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正电子发射断层扫描房室模型:一种用于动力学建模的基追踪策略。

Positron emission tomography compartmental models: a basis pursuit strategy for kinetic modeling.

作者信息

Gunn Roger N, Gunn Steve R, Turkheimer Federico E, Aston John A D, Cunningham Vincent J

机构信息

McConnell Brain Imaging Center, Montreal Neurological Institute, McGill University, 3801 University St., Montreal, Quebec, Canada.

出版信息

J Cereb Blood Flow Metab. 2002 Dec;22(12):1425-39. doi: 10.1097/01.wcb.0000045042.03034.42.

Abstract

A kinetic modeling approach for the quantification of in vivo tracer studies with dynamic positron emission tomography (PET) is presented. The approach is based on a general compartmental description of the tracer's fate in vivo and determines a parsimonious model consistent with the measured data. The technique involves the determination of a sparse selection of kinetic basis functions from an overcomplete dictionary using the method of basis pursuit denoising. This enables the characterization of the systems impulse response function from which values of the systems macro parameters can be estimated. These parameter estimates can be obtained from a region of interest analysis or as parametric images from a voxel-based analysis. In addition, model order estimates are returned that correspond to the number of compartments in the estimated compartmental model. Validation studies evaluate the methods performance against two preexisting data led techniques, namely, graphical analysis and spectral analysis. Application of this technique to measured PET data is demonstrated using [11C]diprenorphine (opiate receptor) and [11C]WAY-100635 (5-HT1A receptor). Although the method is presented in the context of PET neuroreceptor binding studies, it has general applicability to the quantification of PET/SPECT radiotracer studies in neurology, oncology, and cardiology.

摘要

本文提出了一种用于动态正电子发射断层扫描(PET)体内示踪剂研究定量分析的动力学建模方法。该方法基于示踪剂在体内归宿的一般房室描述,并确定与测量数据一致的简约模型。该技术涉及使用基追踪去噪方法从超完备字典中确定稀疏选择的动力学基函数。这使得能够表征系统脉冲响应函数,从中可以估计系统宏观参数的值。这些参数估计可以通过感兴趣区域分析获得,也可以作为基于体素分析的参数图像获得。此外,还返回与估计的房室模型中的房室数量相对应的模型阶数估计。验证研究针对两种现有的数据主导技术,即图形分析和频谱分析,评估了该方法的性能。使用[11C]二丙诺啡(阿片受体)和[11C]WAY-100635(5-HT1A受体)证明了该技术在测量的PET数据中的应用。尽管该方法是在PET神经受体结合研究的背景下提出的,但它在神经病学、肿瘤学和心脏病学中PET/SPECT放射性示踪剂研究的定量分析方面具有普遍适用性。

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