Molecular mechanisms of native ligand selectivity in catecholamine G protein-coupled receptors

N Nour Aldin Kahlous M Maiju K. Rinne X Xin Zhang Y Yanying Li (Ningbo Key Laboratory of Biomedical Imaging Probe Materials and Technology, Laboratory of Advanced Theranostic Materials and Technology) Y Yue Chen (State Key Laboratory of Natural Medicines and Jiangsu Key Laboratory of Drug Discovery for Metabolic Diseases, Center of Advanced Pharmaceuticals and Biomaterials) A Aikaterini Motso K Kaixuan Gao (State Key Laboratory of Membrane Biology, Tsinghua-Peking Center for Life Sciences, School of Pharmaceutical Sciences, Tsinghua University) C Christina Bergqvist H Hongda Sheng Y Yi Wang I Israel Cabeza de Vaca A Alejandro Díaz-Holguín P Philip Ullmann T Tore Bengtsson V Volker M. Lauschke J Jyrki P. Kukkonen L Lucie Delemotte S Shane C. Wright X Xiangyu Liu D Dan Larhammar J Jens Carlsson (Science for Life Laboratory, Department of Cell and Molecular Biology, Uppsala University)

Abstract

Abstract Activation of G protein-coupled receptors (GPCRs) by extracellular ligands is crucial for cellular communication and modulates numerous physiological processes. Despite sharing highly similar orthosteric binding sites, catecholamine GPCRs exhibit exquisite selectivity for their native agonists, even among nearly identical chemical messengers. However, the molecular basis and evolution of receptor selectivity remain poorly understood. To elucidate the structural mechanisms of GPCR selectivity, we focus on the prototypical human β 2 -adrenergic and D 1 dopaminergic receptors, which are important drug targets and respond to the catecholamines adrenaline/noradrenaline and dopamine, respectively. Guided by structural and sequence data, we identify a small set of residues responsible for ligand selectivity. By exchanging residues at four positions in the β-adrenergic receptors and seven in the D 1 -like dopaminergic receptors, we swap the pharmacological profiles of the two subfamilies. Unexpectedly, the switch in selectivity not only involves residues interacting with the ligand, but is also controlled by regions outside the orthosteric binding site. Cryo-electron microscopy structures and computational models of the mutant receptors identify distinct molecular mechanisms contributing to selectivity in a concerted manner. Our findings provide insights into GPCR evolution and highlight strategies for protein engineering and drug design.

Article Details

Volume / Issue Vol. 17, Issue 1
Published April 23, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (21)

N

Nour Aldin Kahlous

M

Maiju K. Rinne

X

Xin Zhang

Y

Yanying Li

Ningbo Key Laboratory of Biomedical Imaging Probe Materials and Technology, Laboratory of Advanced Theranostic Materials and Technology

Y

Yue Chen

State Key Laboratory of Natural Medicines and Jiangsu Key Laboratory of Drug Discovery for Metabolic Diseases, Center of Advanced Pharmaceuticals and Biomaterials

A

Aikaterini Motso

K

Kaixuan Gao

State Key Laboratory of Membrane Biology, Tsinghua-Peking Center for Life Sciences, School of Pharmaceutical Sciences, Tsinghua University

C

Christina Bergqvist

H

Hongda Sheng

Y

Yi Wang

I

Israel Cabeza de Vaca

A

Alejandro Díaz-Holguín

P

Philip Ullmann

T

Tore Bengtsson

V

Volker M. Lauschke

J

Jyrki P. Kukkonen

L

Lucie Delemotte

S

Shane C. Wright

X

Xiangyu Liu

D

Dan Larhammar

J

Jens Carlsson

Science for Life Laboratory, Department of Cell and Molecular Biology, Uppsala University