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首页> 外文期刊>Journal of Neuroscience Research >Mechanisms underlying Li+ effects in glutamatergic and GABAergic neurotransmissions in the adult rat brain and in primary cultures of neural cells as revealed by 13C NMR.
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Mechanisms underlying Li+ effects in glutamatergic and GABAergic neurotransmissions in the adult rat brain and in primary cultures of neural cells as revealed by 13C NMR.

机译:13 C NMR揭示了成年大鼠大脑和神经细胞原代培养物中谷氨酸能和GABA能神经传递中Li +效应的潜在机制。

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We investigated by (13)C nuclear magnetic resonance (NMR) the mechanisms underlying Li(+) effects on glutamatergic and GABAergic neurotransmission systems in the adult rat brain and in primary cultures of cortical neurons and astrocytes during the metabolism of (1-(13)C) glucose or (2-(13)C) acetate. Adult male rats receiving a single dose of Li(+) intraperitoneally (7 mmol/kg) were infused 2 hr later, for 60 min, with (1-(13)C) glucose (80 mumol/min/kg) or (2-(13)C) acetate (240 micromol/min/kg). High-resolution (13)C NMR spectra of brain extracts prepared after the infusion revealed that Li(+) significantly decreased the incorporation of (13)C in glutamate and GABA (gamma-aminobutyric acid) carbons from (1-(13)C) glucose, but not from (2-(13)C) acetate. To complement the in vivo approach, primary cultures of cortical neurons or astrocytes were incubated with 1 mM uniformly (13)C-labeled glucose or 5 mM (2-(13)C) acetate, in the absence and presence of increasing Li(+) concentrations up to 15 mM. Under these conditions, Li(+) significantly decreased neuronal glucose uptake in a concentration-dependent manner without apparent effects on astrocytic acetate uptake. Extracts prepared at the end of the incubations showed that Li(+) significantly decreased the incorporation of (13)C labeling into GABA carbons from its precursor glutamate in neurons, but such a decrease into glutamine carbons in astrocytes was not statistically significant. Our results indicate that the effects of Li(+) are mediated through a reduction of neuronal glucose uptake, resulting in a decrease of glutamatergic and GABAergic neurotransmission without apparent effects on astrocytic metabolism.
机译:我们通过(13)C核磁共振(NMR)研究了Li(+)对成年大鼠大脑以及皮层神经元和星形胶质细胞在(1-(13)代谢期间的谷氨酸和GABA能神经传递系统的影响的潜在机制)C)葡萄糖或(2-(13)C)乙酸盐。成年雄性大鼠腹膜内接受单剂量Li(+)(7 mmol / kg),在2小时后60分钟内注入(1-(13)C)葡萄糖(80 mumol / min / kg)或(2 -(13)C)乙酸酯(240 micromol / min / kg)。输注后制备的脑提取物的高分辨率(13)C NMR谱图显示,Li(+)显着降低了(13-C)谷氨酸和GABA(γ-氨基丁酸)碳中(13)C的掺入)葡萄糖,但不是来自(2-(13)C)乙酸盐。为了补充体内方法,在不存在和存在增加的Li(+)的情况下,将皮质神经元或星形胶质细胞的原代培养物与1 mM均匀(13)C标记的葡萄糖或5 mM(2-(13)C)乙酸盐一起孵育。 )浓度高达15 mM。在这些条件下,Li(+)以浓度依赖的方式显着降低了神经元葡萄糖的摄取,而对星形细胞乙酸酯的摄取没有明显影响。在孵育结束时制备的提取物显示,Li(+)显着降低了神经元中前体谷氨酸盐将(13)C标记掺入GABA碳中,但星形胶质细胞中谷氨酰胺碳的这种减少在统计学上并不显着。我们的结果表明,Li(+)的作用是通过减少神经元葡萄糖摄取介导的,从而导致谷氨酸能和GABA能神经传递的减少,而对星形细胞代谢没有明显影响。

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