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Dynamic regulation of glycine–GABA co-transmission at spinal inhibitory synapses by neuronal glutamate transporter

机译:谷氨酸转运蛋白在脊髓抑制性突触中对甘氨酸-GABA共传递的动态调节

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摘要

Fast inhibitory neurotransmission in the central nervous system is mediated by γ-aminobutyric acid (GABA) and glycine, which are accumulated into synaptic vesicles by a common vesicular inhibitory amino acid transporter (VIAAT) and are then co-released. However, the mechanisms that control the packaging of GABA + glycine into synaptic vesicles are not fully understood. In this study, we demonstrate the dynamic control of the GABA–glycine co-transmission by the neuronal glutamate transporter, using paired whole-cell patch recording from monosynaptically coupled cultured spinal cord neurons derived from VIAAT-Venus transgenic rats. Short step depolarization of presynaptic neurons evoked unitary (cell-to-cell) inhibitory postsynaptic currents (IPSCs). Under normal conditions, the fractional contribution of postsynaptic GABA or glycine receptors to the unitary IPSCs did not change during a 1 h recording. Intracellular loading of GABA or glycine via a patch pipette enhanced the respective components of inhibitory transmission, indicating the importance of the cytoplasmic concentration of inhibitory transmitters. Raised extracellular glutamate levels increased the amplitude of GABAergic IPSCs but reduced glycine release by enhancing glutamate uptake. Similar effects were observed when presynaptic neurons were intracellularly perfused with glutamate. Interestingly, high-frequency trains of stimulation decreased glycinergic IPSCs more than GABAergic IPSCs, and repetitive stimulation occasionally failed to evoke glycinergic but not GABAergic IPSCs. The present results suggest that the enhancement of GABA release by glutamate uptake may be advantageous for rapid vesicular refilling of the inhibitory transmitter at mixed GABA/glycinergic synapses and thus may help prevent hyperexcitability.
机译:γ-氨基丁酸(GABA)和甘氨酸介导中枢神经系统中的快速抑制性神经传递,γ-氨基丁酸和甘氨酸通过常见的囊泡抑制性氨基酸转运蛋白(VIAAT)积累到突触囊泡中,然后共释放。但是,控制GABA +甘氨酸包装到突触小泡中的机制尚不完全清楚。在这项研究中,我们证明了神经元谷氨酸转运蛋白对GABA-甘氨酸共传递的动态控制,使用了来自VIAAT-金星转基因大鼠的单突触耦合培养脊髓神经元的成对全细胞膜片记录。突触前神经元的短步去极化引起单一(细胞间)抑制性突触后电流(IPSC)。在正常情况下,在1 h的记录过程中,突触后GABA或甘氨酸受体对单一IPSC的分数贡献没有改变。通过贴片移液管将GABA或甘氨酸的细胞内负荷增强了抑制性传递的各个成分,表明抑制性递质的细胞质浓度的重要性。升高的细胞外谷氨酸水平增加了GABA能的IPSC的幅度,但通过增加谷氨酸的吸收减少了甘氨酸的释放。当向突触前神经元细胞内灌注谷氨酸盐时,观察到类似的效果。有趣的是,高频刺激比GABA能IPSC更能降低甘氨酸IPSC,而重复刺激有时不能唤起甘氨酸IPSC,而不能引起GABA能IPSC。目前的结果表明,通过谷氨酸的吸收来增强GABA的释放可能有利于在混合的GABA /甘氨酸能突触处快速水泡补充抑制性递质,因此可能有助于防止过度兴奋。

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