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首页> 外文期刊>IEEE Transactions on Biomedical Engineering >Evaluation of compartmental and spectral analysis models of [/sup 18/F]FDG kinetics for heart and brain studies with PET
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Evaluation of compartmental and spectral analysis models of [/sup 18/F]FDG kinetics for heart and brain studies with PET

机译:评价[/ sup 18 / F] FDG动力学的隔室和光谱分析模型,用于PET的心脏和大脑研究

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摘要

Various models have been proposed to quantitate from [/sup 18/F]-Fluoro-Deoxy-Glucose ([/sup 18/F]FDG) positron emission tomography (PET) data glucose regional metabolic rate. The authors evaluate here four models, a three-rate constants (3 K) model, a four-rate constants (4 K) model, an heterogeneous model (TH) and a spectral analysis (SA) model. The data base consists of [/sup 18/F]FDG dynamic data obtained in the myocardium and brain gray and white matter. All models were identified by nonlinear weighted least squares with weights chosen optimally. The authors show that: 1) 3 K and 4 K models are indistinguishable in terms of parsimony criteria and choice should be made on parameter precision and physiological plausibility; in the gray matter a more complex model than the 3 K one is resolvable; 2) the TH model is resolvable in the gray but not in the white matter; 3) the classic SA approach has some unnecessary hypotheses built in and can be in principle misleading; the authors propose here a new SA model which is more theoretically sound; 4) this new SA approach supports the use of a 3 K model in the heart with a 60 min experimental period; it also indicates that heterogeneity in the brain is modest in the white matter; 5) [/sup 18/F]FDG fractional uptake estimates of the four models are very close in the heart, but not in the brain; 6) a higher than 60 min experimental time is preferable for brain studies.
机译:已经提出了各种模型来从[/ sup 18 / F]-氟-脱氧葡萄糖([/ sup 18 / F] FDG)正电子发射断层扫描(PET)数据中定量葡萄糖区域代谢率。作者在这里评估了四个模型,一个三速率常数(3 K)模型,一个四速率常数(4 K)模型,一个异构模型(TH)和一个光谱分析(SA)模型。该数据库由在心肌和大脑灰白质中获得的[/ sup 18 / F] FDG动态数据组成。所有模型均由非线性加权最小二乘确定,并选择了最佳权重。作者表明:1)3 K和4 K模型在简约标准上是无法区分的,应在参数精度和生理合理性上进行选择;在灰质中,可以解决比3 K更复杂的模型。 2)TH模型可解析为灰色而不是白色物质; 3)经典的SA方法内置了一些不必要的假设,原则上可能会产生误导;作者在这里提出了一种新的SA模型,该模型在理论上更加合理。 4)这种新的SA方法支持在实验周期为60分钟的情况下在心脏中使用3K模型;这也表明白质在大脑中的异质性中等。 5)四种模型的[/ sup 18 / F] FDG摄取分数估算值在心脏中非常接近,但在大脑中却非常接近; 6)对于大脑研究而言,优选60分钟以上的实验时间。

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