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速激肽NK-1受体中拮抗剂结合位点向金属离子位点的转变。

Conversion of antagonist-binding site to metal-ion site in the tachykinin NK-1 receptor.

作者信息

Elling C E, Nielsen S M, Schwartz T W

机构信息

Department of Clinical Biochemistry, Rigshospitalet 6321, Copenhagen, Denmark.

出版信息

Nature. 1995 Mar 2;374(6517):74-7. doi: 10.1038/374074a0.

Abstract

Mutational analysis of the tachykinin NK-1 (refs 1-7), NK-2 (ref. 8) and angiotensin AT-1 (refs 9, 10) receptors indicates that non-peptide antagonists act through residues located between the seven transmembrane segments, whereas natural peptide agonists bind mainly to residues scattered in the exterior part of the receptor. The presumed contact points for the prototype NK-1 antagonist CP96,345 cluster on opposing faces of the outer portions of transmembrane helices V and VI (refs 1-5). Here we show that systematic introduction of histidyl residues at this antagonist-binding site in the human NK-1 receptor gradually converts it into a high-affinity metal-ion-binding site without affecting agonist binding. In a double mutant with histidine residues substituted at the top of transmembrane segments V and VI, respectively, Zn2+ inhibits binding of radiolabelled agonist peptide and efficiently blocks phosphoinositol turnover induced by substance P. We propose that Zn2+ and CP96,345 act as 'allosteric competitive' antagonists by stabilizing inactive conformations of the mutant and the wild-type receptor respectively. Introduction of metal-ion-binding sites could be used as a general tool in the structural and functional characterization of helix-helix interactions in G-protein-coupled receptors, as well as in other membrane proteins.

摘要

速激肽NK-1受体(参考文献1 - 7)、NK-2受体(参考文献8)和血管紧张素AT-1受体(参考文献9、10)的突变分析表明,非肽类拮抗剂通过位于七个跨膜区段之间的残基起作用,而天然肽类激动剂主要与分散在受体外部的残基结合。原型NK-1拮抗剂CP96,345的假定接触点聚集在跨膜螺旋V和VI外部相对的面上(参考文献1 - 5)。在此我们表明,在人NK-1受体的这个拮抗剂结合位点系统性引入组氨酸残基会逐渐将其转变为一个高亲和力的金属离子结合位点,而不影响激动剂结合。在一个分别在跨膜区段V和VI顶部替换了组氨酸残基的双突变体中,Zn2+抑制放射性标记激动剂肽的结合,并有效阻断P物质诱导的磷酸肌醇周转。我们提出,Zn2+和CP96,345分别通过稳定突变体和野生型受体的无活性构象而作为“变构竞争性”拮抗剂。引入金属离子结合位点可作为一种通用工具,用于G蛋白偶联受体以及其他膜蛋白中螺旋 - 螺旋相互作用的结构和功能表征。

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