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血管内皮生长因子受体2激活过程中替代跨膜结构域构象的结构与功能特征

Structural and functional characterization of alternative transmembrane domain conformations in VEGF receptor 2 activation.

作者信息

Manni Sandro, Mineev Konstantin S, Usmanova Dinara, Lyukmanova Ekaterina N, Shulepko Mikhail A, Kirpichnikov Mikhail P, Winter Jonas, Matkovic Milos, Deupi Xavier, Arseniev Alexander S, Ballmer-Hofer Kurt

机构信息

Paul Scherrer Institute, Biomolecular Research, 5232 Villigen PSI, Switzerland.

Shemyakin-Ovchinnikov Institute of Bioorganic Chemistry RAS, Miklukho-Maklaya Street 16/10, Moscow 117997, Russian Federation.

出版信息

Structure. 2014 Aug 5;22(8):1077-1089. doi: 10.1016/j.str.2014.05.010. Epub 2014 Jun 26.

Abstract

Transmembrane signaling by receptor tyrosine kinases (RTKs) entails ligand-mediated dimerization and structural rearrangement of the extracellular domains. RTK activation also depends on the specific orientation of the transmembrane domain (TMD) helices, as suggested by pathogenic, constitutively active RTK mutants. Such mutant TMDs carry polar amino acids promoting stable transmembrane helix dimerization, which is essential for kinase activation. We investigated the effect of polar amino acids introduced into the TMD of vascular endothelial growth factor receptor 2, regulating blood vessel homeostasis. Two mutants showed constitutive kinase activity, suggesting that precise TMD orientation is mandatory for kinase activation. Nuclear magnetic resonance spectroscopy revealed that TMD helices in activated constructs were rotated by 180° relative to the interface of the wild-type conformation, confirming that ligand-mediated receptor activation indeed results from transmembrane helix rearrangement. A molecular dynamics simulation confirmed the transmembrane helix arrangement of wild-type and mutant TMDs revealed by nuclear magnetic resonance spectroscopy.

摘要

受体酪氨酸激酶(RTK)介导的跨膜信号传导需要配体介导的细胞外结构域二聚化和结构重排。如致病性、组成型活性RTK突变体所示,RTK激活还取决于跨膜结构域(TMD)螺旋的特定取向。此类突变TMD携带促进稳定跨膜螺旋二聚化的极性氨基酸,这对激酶激活至关重要。我们研究了引入血管内皮生长因子受体2的TMD中的极性氨基酸对调节血管稳态的影响。两个突变体表现出组成型激酶活性,表明精确的TMD取向是激酶激活所必需的。核磁共振光谱显示,激活构建体中的TMD螺旋相对于野生型构象的界面旋转了180°,证实配体介导的受体激活确实是由跨膜螺旋重排引起的。分子动力学模拟证实了核磁共振光谱揭示的野生型和突变体TMD的跨膜螺旋排列。

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