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Molecular bases of NMDA receptor subtype-dependent properties

机译:NMDA受体亚型依赖性特性的分子基础

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NMDA receptors (NMDARs) are a class of ionotropic glutamate receptors (iGluRs) that are essential for neuronal development, synaptic plasticity, learning and cell survival. Several features distinguish NMDARs from other iGluRs and underlie the crucial roles NMDARs play in nervous system physiology. NMDARs display slow deactivation kinetics, are highly Ca2+ permeable, and require depolarization to relieve channel block by external Mg2+ ions, thereby making them effective coincidence detectors. These properties and others differ among NMDAR subtypes, which are defined by the subunits that compose the receptor. NMDARs, which are heterotetrameric, commonly are composed of two GluN1 subunits and two GluN2 subunits, of which there are four types, GluN2A-D. Diheteromeric' NMDARs contain two identical GluN2 subunits. Gating and ligand-binding properties (e.g. deactivation kinetics) and channel properties (e.g. channel block by Mg2+) depend strongly on the GluN2 subunit contained in diheteromeric NMDARs. Recent work shows that two distinct regions of GluN2 subunits control most diheteromeric NMDAR subtype-dependent properties: the N-terminal domain is responsible for most subtype dependence of gating and ligand-binding properties; a single residue difference between GluN2 subunits at a site termed the GluN2 S/L site is responsible for most subtype dependence of channel properties. Thus, two structurally and functionally distinct regions underlie the majority of subtype dependence of NMDAR properties. This topical review highlights recent studies of recombinant diheteromeric NMDARs that uncovered the involvement of the N-terminal domain and of the GluN2 S/L site in the subtype dependence of NMDAR properties.
机译:NMDA受体(NMDAR)是一类离子型谷氨酸受体(iGluR),对于神经元发育,突触可塑性,学习和细胞存活至关重要。 NMDAR与其他iGluR的不同之处在于其几个特征,它们是NMDAR在神经系统生理学中发挥关键作用的基础。 NMDAR显示出缓慢的失活动力学,具有很高的Ca2 +渗透性,并且需要去极化以缓解外部Mg2 +离子对通道的阻塞,从而使其成为有效的巧合检测器。这些性质和其他性质在NMDAR亚型之间有所不同,NMDAR亚型由组成受体的亚基定义。 NMDAR是异四聚体,通常由两个GluN1亚基和两个GluN2亚基组成,其中有四种类型,即GluN2A-D。二聚体的NMDAR包含两个相同的GluN2亚基。门控和配体结合特性(例如失活动力学)和通道特性(例如Mg2 +阻断通道)在很大程度上取决于二聚体NMDAR中包含的GluN2亚基。最近的研究表明,GluN2亚基的两个不同区域控制着大多数二聚体NMDAR亚型依赖的特性:N末端域负责门控和配体结合特性的大多数亚型依赖。在称为GluN2 S / L位点的位点上,GluN2亚基之间的单个残基差异是造成通道特性的大多数亚型依赖性的原因。因此,两个结构和功能上不同的区域是NMDAR属性的大多数亚型依赖性的基础。这篇专题综述着重介绍了重组二聚体NMDAR的最新研究,该研究揭示了N末端结构域和GluN2 S / L位点参与了NMDAR特性的亚型依赖性。

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