| Literature DB >> 29717000 |
Saifei Lei1,2, Lachlan Clydesdale3, Antao Dai1, Xiaoqing Cai1, Yang Feng1, Dehua Yang1, Yi-Lynn Liang3, Cassandra Koole3, Peishen Zhao3, Thomas Coudrat3, Arthur Christopoulos3, Ming-Wei Wang4,2,5, Denise Wootten6,5, Patrick M Sexton7,5.
Abstract
G protein-coupled receptors (GPCRs) can be differentially activated by ligands to generate multiple and distinct downstream signaling profiles, a phenomenon termed biased agonism. The glucagon-like peptide-1 receptor (GLP-1R) is a class B GPCR and a key drug target for managing metabolic disorders; however, its peptide agonists display biased signaling that affects their relative efficacies. In this study, we combined mutagenesis experiments and mapping of surface mutations onto recently described GLP-1R structures, which revealed two major domains in the GLP-1/GLP-1R/Gs protein active structure that are differentially important for both receptor quiescence and ligand-specific initiation and propagation of biased agonism. Changes to the conformation of transmembrane helix (TM) 5 and TM 6 and reordering of extracellular loop 2 were essential for the propagation of signaling linked to cAMP formation and intracellular calcium mobilization, whereas ordering and packing of residues in TMs 1 and 7 were critical for extracellular signal-regulated kinase 1/2 (pERK) activity. On the basis of these findings, we propose a model of distinct peptide-receptor interactions that selectively control how these different signaling pathways are engaged. This work provides important structural insight into class B GPCR activation and biased agonism.Entities:
Keywords: ERK kinase; G protein-coupled receptor (GPCR); GLP-1 receptor; arrestin; biased agonism; cell signaling; class B peptide hormone; glucagon; glucagon-like peptide-1; receptor structure-function; site-directed mutagenesis; transmembrane domain
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Year: 2018 PMID: 29717000 PMCID: PMC6005446 DOI: 10.1074/jbc.RA118.003278
Source DB: PubMed Journal: J Biol Chem ISSN: 0021-9258 Impact factor: 5.157