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首页> 外文期刊>Neurochemical Research >Metabolism of [1,6-13C]Glucose and [U-13C]Glutamine and Depolarization Induced GABA Release in Superfused Mouse Cerebral Cortical Mini-slices
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Metabolism of [1,6-13C]Glucose and [U-13C]Glutamine and Depolarization Induced GABA Release in Superfused Mouse Cerebral Cortical Mini-slices

机译:[1,6-13 C]葡萄糖和[U-13 C]谷氨酰胺的代谢及去极化诱导超融合小鼠脑皮质小切片中GABA的释放

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摘要

Mouse cerebral cortical mini-slices were used in a superfusion system to monitor depolarization-induced (55 mM K+) release of preloaded [2,3-3H]GABA and to investigate the biosynthesis of glutamate, GABA and aspartate during physiological and depolarizing (55 mM K+) conditions from either [1,6-13C]glucose or [U-13C]glutamine. Depolarization-induced GABA release could be reduced (50%) by the GABA transport inhibitor tiagabine (25 μM) or by replacing Ca2+ with Co2+. In the presence of both tiagabine and Co2+ (1 mM), release was abolished completely. The release observed in the presence of 25 μM tiagabine thus represents vesicular release. Superfusion in the presence of [1,6-13C]glucose led to considerable labeling in the three amino acids, the labeling in glutamate and aspartate being increased after depolarization. This condition had no effect on GABA labeling. For all three amino acids, the distribution of label in the different carbon atoms revealed on increased tricarboxylic acid (TCA) activity during depolarization. When [U-13C]glutamine was used as substrate, labeling in glutamate was higher than that in GABA and aspartate and the fraction of glutamate and aspartate being synthesized by participation of the TCA cycle was increased by depolarization, an effect not seen for GABA. However, GABA synthesis reflected TCA cycle involvement to a much higher extent than for glutamate and aspartate. The results show that this preparation of brain tissue with intact cellular networks is well suited to study metabolism and release of neurotransmitter amino acids under conditions mimicking neural activity.
机译:小鼠大脑皮层微型切片用于超融合系统中,以监测去极化诱导的(2,3-3 H] GABA的去极化诱导(55 mM K + )释放,并研究谷氨酸的生物合成, [1,6-13 C]葡萄糖或[U-13 C]谷氨酰胺在生理和去极化(55 mM K + )条件下的GABA和天冬氨酸。用GABA转运抑制剂替加宾(25μM)或用Co2 +代替Ca2 +可以减少去极化诱导的GABA释放(50%)。在存在tiagabine和Co2 + (1 mM)的情况下,释放被完全消除。因此,在存在25μM替加宾的情况下观察到的释放代表了囊泡释放。在[1,6-13C]葡萄糖存在下的超融合导致三个氨基酸中的大量标记,去极化后谷氨酸和天冬氨酸的标记增加。这种情况对GABA标记没有影响。对于所有三个氨基酸,在去极化过程中,三羧酸(TCA)活性的增加揭示了标记在不同碳原子中的分布。当以[U-13 C]谷氨酰胺为底物时,谷氨酸中的标记高于GABA和天冬氨酸中的标记,并且通过去极化增加了由TCA循环参与而合成的谷氨酸和天冬氨酸的比例,这是一种效果没有看到GABA。但是,GABA的合成反映了TCA循环的参与程度远高于谷氨酸和天冬氨酸。结果表明,这种具有完整细胞网络的脑组织制剂非常适合在模拟神经活动的条件下研究神经递质氨基酸的代谢和释放。

著录项

  • 来源
    《Neurochemical Research》 |2008年第8期|1610-1617|共8页
  • 作者单位

    Department of Pharmacology and Pharmacotherapy Faculty of Pharmaceutical Sciences University of Copenhagen Universitetsparken 2 2100 Copenhagen Denmark;

    Department of Pharmacology and Pharmacotherapy Faculty of Pharmaceutical Sciences University of Copenhagen Universitetsparken 2 2100 Copenhagen Denmark;

    Department of Pharmacology and Pharmacotherapy Faculty of Pharmaceutical Sciences University of Copenhagen Universitetsparken 2 2100 Copenhagen Denmark;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Glutamate; Aspartate; Neurons; Neurotransmission;

    机译:谷氨酸;天冬氨酸;神经元;神经传递;

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