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首页> 外文期刊>Biochimica et biophysica acta. Biomembranes >Structural features of the apelin receptor N-terminal tail and first transmembrane segment implicated in ligand binding and receptor trafficking
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Structural features of the apelin receptor N-terminal tail and first transmembrane segment implicated in ligand binding and receptor trafficking

机译:apelin受体N末端尾部和第一个跨膜片段的结构特征与配体结合和受体运输有关

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G-protein coupled receptors (GPCRs) comprise a large family of membrane proteins with rich functional diversity. Signaling through the apelin receptor (AR or APJ) influences the cardiovascular system, central nervous system and glucose regulation. Pathophysiological involvement of apelin has been shown in atherosclerosis, cancer, human immunodeficiency virus-1 (HIV-1) infection and obesity. Here, we present the high-resolution nuclear magnetic resonance (NMR) spectroscopy-based structure of the N-terminus and first transmembrane (TM) segment of AR (residues 1-55, AR55) in dodecylphosphocholine micelles. AR55 consists of two disrupted helices, spanning residues D14-K25 and A29-R55 1.59. Molecular dynamics (MD) simulations of AR built from a hybrid of experimental NMR and homology model-based restraints allowed validation of the AR55 structure in the context of the full-length receptor in a hydrated bilayer. AR55 structural features were functionally probed using mutagenesis in full-length AR through monitoring of apelin-induced extracellular signal-regulated kinase (ERK) phosphorylation in transiently transfected human embryonic kidney (HEK) 293A cells. Residues E20 and D23 form an extracellular anionic face and interact with lipid headgroups during MD simulations in the absence of ligand, producing an ideal binding site for a cationic apelin ligand proximal to the membrane-water interface, lending credence to membrane-catalyzed apelin-AR binding. In the TM region of AR55, N461.50 is central to a disruption in helical character. G421.46, G451.49 and N461.50, which are all involved in the TM helical disruption, are essential for proper trafficking of AR. In summary, we introduce a new correlative NMR spectroscopy and computational biochemistry methodology and demonstrate its utility in providing some of the first high-resolution structural information for a peptide-activated GPCR TM domain.
机译:G蛋白偶联受体(GPCR)包含功能丰富的膜蛋白家族。通过apelin受体(AR或APJ)发出的信号会影响心血管系统,中枢神经系统和葡萄糖调节。在动脉粥样硬化,癌症,人类免疫缺陷病毒1(HIV-1)感染和肥胖症中已显示出apelin的病理生理学参与。在这里,我们介绍十二烷基磷酸胆碱胶束中AR(残基1-55,AR55)的N端和第一个跨膜(TM)段的高分辨率核磁共振(NMR)光谱结构。 AR55由两个破坏的螺旋组成,跨越残基D14-K25和A29-R55 1.59。由实验NMR和基于同源性模型的约束混合而成的AR的分子动力学(MD)模拟可以在水合双层中全长受体的情况下验证AR55结构。通过在瞬时转染的人胚胎肾(HEK)293A细胞中监测apelin诱导的细胞外信号调节激酶(ERK)磷酸化,在全长AR中使用诱变功能对AR55的结构特征进行了功能性探测。残留物E20和D23形成细胞外阴离子表面并在不存在配体的MD模拟过程中与脂质头基相互作用,从而为靠近膜-水界面的阳离子apelin配体产生理想的结合位点,从而增强了膜催化的apelin-AR的可信度捆绑。在AR55的TM区域,N461.50是螺旋特性破坏的关键。 G421.46,G451.49和N461.50都与TM螺旋破坏有关,它们对于正确贩运AR至关重要。总而言之,我们介绍了一种新的相关NMR光谱学和计算生物化学方法,并证明了其在为肽激活的GPCR TM域提供某些第一批高分辨率结构信息方面的效用。

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