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GABAergic Transmission and Chloride Equilibrium Potential Are Not Modulated by Pyruvate in the Developing Optic Tectum of Xenopus laevis Tadpoles

机译:非洲爪蟾the发育中的视盘中的丙酮酸不会调节GABA的能传递和氯离子的平衡。

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摘要

In the developing mammalian brain, gamma-aminobutyric acid (GABA) is thought to play an excitatory rather than an inhibitory role due to high levels of intracellular Cl− in immature neurons. This idea, however, has been questioned by recent studies which suggest that glucose-based artificial cerebrospinal fluid (ACSF) may be inadequate for experiments on immature and developing brains. These studies suggest that immature neurons may require alternative energy sources, such as lactate or pyruvate. Lack of these other energy sources is thought to result in artificially high intracellular Cl− concentrations, and therefore a more depolarized GABA receptor (GABAR) reversal potential. Since glucose metabolism can vary widely among different species, it is important to test the effects of these alternative energy sources on different experimental preparations. We tested whether pyruvate affects GABAergic transmission in isolated brains of developing wild type Xenopus tadpoles in vitro by recording the responsiveness of tectal neurons to optic nerve stimulation, and by measuring currents evoked by local GABA application in a gramicidin perforated patch configuration. We found that, in contrast with previously reported results, the reversal potential for GABAR-mediated currents does not change significantly between developmental stages 45 and 49. Partial substitution of glucose by pyruvate had only minor effects on both the GABA reversal potential, and the responsiveness of tectal neurons at stages 45 and 49. Total depletion of energy sources from the ACSF did not affect neural responsiveness. We also report a strong spatial gradient in GABA reversal potential, with immature cells adjacent to the lateral and caudal proliferative zones having more positive reversal potentials. We conclude that in this experimental preparation standard glucose-based ACSF is an appropriate extracellular media for in vitro experiments.
机译:在发育中的哺乳动物大脑中,由于未成熟神经元中细胞内Cl-的含量高,γ-氨基丁酸(GABA)被认为起兴奋作用而不是抑制作用。但是,最近的研究对这一想法提出了质疑,这些研究表明,基于葡萄糖的人工脑脊液(ACSF)可能不足以在未成熟和发育中的大脑上进行实验。这些研究表明,不成熟的神经元可能需要替代能源,例如乳酸或丙酮酸。人们认为缺少这些其他能源会导致人为地提高细胞内Cl-的浓度,因此会导致去极化的GABA受体(GABAR)逆转的可能性更高。由于不同物种之间的葡萄糖代谢差异很大,因此测试这些替代能源对不同实验制剂的影响非常重要。我们通过记录tectal神经元对视神经刺激的反应能力,以及通过测量由短杆菌肽穿孔的贴片配置引起的局部GABA引起的电流,来测试丙酮酸是否会影响野生型非洲爪蟾t离体大脑中的GABA能传递。我们发现,与先前报道的结果相反,GABAR介导的电流的逆转电位在发育阶段45和49之间没有显着变化。丙酮酸部分取代葡萄糖对GABA逆转电位和响应性均仅有很小的影响在第45和第49阶段的末梢神经元数量减少。来自ACSF的能量总消耗没有影响神经反应性。我们还报告了GABA逆转势的强烈空间梯度,与外侧和尾端增生区相邻的未成熟细胞具有更多的正逆转势。我们得出的结论是,在此实验准备中,基于葡萄糖的标准ACSF是体外实验的合适细胞外培养基。

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