TY - JOUR
T1 - Structure of the glucagon receptor in complex with a glucagon analogue
AU - Zhang, Haonan
AU - Qiao, Anna
AU - Yang, Linlin
AU - Van Eps, Ned
AU - Frederiksen, Klaus S.
AU - Yang, Dehua
AU - Dai, Antao
AU - Cai, Xiaoqing
AU - Zhang, Hui
AU - Yi, Cuiying
AU - Cao, Can
AU - He, Lingli
AU - Yang, Huaiyu
AU - Lau, Jesper
AU - Ernst, Oliver P.
AU - Hanson, Michael A.
AU - Stevens, Raymond C.
AU - Wang, Ming Wei
AU - Reedtz-Runge, Steffen
AU - Jiang, Hualiang
AU - Zhao, Qiang
AU - Wu, Beili
N1 - Publisher Copyright:
© 2018 Macmillan Publishers Limited, part of Springer Nature. All rights reserved.
PY - 2018/1/3
Y1 - 2018/1/3
N2 - Class B G-protein-coupled receptors (GPCRs), which consist of an extracellular domain (ECD) and a transmembrane domain (TMD), respond to secretin peptides to play a key part in hormonal homeostasis, and are important therapeutic targets for a variety of diseases. Previous work has suggested that peptide ligands bind to class B GPCRs according to a two-domain binding model, in which the C-terminal region of the peptide targets the ECD and the N-terminal region of the peptide binds to the TMD binding pocket. Recently, three structures of class B GPCRs in complex with peptide ligands have been solved. These structures provide essential insights into peptide ligand recognition by class B GPCRs. However, owing to resolution limitations, the specific molecular interactions for peptide binding to class B GPCRs remain ambiguous. Moreover, these previously solved structures have different ECD conformations relative to the TMD, which introduces questions regarding inter-domain conformational flexibility and the changes required for receptor activation. Here we report the 3.0 Å-resolution crystal structure of the full-length human glucagon receptor (GCGR) in complex with a glucagon analogue and partial agonist, NNC1702. This structure provides molecular details of the interactions between GCGR and the peptide ligand. It reveals a marked change in the relative orientation between the ECD and TMD of GCGR compared to the previously solved structure of the inactive GCGR-NNC0640-mAb1 complex. Notably, the stalk region and the first extracellular loop undergo major conformational changes in secondary structure during peptide binding, forming key interactions with the peptide. We further propose a dual-binding-site trigger model for GCGR activation - which requires conformational changes of the stalk, first extracellular loop and TMD - that extends our understanding of the previously established two-domain peptide-binding model of class B GPCRs.
AB - Class B G-protein-coupled receptors (GPCRs), which consist of an extracellular domain (ECD) and a transmembrane domain (TMD), respond to secretin peptides to play a key part in hormonal homeostasis, and are important therapeutic targets for a variety of diseases. Previous work has suggested that peptide ligands bind to class B GPCRs according to a two-domain binding model, in which the C-terminal region of the peptide targets the ECD and the N-terminal region of the peptide binds to the TMD binding pocket. Recently, three structures of class B GPCRs in complex with peptide ligands have been solved. These structures provide essential insights into peptide ligand recognition by class B GPCRs. However, owing to resolution limitations, the specific molecular interactions for peptide binding to class B GPCRs remain ambiguous. Moreover, these previously solved structures have different ECD conformations relative to the TMD, which introduces questions regarding inter-domain conformational flexibility and the changes required for receptor activation. Here we report the 3.0 Å-resolution crystal structure of the full-length human glucagon receptor (GCGR) in complex with a glucagon analogue and partial agonist, NNC1702. This structure provides molecular details of the interactions between GCGR and the peptide ligand. It reveals a marked change in the relative orientation between the ECD and TMD of GCGR compared to the previously solved structure of the inactive GCGR-NNC0640-mAb1 complex. Notably, the stalk region and the first extracellular loop undergo major conformational changes in secondary structure during peptide binding, forming key interactions with the peptide. We further propose a dual-binding-site trigger model for GCGR activation - which requires conformational changes of the stalk, first extracellular loop and TMD - that extends our understanding of the previously established two-domain peptide-binding model of class B GPCRs.
UR - https://www.scopus.com/pages/publications/85040182540
U2 - 10.1038/nature25153
DO - 10.1038/nature25153
M3 - 文章
C2 - 29300013
AN - SCOPUS:85040182540
SN - 0028-0836
VL - 553
SP - 106
EP - 110
JO - Nature
JF - Nature
IS - 7686
ER -