G Protein Coupled Receptor Structure, Dynamics and Signaling
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1.How GPCR Phosphorylation Patterns Orchestrate Arrestin-Mediated Signaling
- 关键词:
- GENERAL FORCE-FIELD; PROTEIN-COUPLED RECEPTORS; MOLECULAR-DYNAMICS; CRYSTAL-STRUCTURE; BETA-ARRESTIN; ADRENERGIC-RECEPTOR; BINDING; DESENSITIZATION; IDENTIFICATION; RECRUITMENT
- Latorraca, Naomi R.;Masureel, Matthieu;Hollingsworth, Scott A.;Heydenreich, Franziska M.;Suomivuori, Carl-Mikael;Brinton, Connor;Townshend, Raphael J. L.;Bouvier, Michel;Kobilka, Brian K.;Dror, Ron O.
- 《CELL》
- 2020年
- 183卷
- 7期
- 期刊
Binding of arrestin to phosphorylated G-protein-coupled receptors (GPCRs) controls many aspects of cell signaling. The number and arrangement of phosphates may vary substantially for a given GPCR, and different phosphorylation patterns trigger different arrestin-mediated effects. Here, we determine how GPCR phosphorylation influences arrestin behavior by using atomic-level simulations and site-directed spectroscopy to reveal the effects of phosphorylation patterns on arrestin binding and conformation. We find that patterns favoring binding differ from those favoring activation-associated conformational change. Both binding and conformation depend more on arrangement of phosphates than on their total number, with phosphorylation at different positions sometimes exerting opposite effects. Phosphorylation patterns selectively favor a wide variety of arrestin conformations, differently affecting arrestin sites implicated in scaffolding distinct signaling proteins. We also reveal molecular mechanisms of these phenomena. Our work reveals the structural basis for the long-standing "barcode" hypothesis and has important implications for design of functionally selective GPCR-targeted drugs.
...2.Viewing rare conformations of the beta(2) adrenergic receptor with pressure-resolved DEER spectroscopy
- 关键词:
- double electron-electron resonance; beta(2) adrenergic receptor; highpressure; conformational selection; basal activity;PROTEIN-COUPLED RECEPTOR; ELECTRON RESONANCE DEER; CONSTITUTIVEACTIVITY; CRYSTAL-STRUCTURE; LIGAND EFFICACY; ACTIVATION;COMPRESSIBILITY; AGONISTS; BETA(2)-ADRENOCEPTOR; EQUILIBRIA
- Lerch, Michael T.;Matt, Rachel A.;Masureel, Matthieu;Elgeti, Matthias;Kumar, Kaavya Krishna;Hilger, Daniel;Foys, Bryon;Kobilka, Brian K.;Hubbell, Wayne L.
- 《PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OFAMERICA》
- 2020年
- 117卷
- 50期
- 期刊
The beta(2) adrenergic receptor (beta(2)AR) is an archetypal G protein coupled receptor (GPCR). One structural signature of GPCR activation is a large-scale movement (ca. 6 to 14 angstrom) of transmembrane helix 6 (TM6) to a conformation which binds and activates a cognate G protein. The beta(2)AR exhibits a low level of agonist-independent G protein activation. The structural origin of this basal activity and its suppression by inverse agonists is unknown but could involve a unique receptor conformation that promotes G protein activation. Alternatively, a conformational selection model proposes that a minor population of the canonical active receptor conformation exists in equilibrium with inactive forms, thus giving rise to basal activity of the ligand-free receptor. Previous spin-labeling and fluorescence resonance energy transfer experiments designed to monitor the positional distribution of TM6 did not detect the presence of the active conformation of ligand-free beta(2)AR. Here we employ spin-labeling and pressure-resolved double electron-electron resonance spectroscopy to reveal the presence of a minor population of unliganded receptor, with the signature outward TM6 displacement, in equilibrium with inactive conformations. Binding of inverse agonists suppresses this population. These results provide direct structural evidence in favor of a conformational selection model for basal activity in beta(2)AR and provide a mechanism for inverse agonism. In addition, they emphasize 1) the importance of minor populations in GPCR catalytic function; 2) the use of spin-labeling and variable-pressure electron paramagnetic resonance to reveal them in a membrane protein; and 3) the quantitative evaluation of their thermodynamic properties relative to the inactive forms, including free energy, partial molar volume, and compressibility.
...3.Crystal structure.beta..sub.2 adrenoreceptor
- 发明人:STANFORD UNIVERSITY;
- 授权日:}
- 专利
4.Method for obtaining G protein-coupled receptor(GPCR)diffraction-quality crystals employing a monoclonal antibody that binds to the third intracellular loop(IL3)
- 发明人:STANFORD UNIVERSITY;
- 授权日:}
- 专利
5.Modified G protein sunbunits
- 发明人:STANFORD UNIVERSITY;
- 授权日:}
- 专利
6.Protein binding domains stabilizing functional conformational states of GPCRS and uses thereof
- 发明人:STANFORD UNIVERSITY;
- 授权日:}
- 专利
7.Method for selecting agents that bind to transmembrane receptors in a conformationally selective manner
- 发明人:STANFORD UNIVERSITY;
- 授权日:}
- 专利
8.Method and composition for crystallizing G protein-coupled receptors
- 发明人:STANFORD UNIVERSITY;
- 授权日:}
- 专利
9.Synthetic amphiphiles for membrane protein manipulation
- 发明人:UNIVERSITY OF WISCONSIN-MADISON;
- 授权日:}
- 专利
10.Eukaryotic expression system for the incorporation of stable isotopes into proteins
- 发明人:STANFORD UNIVERSITY;
- 授权日:}
- 专利
