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Nerve Terminal GABAA Receptors Activate Ca2+/Calmodulin-dependent Signaling to Inhibit Voltage-gated Ca2+ Influx and Glutamate Release*

机译:神经末端GABAA受体激活 Ca2 + /钙调蛋白依赖性信号传导抑制电压门控 Ca2 +流入和谷氨酸 释放*

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摘要

γ-Aminobutyric acid type A (GABAA) receptors, a family of Cl--permeable ion channels, mediate fast synaptic inhibition as postsynaptically enriched receptors for γ-aminobutyric acid at GABAergic synapses. Here we describe an alternative type of inhibition mediated by GABAA receptors present on neocortical glutamatergic nerve terminals and examine the underlying signaling mechanism(s). By monitoring the activity of the presynaptic CaM kinase II/synapsin I signaling pathway in isolated nerve terminals, we demonstrate that GABAA receptor activation correlated with an increase in basal intraterminal [Ca2+]i. Interestingly, this activation of GABAA receptors resulted in a reduction of subsequent depolarization-evoked Ca2+ influx, which thereby led to an inhibition of glutamate release. To investigate how the observed GABAA receptor-mediated modulation operates, we determined the sensitivity of this process to the Na-K-2Cl cotransporter 1 antagonist bumetanide, as well as substitution of Ca2+ with Ba2+, or Ca2+/calmodulin inhibition by W7. All of these treatments abolished the modulation by GABAA receptors. Application of selective antagonists of voltage-gated Ca2+ channels (VGCCs) revealed that the GABAA receptor-mediated modulation of glutamate release required the specific activity of L- and R-type VGCCs. Crucially, the inhibition of release by these receptors was abolished in terminals isolated from R-type VGCC knock-out mice. Together, our results indicate that a functional coupling between nerve terminal GABAA receptors and L- or R-type VGCCs is mediated by Ca2+/calmodulin-dependent signaling. This mechanism provides a GABA-mediated control of glutamatergic synaptic activity by a direct inhibition of glutamate release.
机译:A型γ-氨基丁酸(GABAA)受体(一种可透过Cl的离子通道)介导快速的突触抑制,作为GABA能突触中γ-氨基丁酸的突触后富集受体。在这里,我们描述了由新皮质谷氨酸能神经末梢上存在的GABA A受体介导的另一种抑制类型,并研究了潜在的信号传导机制。通过监测孤立的神经末梢中突触前CaM激酶II /突触素I信号传导途径的活性,我们证明GABAA受体激活与基底内端[Ca2 +] i的增加有关。有趣的是,GABAA受体的这种激活导致随后的去极化诱发的Ca2 +内流减少,从而导致谷氨酸释放受到抑制。为了调查观察到的GABAA受体介导的调节如何运作,我们确定了该过程对Na-K-2Cl共转运蛋白1拮抗剂布美他尼的敏感性,以及用W2取代Ca2 +或Ba2 +或Ca2 + /钙调蛋白的抑制作用。所有这些治疗都消除了GABAA受体的调节作用。电压门控Ca2 +通道(VGCC)的选择性拮抗剂的应用表明,GABAA受体介导的谷氨酸释放调节需要L型和R型VGCC的特定活性。至关重要的是,在从R型VGCC敲除小鼠中分离的末端中,这些受体对释放的抑制作用被消除了。总之,我们的结果表明,神经末梢GABAA受体与L型或R型VGCC之间的功能偶联是由Ca2 + /钙调蛋白依赖性信号传导介导的。该机制通过直接抑制谷氨酸盐的释放,提供了GABA介导的谷氨酸能突触活性的控制。

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