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首页> 外文期刊>Journal of Neurochemistry: Offical Journal of the International Society for Neurochemistry >Excitatory amino acid synthesis in hypoxic brain slices: does alanine act as a substrate for glutamate production in hypoxia?
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Excitatory amino acid synthesis in hypoxic brain slices: does alanine act as a substrate for glutamate production in hypoxia?

机译:低氧性脑切片中的兴奋性氨基酸合成:低氧时丙氨酸是否可作为谷氨酸生产的底物?

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Excitatory amino acids are an important cause of cell death in the hypoxic and ischaemic brain. Neuronal glutamate stores are depleted rapidly in hypoxia, but alanine production rises under such conditions and has been suggested to be a potential precursor of glutamate. To test this hypothesis, we have investigated amino acid metabolism using 13C NMR with superfused guinea pig cortical slices subjected to varying degrees of hypoxia. During severe hypoxia, brain slices metabolising 5 mM [2-(13)C]pyruvate exported [2-(13)C]alanine into the superfusion fluid. The metabolic fate of alanine during normoxia and hypoxia was tested by superfusion of brain slices with 10 mM glucose and 2 mM [2-(13)C,15N]alanine. Metabolism of exogenous alanine leads to the release of aspartate into the superfusion fluid. The pattern of labelling of aspartate indicated that it was synthesised via the glial-specific enzyme pyruvate carboxylase. 13C-labelled glutamate was produced with both normoxia and hypoxia, but concentrations were 30-fold lower than for labelled aspartate. Thus, although substantial amounts of glutamate are not synthesised from alanine in hypoxia, there is significant production of aspartate, which also may have deleterious effects as an excitatory amino acid.
机译:兴奋性氨基酸是缺氧和缺血性脑细胞死亡的重要原因。在缺氧状态下,神经元谷氨酸的存储量会迅速耗尽,但是在这种条件下丙氨酸的产量会增加,并被认为是谷氨酸的潜在前体。为了验证该假设,我们使用13C NMR对经过不同程度缺氧的豚鼠皮质融合切片进行了氨基酸代谢研究。在严重缺氧期间,代谢5 mM [2-(13)C]丙酮酸的脑片将[2-(13)C]丙氨酸输出到灌注液中。通过将脑片与10 mM葡萄糖和2 mM [2-(13)C,15N]丙氨酸进行超融合来测试常氧和低氧期间丙氨酸的代谢命运。外源性丙氨酸的代谢导致天冬氨酸释放到超融合液中。天门冬氨酸的标记模式表明它是通过神经胶质特异性酶丙酮酸羧化酶合成的。产生了13C标记的谷氨酸盐,同时具有常氧和低氧,但浓度比标记的天冬氨酸低30倍。因此,尽管在低氧条件下不能从丙氨酸合成大量的谷氨酸,但是大量产生天冬氨酸,其作为兴奋性氨基酸也可能具有有害作用。

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