying F-PI-2620 kinetics in the brain. Our findings suggest that a 60-minute scan window may be required for the reliable quantification of kinetic parameters using IDIF, whereas a 30-minute scan time may be sufficient for the quantification of K.
通过F-PI-2620正电子发射断层扫描(PET)准确量化tau蛋白结合需要动力学建模和输入函数。我们旨在使用最先进的全身uEXPLORER PET/CT扫描仪实现一种非侵入性的图像衍生输入函数(IDIF),以量化大脑中F-PI-2620的tau蛋白结合和示踪剂递送率。此外,我们研究了扫描持续时间对动力学参数量化的影响。
获取了15名老年(66 - 92岁)参与者的F-PI-2620全身PET动态(90分钟)数据。从已知在阿尔茨海默病中会受影响的灰质感兴趣区域(ROI)获取时间-活性曲线,这些区域包括内侧颞叶、后扣带回和外侧顶叶皮质。使用源自降主动脉的受试者特异性IDIF(血浆和代谢物校正)将这些曲线拟合到双组织房室模型(2TCM)。针对10至90分钟的不同扫描持续时间估计了ROI特异性动力学参数。这些参数包括血容量分数(v)、速率常数(K、k、k、k)、总分布容积(V)、分布容积比(DVR)和示踪剂到达延迟。还使用Logan图形分析来估计V并与2TCM进行比较。在不同ROI之间观察到动力学参数存在差异,包括内侧颞叶中示踪剂递送率(K)显著降低(q < 0.001)。在所有ROI中,60分钟扫描窗口后所有动力学参数保持相对稳定(与用完整90分钟数据量化的参数相比)(r ≥ 0.89;p < 0.001),扫描持续30分钟后K显示出高稳定性(r ≥ 0.92;p < 0.001)。使用2TCM估计的V与Logan图分析之间观察到极好的相关性(r ≥ 0.96;p < 0.001)。
本研究证明了使用全身PET从更大血池获得的IDIF在量化大脑中F-PI-2620动力学方面的实用性。我们的研究结果表明,使用IDIF可靠量化动力学参数可能需要60分钟的扫描窗口,而30分钟的扫描时间可能足以量化K。