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离子型谷氨酸受体N端结构域的结构、动力学及变构潜力

Structure, Dynamics, and Allosteric Potential of Ionotropic Glutamate Receptor N-Terminal Domains.

作者信息

Krieger James, Bahar Ivet, Greger Ingo H

机构信息

Neurobiology Division, MRC Laboratory of Molecular Biology, Cambridge, UK.

Department of Computational and Systems Biology, School of Medicine, University of Pittsburgh, Pittsburgh, Pennsylvania.

出版信息

Biophys J. 2015 Sep 15;109(6):1136-48. doi: 10.1016/j.bpj.2015.06.061. Epub 2015 Aug 6.

Abstract

Ionotropic glutamate receptors (iGluRs) are tetrameric cation channels that mediate synaptic transmission and plasticity. They have a unique modular architecture with four domains: the intracellular C-terminal domain (CTD) that is involved in synaptic targeting, the transmembrane domain (TMD) that forms the ion channel, the membrane-proximal ligand-binding domain (LBD) that binds agonists such as L-glutamate, and the distal N-terminal domain (NTD), whose function is the least clear. The extracellular portion, comprised of the LBD and NTD, is loosely arranged, mediating complex allosteric regulation and providing a rich target for drug development. Here, we briefly review recent work on iGluR NTD structure and dynamics, and further explore the allosteric potential for the NTD in AMPA-type iGluRs using coarse-grained simulations. We also investigate mechanisms underlying the established NTD allostery in NMDA-type iGluRs, as well as the fold-related metabotropic glutamate and GABAB receptors. We show that the clamshell motions intrinsically favored by the NTD bilobate fold are coupled to dimeric and higher-order rearrangements that impact the iGluR LBD and ultimately the TMD. Finally, we explore the dynamics of intact iGluRs and describe how it might affect receptor operation in a synaptic environment.

摘要

离子型谷氨酸受体(iGluRs)是介导突触传递和可塑性的四聚体阳离子通道。它们具有独特的模块化结构,包含四个结构域:参与突触靶向的细胞内C末端结构域(CTD)、形成离子通道的跨膜结构域(TMD)、结合L-谷氨酸等激动剂的膜近端配体结合结构域(LBD)以及功能最不明确的远端N末端结构域(NTD)。由LBD和NTD组成的细胞外部分排列松散,介导复杂的变构调节,并为药物开发提供了丰富的靶点。在这里,我们简要回顾了关于iGluR NTD结构和动力学的最新研究,并使用粗粒度模拟进一步探索了AMPA型iGluRs中NTD的变构潜力。我们还研究了NMDA型iGluRs中已确定的NTD变构的潜在机制,以及与折叠相关的代谢型谷氨酸受体和GABAB受体。我们表明,NTD双叶折叠本质上有利于的翻盖运动与影响iGluR LBD并最终影响TMD的二聚体和高阶重排相关联。最后,我们探索了完整iGluRs的动力学,并描述了它如何可能影响突触环境中的受体运作。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1e1d/4576161/92509eae8c17/gr1.jpg

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