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首页> 外文期刊>Philosophical Transactions of the Royal Society of London, Series B. Biological Sciences >In vivo nuclear magnetic resonance spectroscopy studies of the relationship between the glutamate-glutamine neurotransmitter cycle and functional neuroenergetics
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In vivo nuclear magnetic resonance spectroscopy studies of the relationship between the glutamate-glutamine neurotransmitter cycle and functional neuroenergetics

机译:体内核磁共振波谱研究谷氨酸-谷氨酰胺神经递质循环与功能性神经能之间的关系

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In this article we review recent studies, primarily from our laboratory, using ~(13)C NMR (nuclear magnetic resonance) to non-invasively measure the rate of the glutamate-glutamine neurotransmitter cycle in the cortex of rats and humans. In the glutamate-glutamine cycle, glutamate released from nerve terminals is taken up by surrounding glial cells and returned to the nerve terminals as glutamine. ~(13)C NMR studies have shown that the rate of the glutamate-glutamine cycle is extremely high in both the rat and human cortex, and that it increases with brain activity in an approximately 1:1 molar ratio with oxidative glucose metabolism. The measured ratio, in combination with proposals based on isolated cell studies by P. J. Magistretti and co-workers, has led to the development of a model in which the majority of brain glucose oxidation is mechanistically coupled to the glutamate-glutamine cycle. This model provides the first testable mechanistic relationship between cortical glucose metabolism and a specific neuronal activity. We review here the experimental evidence for this model as well as implications for blood oxygenation level dependent magnetic resonance imaging and positron emission tomography functional imaging studies of brain function.
机译:在本文中,我们回顾了主要来自于我们实验室的最新研究,这些研究使用〜(13)C NMR(核磁共振)以非侵入性方式测量了大鼠和人类皮层中谷氨酸-谷氨酰胺神经递质的循环速率。在谷氨酸-谷氨酰胺循环中,从神经末梢释放的谷氨酸被周围的神经胶质细胞吸收,并以谷氨酰胺的形式返回神经末梢。 〜(13)C NMR研究表明,在大鼠和人类皮层中,谷氨酸-谷氨酰胺循环的速率都非常高,并且随着大脑活动的增加,其与氧化葡萄糖代谢的摩尔比约为1:1。所测得的比率与基于P. J. Magistretti及其同事的分离细胞研究提出的建议相结合,导致了一种模型的开发,在该模型中,大多数脑部葡萄糖氧化被机械地耦合到谷氨酸-谷氨酰胺循环。该模型提供了皮质葡萄糖代谢与特定神经元活动之间的第一个可检验的机制关系。我们在这里审查该模型的实验证据,以及对血氧水平依赖的磁共振成像和脑功能的正电子发射断层扫描功能成像研究的意义。

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