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米氏约束条件改善了使用[18F]氟脱氧葡萄糖的脑葡萄糖代谢和区域集总常数测量。

Michaelis-Menten constraints improved cerebral glucose metabolism and regional lumped constant measurements with [18F]fluorodeoxyglucose.

作者信息

Kuwabara H, Evans A C, Gjedde A

机构信息

McConnell Brain Imaging Center, Montreal Neurological Institute, Quebec, Canada.

出版信息

J Cereb Blood Flow Metab. 1990 Mar;10(2):180-9. doi: 10.1038/jcbfm.1990.33.

Abstract

In the three-compartment model of transfer of native glucose and [18F]fluorodeoxyglucose (FDG) into brain, both transport across the blood-brain barrier and phosphorylation by hexokinase can be described by the Michaelis-Menten equation. This permits the use of fixed transport (tau = K1/K1) and phosphorylation (psi = k3/k3) ratios and a common partition volume (Ve = K1/k2) for tracer and glucose. By substituting transfer constants of FDG for those of glucose, using tau and psi, the lumped constant was determined directly by positron tomography. The same constraints also eliminated k2 and k3 from the model, thus limiting the parameters to K* [equivalent to K1k3/(k2 + k3)], K1, and the cerebral vascular volume (Vo). In six healthy elderly men (aged 61 +/- 5 years), time-activity records of cerebral cortical regions were analyzed with tau = 1.1 and psi = 0.3. The results were compared with those of the conventional FDG method. At 20 min, the goodness of fit by the new equation was as good as that of the conventional method at 45 min. The estimates obtained by the constrained method had stable coefficients of variation. After 20 min, regional differences between the estimates were independent of time, although we observed steady decreases of K and (k3). The decrease strongly suggested dephosphorylation of FDG-6-phosphate, particularly after 20 min. All estimates of variables with the constrained method were more accurate than those of the conventional method, including the cerebral glucose metabolic rate itself, as well as physiologically more meaningful, particularly with respect to k2 and k*3.

摘要

在天然葡萄糖和[18F]氟脱氧葡萄糖(FDG)向脑内转运的三室模型中,血脑屏障的转运和己糖激酶的磷酸化均可由米氏方程描述。这使得可以使用固定的转运(τ = K1/K1)和磷酸化(ψ = k3/k3)比率以及用于示踪剂和葡萄糖的共同分配容积(Ve = K1/k2)。通过用FDG的转运常数替代葡萄糖的转运常数,并使用τ和ψ,通过正电子断层扫描直接确定集总常数。相同的约束条件还从模型中消除了k2和k3,从而将参数限制为K* [相当于K1k3/(k2 + k3)]、K1和脑血管容积(Vo)。在6名健康老年男性(年龄61±5岁)中,采用τ = 1.1和ψ = 0.3分析了大脑皮质区域的时间-活性记录。将结果与传统FDG方法的结果进行比较。在20分钟时,新方程的拟合优度与传统方法在45分钟时的拟合优度一样好。通过约束方法获得的估计值具有稳定的变异系数。20分钟后,估计值之间的区域差异与时间无关,尽管我们观察到K和(k3)稳步下降。这种下降强烈提示FDG-6-磷酸发生了去磷酸化,尤其是在20分钟后。使用约束方法对所有变量的估计都比传统方法更准确,包括脑葡萄糖代谢率本身,并且在生理上更有意义,特别是在k2和k*3方面。

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