The Russell H. Morgan Department of Radiology and Radiological Science, Johns Hopkins University School of Medicine, Baltimore, MD 21287-0807, USA.
Neuroimage. 2010 Feb 15;49(4):2947-57. doi: 10.1016/j.neuroimage.2009.11.028. Epub 2009 Nov 17.
In quantitative dynamic PET studies, graphical analysis methods including the Gjedde-Patlak plot, the Logan plot, and the relative equilibrium-based graphical plot (RE plot) (Zhou Y., Ye W., Brasić J.R., Crabb A.H., Hilton J., Wong D.F. 2009b. A consistent and efficient graphical analysis method to improve the quantification of reversible tracer binding in radioligand receptor dynamic PET studies. Neuroimage 44(3):661-670) are based on the theory of a compartmental model with assumptions on tissue tracer kinetics. If those assumptions are violated, then the resulting estimates may be biased. In this study, a multi-graphical analysis method was developed to characterize the non-relative equilibrium effects on the estimates of total distribution volume (DV(T)) from the RE plot. A novel bi-graphical analysis method using the RE plot with the Gjedde-Patlak plot (RE-GP plots) was proposed to estimate DV(T) for the quantification of reversible tracer kinetics that may not be at relative equilibrium states during PET study period. The RE-GP plots and the Logan plot were evaluated by 19 [(11)C]WIN35,428 and 10 [(11)C]MDL100,907 normal human dynamic PET studies with brain tissue tracer kinetics measured at both region of interest (ROI) and pixel levels. A 2-tissue compartment model (2TCM) was used to fit ROI time activity curves (TACs). By applying multi-graphical plots to the 2TCM fitted ROI TACs which were considered as the noise-free tracer kinetics, the estimates of DV(T) from the RE-GP plots, the Logan plot, and the 2TCM fitting were equal to each other. For the measured ROI TACs, there was no significant difference between the estimates of the DV(T) from the RE-GP plots and those from 2TCM fitting (p=0.77), but the estimates of the DV(T) from the Logan plot were significantly (p<0.001) lower, 2.3% on average, than those from 2TCM fitting. There was a highly linear correlation between the ROI DV(T) from the parametric images (Y) and those from the ROI kinetics (X) by using the RE-GP plots (Y=1.01X+0.23, R(2)=0.99). For the Logan plot, the ROI estimates from the parametric images were 13% to 83% lower than those from ROI kinetics. The computational time for generating parametric images was reduced by 69% on average by the RE-GP plots in contrast to the Logan plot. In conclusion, the bi-graphical analysis method using the RE-GP plots was a reliable, robust and computationally efficient kinetic modeling approach to improve the quantification of dynamic PET.
在定量动态 PET 研究中,图形分析方法包括 Gjedde-Patlak 图、Logan 图和基于相对平衡的图形图(RE 图)(Zhou Y., Ye W., Brasić J.R., Crabb A.H., Hilton J., Wong D.F. 2009b. A consistent and efficient graphical analysis method to improve the quantification of reversible tracer binding in radioligand receptor dynamic PET studies. Neuroimage 44(3):661-670)是基于具有组织示踪剂动力学假设的房室模型理论。如果这些假设被违反,那么得到的估计可能会有偏差。在这项研究中,开发了一种多图形分析方法来描述非相对平衡效应对从 RE 图估计的总分布容积(DV(T))的影响。提出了一种使用 RE 图和 Gjedde-Patlak 图的新双图形分析方法(RE-GP 图),用于估计可能不在 PET 研究期间处于相对平衡状态的可逆示踪剂动力学的 DV(T)。通过对 19 例[(11)C]WIN35,428 和 10 例[(11)C]MDL100,907 正常人类动态 PET 研究进行评估,使用 ROI 和像素水平测量的脑组织示踪剂动力学拟合 ROI 时间活性曲线(TACs)。使用 2 组织室模型(2TCM)拟合 ROI TACs。通过将多图形应用于被认为是无噪声示踪剂动力学的 2TCM 拟合的 ROI TACs,从 RE-GP 图、Logan 图和 2TCM 拟合得到的 DV(T)的估计值彼此相等。对于测量的 ROI TACs,从 RE-GP 图和 2TCM 拟合得到的 DV(T)的估计值之间没有显著差异(p=0.77),但从 Logan 图得到的 DV(T)的估计值显著(p<0.001)较低,平均低 2.3%。使用 RE-GP 图,通过参数图像(Y)和 ROI 动力学(X)之间的高度线性相关(Y=1.01X+0.23,R(2)=0.99)获得 ROI 的 DV(T)。对于 Logan 图,来自参数图像的 ROI 估计值比来自 ROI 动力学的 ROI 估计值低 13%至 83%。与 Logan 图相比,使用 RE-GP 图生成参数图像的计算时间平均减少了 69%。总之,使用 RE-GP 图的双图形分析方法是一种可靠、稳健且计算效率高的动力学建模方法,可用于改善动态 PET 的定量。