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Molecular and functional heterogeneity of GABAergic synapses

机译:GABA能突触的分子和功能异质性

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摘要

Knowledge of the functional organization of the GABAergic system, the main inhibitory neurotransmitter system, in the CNS has increased remarkably in recent years. In particular, substantial progress has been made in elucidating the molecular mechanisms underlying the formation and plasticity of GABAergic synapses. Evidence available ascribes a key role to the cytoplasmic protein gephyrin to form a postsynaptic scaffold anchoring GABAA receptors along with other transmembrane proteins and signaling molecules in the postsynaptic density. However, the mechanisms of gephyrin scaffolding remain elusive, notably because gephyrin can auto-aggregate spontaneously and lacks PDZ protein interaction domains found in a majority of scaffolding proteins. In addition, the structural diversity of GABAA receptors, which are pentameric channels encoded by a large family of subunits, has been largely overlooked in these studies. Finally, the role of the dystrophin-glycoprotein complex, present in a subset of GABAergic synapses in cortical structures, remains ill-defined. In this review, we discuss recent results derived mainly from the analysis of mutant mice lacking a specific GABAA receptor subtype or a core protein of the GABAergic postsynaptic density (neuroligin-2, collybistin), highlighting the molecular diversity of GABAergic synapses and its relevance for brain plasticity and function. In addition, we discuss the contribution of the dystrophin-glycoprotein complex to the molecular and functional heterogeneity of GABAergic synapses.
机译:近年来,CNS中主要的抑制性神经递质系统GABA能系统的功能组织知识显着增加。特别地,在阐明GABA能突触的形成和可塑性基础的分子机制方面已取得实质性进展。已有证据表明,胞质蛋白gephyrin在形成突触后支架以及其他跨膜蛋白和信号分子在突触后密度中锚定GABA A 受体具有关键作用。但是,gephyrin支架的机制仍然难以捉摸,特别是因为gephyrin可以自发自动聚集并且缺乏大多数支架蛋白中存在的PDZ蛋白相互作用域。此外,在这些研究中,GABA A 受体的结构多样性是由大量亚基家族编码的五聚体通道,在很大程度上被忽视了。最后,肌营养不良蛋白-糖蛋白复合物在皮质结构的GABA能突触子集中存在的作用仍然不清楚。在这篇综述中,我们讨论了最近的结果,这些结果主要来自缺乏特定的GABA A 受体亚型或GABA能突触后密度的核心蛋白(神经胶蛋白2,胶体双素)的突变小鼠的分析,突出了分子GABA能突触的多样性及其与大脑可塑性和功能的相关性。此外,我们讨论了肌营养不良蛋白-糖蛋白复合物对GABA能突触的分子和功能异质性的贡献。

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