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能量代谢如何支持脑功能:来自碳磁共振研究的见解

How Energy Metabolism Supports Cerebral Function: Insights from C Magnetic Resonance Studies .

作者信息

Sonnay Sarah, Gruetter Rolf, Duarte João M N

机构信息

Laboratory for Functional and Metabolic Imaging, École Polytechnique Fédérale de LausanneLausanne, Switzerland.

Department of Radiology, University of LausanneLausanne, Switzerland.

出版信息

Front Neurosci. 2017 May 26;11:288. doi: 10.3389/fnins.2017.00288. eCollection 2017.

Abstract

Cerebral function is associated with exceptionally high metabolic activity, and requires continuous supply of oxygen and nutrients from the blood stream. Since the mid-twentieth century the idea that brain energy metabolism is coupled to neuronal activity has emerged, and a number of studies supported this hypothesis. Moreover, brain energy metabolism was demonstrated to be compartmentalized in neurons and astrocytes, and astrocytic glycolysis was proposed to serve the energetic demands of glutamatergic activity. Shedding light on the role of astrocytes in brain metabolism, the earlier picture of astrocytes being restricted to a scaffold-associated function in the brain is now out of date. With the development and optimization of non-invasive techniques, such as nuclear magnetic resonance spectroscopy (MRS), several groups have worked on assessing cerebral metabolism . In this context, H MRS has allowed the measurements of energy metabolism-related compounds, whose concentrations can vary under different brain activation states. H-[C] MRS, i.e., indirect detection of signals from C-coupled H, together with infusion of C-enriched glucose has provided insights into the coupling between neurotransmission and glucose oxidation. Although these techniques tackle the coupling between neuronal activity and metabolism, they lack chemical specificity and fail in providing information on neuronal and glial metabolic pathways underlying those processes. Currently, the improvement of detection modalities (i.e., direct detection of C isotopomers), the progress in building adequate mathematical models along with the increase in magnetic field strength now available render possible detailed compartmentalized metabolic flux characterization. In particular, direct C MRS offers more detailed dataset acquisitions and provides information on metabolic interactions between neurons and astrocytes, and their role in supporting neurotransmission. Here, we review state-of-the-art MR methods to study brain function and metabolism , and their contribution to the current understanding of how astrocytic energy metabolism supports glutamatergic activity and cerebral function. In this context, recent data suggests that astrocytic metabolism has been underestimated. Namely, the rate of oxidative metabolism in astrocytes is about half of that in neurons, and it can increase as much as the rate of neuronal metabolism in response to sensory stimulation.

摘要

脑功能与异常高的代谢活动相关联,并且需要从血流中持续供应氧气和营养物质。自20世纪中叶以来,脑能量代谢与神经元活动相耦合的观点逐渐形成,并且多项研究支持了这一假说。此外,已证明脑能量代谢在神经元和星形胶质细胞中是分隔的,并且有人提出星形胶质细胞的糖酵解作用是为谷氨酸能活动的能量需求提供支持。随着对星形胶质细胞在脑代谢中作用的深入了解,早期认为星形胶质细胞在脑中仅具有与支架相关功能的观点现已过时。随着诸如核磁共振波谱(MRS)等非侵入性技术的发展和优化,多个研究小组致力于评估脑代谢。在这种情况下,氢质子磁共振波谱(1H MRS)能够测量与能量代谢相关的化合物,其浓度在不同的脑激活状态下会发生变化。碳-13标记的氢质子磁共振波谱(1H-[13C] MRS),即间接检测来自与碳-13耦合的氢的信号,再结合注入富含碳-13的葡萄糖,为神经传递与葡萄糖氧化之间的耦合提供了见解。尽管这些技术解决了神经元活动与代谢之间的耦合问题,但它们缺乏化学特异性,并且无法提供有关这些过程背后的神经元和胶质细胞代谢途径的信息。目前,检测方式的改进(即直接检测碳同位素异构体)、构建适当数学模型的进展以及现有磁场强度的增加,使得详细的分隔代谢通量表征成为可能。特别是,直接碳-13磁共振波谱(13C MRS)能够提供更详细的数据集采集,并提供有关神经元与星形胶质细胞之间代谢相互作用及其在支持神经传递中的作用的信息。在此,我们综述了研究脑功能和代谢的最新磁共振方法,以及它们对当前理解星形胶质细胞能量代谢如何支持谷氨酸能活动和脑功能所做的贡献。在这种情况下,最近的数据表明星形胶质细胞的代谢一直被低估。也就是说,星形胶质细胞中的氧化代谢速率约为神经元中的一半,并且在受到感觉刺激时,其氧化代谢速率可以增加到与神经元代谢速率相同的程度。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4576/5445183/2929ede9aa69/fnins-11-00288-g0001.jpg

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