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Ligand recognition and allosteric regulation of DRD1-Gs signaling complexes
Author(s) -
Peng Xiao,
Wei Yan,
Lu Gou,
Ya-Ni Zhong,
Liangliang Kong,
Chao Wu,
Xin Wen,
Yuan Yuan,
Sheng Cao,
Changxiu Qu,
Xin Yang,
Chuan-Cheng Yang,
Anjie Xia,
Zhenquan Hu,
Qianqian Zhang,
Yong-Hao He,
Daolai Zhang,
Chao Zhang,
Gui-Hua Hou,
Huanxiang Liu,
Lizhe Zhu,
Ping Fu,
Shengyong Yang,
Daniel M. Rosenbaum,
JinPeng Sun,
Yang Du,
Lei Zhang,
Xiao Yu,
Zhenhua Shao
Publication year - 2021
Publication title -
cell
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 26.304
H-Index - 776
eISSN - 1097-4172
pISSN - 0092-8674
DOI - 10.1016/j.cell.2021.01.028
Subject(s) - allosteric regulation , biology , dopamine , dopamine receptor , agonist , receptor , endogenous agonist , binding site , ligand (biochemistry) , dopamine receptor d1 , allosteric enzyme , dopamine receptor d2 , g protein coupled receptor , allosteric modulator , microbiology and biotechnology , biophysics , neuroscience , biochemistry
Dopamine receptors, including D1- and D2-like receptors, are important therapeutic targets in a variety of neurological syndromes, as well as cardiovascular and kidney diseases. Here, we present five cryoelectron microscopy (cryo-EM) structures of the dopamine D1 receptor (DRD1) coupled to Gs heterotrimer in complex with three catechol-based agonists, a non-catechol agonist, and a positive allosteric modulator for endogenous dopamine. These structures revealed that a polar interaction network is essential for catecholamine-like agonist recognition, whereas specific motifs in the extended binding pocket were responsible for discriminating D1- from D2-like receptors. Moreover, allosteric binding at a distinct inner surface pocket improved the activity of DRD1 by stabilizing endogenous dopamine interaction at the orthosteric site. DRD1-Gs interface revealed key features that serve as determinants for G protein coupling. Together, our study provides a structural understanding of the ligand recognition, allosteric regulation, and G protein coupling mechanisms of DRD1.

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