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首页> 外文期刊>Journal of Cerebral Blood Flow and Metabolism: Official Journal of the International Society of Cerebral Blood Flow and Metabolism >Dynamic brain glucose metabolism identifies anti-correlated cortical-cerebellar networks at rest
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Dynamic brain glucose metabolism identifies anti-correlated cortical-cerebellar networks at rest

机译:动态脑葡萄糖新陈代谢鉴定休息的反相关皮质大脑网络

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摘要

It remains unclear whether resting state functional magnetic resonance imaging (rfMRI) networks are associated with underlying synchrony in energy demand, as measured by dynamic 2-deoxy-2-[ 18 F]fluoroglucose (FDG) positron emission tomography (PET). We measured absolute glucose metabolism, temporal metabolic connectivity (t-MC) and rfMRI patterns in 53 healthy participants at rest. Twenty-two rfMRI networks emerged from group independent component analysis (gICA). In contrast, only two anti-correlated t-MC emerged from FDG-PET time series using gICA or seed-voxel correlations; one included frontal, parietal and temporal cortices, the other included the cerebellum and medial temporal regions. Whereas cerebellum, thalamus, globus pallidus and calcarine cortex arose as the strongest t-MC hubs, the precuneus and visual cortex arose as the strongest rfMRI hubs. The strength of the t-MC linearly increased with the metabolic rate of glucose suggesting that t-MC measures are strongly associated with the energy demand of the brain tissue, and could reflect regional differences in glucose metabolism, counterbalanced metabolic network demand, and/or differential time-varying delivery of FDG. The mismatch between metabolic and functional connectivity patterns computed as a function of time could reflect differences in the temporal characteristics of glucose metabolism as measured with PET-FDG and brain activation as measured with rfMRI.
机译:它仍然不清楚休息状态功能磁共振成像(RFMRI)网络是否与能量需求中的底层同步相关,如动态2-脱氧-2- [18 f]氟葡聚糖(FDG)正电子发射断层扫描(PET)测量。我们在休息的53个健康参与者中测量了绝对葡萄糖代谢,时间代谢连接(T-MC)和RFMRI模式。从组独立分量分析(GICA)中出现了二十二个RFMRI网络。相反,使用GICA或种子 - 体素相关性的FDG-PET时间序列中只出现了两种反相关的T-MC;一个包括额外,顶叶和颞叶,另一个包括小脑和内侧颞区。虽然小脑,丘脑,丘脑,Globus pallidus和Calcarine Cortex作为最强的T-MC集线器,原因和视觉皮层作为最强的RFMRI集线器。 T-MC的强度随着葡萄糖的代谢速率而线性增加,表明T-MC测量与脑组织的能量需求强烈相关,并且可以反映葡萄糖代谢,平衡代谢网络需求和/或FDG的差异时变交付。根据时间函数计算的代谢和功能连接模式之间的不匹配可以反映与用RFMRI测量的PET-FDG和脑激活测量的葡萄糖代谢的时间特征的差异。

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