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Structure of a nanobody-stabilized active state of the β(2) adrenoceptor.β2 肾上腺素能受体的纳米体稳定的活性状态结构。
Nature. 2011 Jan 13;469(7329):175-80. doi: 10.1038/nature09648.
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A structural insight into the reorientation of transmembrane domains 3 and 5 during family A G protein-coupled receptor activation.家族 A G 蛋白偶联受体激活过程中跨膜结构域 3 和 5 重定位的结构见解。
Mol Pharmacol. 2011 Feb;79(2):262-9. doi: 10.1124/mol.110.066068. Epub 2010 Nov 16.
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Current standards, variations, and pitfalls for the determination of constitutive TSHR activity in vitro.体外测定组成型促甲状腺激素受体活性的当前标准、差异及陷阱。
Methods Enzymol. 2010;485:421-36. doi: 10.1016/B978-0-12-381296-4.00023-3.
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Genetic defects, thyroid growth and malfunctions of the TSHR in pediatric patients.儿科患者的遗传缺陷、甲状腺生长和 TSHR 功能障碍。
Front Biosci (Landmark Ed). 2010 Jun 1;15(3):913-33. doi: 10.2741/3654.
5
An interactive web-tool for molecular analyses links naturally occurring mutation data with three-dimensional structures of the rhodopsin-like glycoprotein hormone receptors.一个用于分子分析的交互式网络工具将天然发生的突变数据与视紫红质样糖蛋白激素受体的三维结构联系起来。
Hum Mutat. 2010 Jun;31(6):E1519-25. doi: 10.1002/humu.21265.
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Conserved water-mediated hydrogen bond network between TM-I, -II, -VI, and -VII in 7TM receptor activation.7TM 受体激活过程中 TM-I、-II、-VI 和 -VII 之间保守的水介导氢键网络。
J Biol Chem. 2010 Jun 18;285(25):19625-36. doi: 10.1074/jbc.M110.106021. Epub 2010 Apr 15.
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Tracking G-protein-coupled receptor activation using genetically encoded infrared probes.利用基因编码的近红外探针追踪 G 蛋白偶联受体激活
Nature. 2010 Apr 29;464(7293):1386-9. doi: 10.1038/nature08948. Epub 2010 Apr 11.
8
Principles and determinants of G-protein coupling by the rhodopsin-like thyrotropin receptor.视紫红质样促甲状腺素受体的 G 蛋白偶联原理和决定因素。
PLoS One. 2010 Mar 18;5(3):e9745. doi: 10.1371/journal.pone.0009745.
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Signaling-sensitive amino acids surround the allosteric ligand binding site of the thyrotropin receptor.信号敏感氨基酸环绕促甲状腺激素受体的变构配体结合位点。
FASEB J. 2010 Jul;24(7):2347-54. doi: 10.1096/fj.09-149146. Epub 2010 Feb 23.
10
A heterozygous mutation in the third transmembrane domain causes a dominant-negative effect on signalling capability of the MC4R.MC4R 的信号转导功能存在显性负效应,这是由其第三跨膜区的杂合性突变引起的。
Obes Facts. 2008;1(3):155-62. doi: 10.1159/000138251. Epub 2008 Jun 20.

从促甲状腺激素受体跨膜螺旋相互作用的分子细节到 A 族 G 蛋白偶联受体 (GPCR) 信号转导的一般方面。

From molecular details of the interplay between transmembrane helices of the thyrotropin receptor to general aspects of signal transduction in family a G-protein-coupled receptors (GPCRs).

机构信息

Leibniz-Institut für Molekulare Pharmakologie, 13125 Berlin, Germany.

出版信息

J Biol Chem. 2011 Jul 22;286(29):25859-71. doi: 10.1074/jbc.M110.196980. Epub 2011 May 17.

DOI:10.1074/jbc.M110.196980
PMID:21586576
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC3138303/
Abstract

Transmembrane helices (TMHs) 5 and 6 are known to be important for signal transduction by G-protein-coupled receptors (GPCRs). Our aim was to characterize the interface between TMH5 and TMH6 of the thyrotropin receptor (TSHR) to gain molecular insights into aspects of signal transduction and regulation. A proline at TMH5 position 5.50 is highly conserved in family A GPCRs and causes a twist in the helix structure. Mutation of the TSHR-specific alanine (Ala-593⁵·⁵⁰) at this position to proline resulted in a 20-fold reduction of cell surface expression. This indicates that TMH5 in the TSHR might have a conformation different from most other family A GPCRs by forming a regular α-helix. Furthermore, linking our own and previous data from directed mutagenesis with structural information led to suggestions of distinct pairs of interacting residues between TMH5 and TMH6 that are responsible for stabilizing either the basal or the active state. Our insights suggest that the inactive state conformation is constrained by a core set of polar interactions among TMHs 2, 3, 6, and 7 and in contrast that the active state conformation is stabilized mainly by non-polar interactions between TMHs 5 and 6. Our findings might be relevant for all family A GPCRs as supported by a statistical analysis of residue properties between the TMHs of a vast number of GPCR sequences.

摘要

跨膜螺旋 (TMHs) 5 和 6 已知对 G 蛋白偶联受体 (GPCR) 的信号转导很重要。我们的目的是表征促甲状腺激素受体 (TSHR) 的 TMH5 和 TMH6 之间的界面,以深入了解信号转导和调节的各个方面。家族 A GPCR 中高度保守的 TMH5 位置 5.50 脯氨酸导致螺旋结构扭曲。该位置的 TSHR 特异性丙氨酸 (Ala-593⁵·⁵⁰) 突变为脯氨酸会导致细胞表面表达减少 20 倍。这表明 TSHR 的 TMH5 可能通过形成规则的α螺旋而具有与大多数其他家族 A GPCR 不同的构象。此外,将我们自己和以前的定向诱变数据与结构信息结合起来,提出了 TMH5 和 TMH6 之间存在独特的相互作用残基对的建议,这些残基对负责稳定基础状态或活性状态。我们的研究结果表明,与 TMHs 2、3、6 和 7 之间的一组核心极性相互作用以及相反的是,TMHs 5 和 6 之间的非极性相互作用主要稳定活性状态构象有关。我们的发现可能与所有家族 A GPCR 都有关,这得到了大量 GPCR 序列的 TMHs 之间残基性质的统计分析的支持。