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计算通量平衡分析预测,星形胶质细胞中能量代谢的刺激及其与神经元的代谢相互作用取决于钾的摄取而非谷氨酸的摄取。

Computational Flux Balance Analysis Predicts that Stimulation of Energy Metabolism in Astrocytes and their Metabolic Interactions with Neurons Depend on Uptake of K Rather than Glutamate.

作者信息

DiNuzzo Mauro, Giove Federico, Maraviglia Bruno, Mangia Silvia

机构信息

Center for Basic and Translational Neuroscience, Faculty of Health and Medical Sciences, University of Copenhagen, Blegdamsvej 3B, 24.2.40, 2200, Copenhagen N, Denmark.

Museo Storico della Fisica e Centro Studi e Ricerche "Enrico Fermi", Rome, Italy.

出版信息

Neurochem Res. 2017 Jan;42(1):202-216. doi: 10.1007/s11064-016-2048-0. Epub 2016 Sep 14.

Abstract

Brain activity involves essential functional and metabolic interactions between neurons and astrocytes. The importance of astrocytic functions to neuronal signaling is supported by many experiments reporting high rates of energy consumption and oxidative metabolism in these glial cells. In the brain, almost all energy is consumed by the Na/K ATPase, which hydrolyzes 1 ATP to move 3 Na outside and 2 K inside the cells. Astrocytes are commonly thought to be primarily involved in transmitter glutamate cycling, a mechanism that however only accounts for few % of brain energy utilization. In order to examine the participation of astrocytic energy metabolism in brain ion homeostasis, here we attempted to devise a simple stoichiometric relation linking glutamatergic neurotransmission to Na and K ionic currents. To this end, we took into account ion pumps and voltage/ligand-gated channels using the stoichiometry derived from available energy budget for neocortical signaling and incorporated this stoichiometric relation into a computational metabolic model of neuron-astrocyte interactions. We aimed at reproducing the experimental observations about rates of metabolic pathways obtained by C-NMR spectroscopy in rodent brain. When simulated data matched experiments as well as biophysical calculations, the stoichiometry for voltage/ligand-gated Na and K fluxes generated by neuronal activity was close to a 1:1 relationship, and specifically 63/58 Na/K ions per glutamate released. We found that astrocytes are stimulated by the extracellular K exiting neurons in excess of the 3/2 Na/K ratio underlying Na/K ATPase-catalyzed reaction. Analysis of correlations between neuronal and astrocytic processes indicated that astrocytic K uptake, but not astrocytic Na-coupled glutamate uptake, is instrumental for the establishment of neuron-astrocytic metabolic partnership. Our results emphasize the importance of K in stimulating the activation of astrocytes, which is relevant to the understanding of brain activity and energy metabolism at the cellular level.

摘要

大脑活动涉及神经元与星形胶质细胞之间重要的功能和代谢相互作用。许多实验报告了这些神经胶质细胞中高能量消耗率和氧化代谢率,从而支持了星形胶质细胞功能对神经元信号传导的重要性。在大脑中,几乎所有能量都由钠钾ATP酶消耗,该酶水解1个ATP,将3个钠离子转运到细胞外,2个钾离子转运到细胞内。通常认为星形胶质细胞主要参与递质谷氨酸循环,然而该机制仅占大脑能量利用的百分之几。为了研究星形胶质细胞能量代谢在脑离子稳态中的作用,我们试图设计一种简单的化学计量关系,将谷氨酸能神经传递与钠和钾离子电流联系起来。为此,我们利用从新皮质信号传导的可用能量预算中得出的化学计量关系,考虑了离子泵和电压/配体门控通道,并将这种化学计量关系纳入神经元-星形胶质细胞相互作用的计算代谢模型中。我们旨在重现通过C-NMR光谱法在啮齿动物大脑中获得的关于代谢途径速率的实验观察结果。当模拟数据与实验以及生物物理计算相匹配时,由神经元活动产生的电压/配体门控钠和钾通量的化学计量接近1:1关系,具体而言,每释放一个谷氨酸有63/58个钠/钾离子。我们发现,细胞外钾离子以超过钠钾ATP酶催化反应的3/2钠/钾比例从神经元中流出,从而刺激星形胶质细胞。对神经元和星形胶质细胞过程之间相关性的分析表明,星形胶质细胞摄取钾离子,而不是星形胶质细胞钠偶联谷氨酸摄取,有助于建立神经元-星形胶质细胞代谢伙伴关系。我们的结果强调了钾在刺激星形胶质细胞激活中的重要性,这与在细胞水平上理解大脑活动和能量代谢相关。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0bf7/5283516/2466f67f9d31/11064_2016_2048_Fig1_HTML.jpg

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