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谷氨酸与谷氨酸受体结合过程中相互作用的演变。

Evolution of glutamate interactions during binding to a glutamate receptor.

作者信息

Cheng Qing, Du Mei, Ramanoudjame Gomathi, Jayaraman Vasanthi

机构信息

Department of Integrative Biology and Pharmacology, University of Texas Health Science Center, Houston, Texas 77030, USA.

出版信息

Nat Chem Biol. 2005 Nov;1(6):329-32. doi: 10.1038/nchembio738. Epub 2005 Sep 25.

Abstract

Glutamate receptors are the predominant mediators of excitatory synaptic signals in the central nervous system and are important in learning and memory as well as in diverse neuropathologies including epilepsy and ischemia. Their primary function is to receive the chemical signal glutamate (1), which binds to an extracellular domain in the receptor, and convert it into an electrical signal through the formation of cation-permeable transmembrane channels. Recently described end-state apo and ligated structures of the ligand-binding domain of a rat glutamate receptor provide a first view of specific molecular interactions between the ligand and the receptor that are central to the allosteric regulation of function in this protein. Yet there is little information on the mechanism and the structures of intermediates (if any) formed during the ligand-binding process. Here we have used time-resolved vibrational spectroscopy to show that the process involves a sequence of interleaved ligand and protein changes that starts with the docking of glutamate at the alpha-carboxylate moiety and ends with the establishment of the interactions between the gamma-carboxylate of glutamate and the protein.

摘要

谷氨酸受体是中枢神经系统中兴奋性突触信号的主要介质,在学习和记忆以及包括癫痫和缺血在内的多种神经病理学中都很重要。它们的主要功能是接收化学信号谷氨酸(1),谷氨酸与受体的细胞外结构域结合,并通过形成阳离子通透的跨膜通道将其转化为电信号。最近描述的大鼠谷氨酸受体配体结合结构域的终态脱辅基和结合配体的结构,首次展示了配体与受体之间特定分子相互作用的情况,这些相互作用是该蛋白质功能变构调节的核心。然而,关于配体结合过程中形成的中间体(如果有的话)的机制和结构,几乎没有相关信息。在这里,我们使用时间分辨振动光谱表明,该过程涉及一系列交错的配体和蛋白质变化,始于谷氨酸在α-羧基部分的对接,止于谷氨酸γ-羧基与蛋白质之间相互作用的建立。

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