Ligand and G-protein selectivity in the κ-opioid receptor.
Jianming Han, Jingying Zhang, Antonina L Nazarova, Sarah M Bernhard, Brian E Krumm, Lei Zhao, Jordy Homing Lam, Vipin A Rangari, Susruta Majumdar, David E Nichols, Vsevolod Katritch, Peng Yuan, Jonathan F Fay, Tao Che
Nature May 1, 2023 DOI: 10.1038/s41586-023-06030-7 via PubMed
Summary
AI-generated from the abstractTreatments for pain or addiction targeting the κ-opioid receptor often cause hallucinogenic side effects. To understand this, cryo-electron microscopy mapped the receptor's structure with various G-proteins and compounds. These detailed maps uncovered molecular controls for G-protein binding and drug selectivity, showing distinct preferences. This clarifies opioid action, establishing a foundation for developing safer, pathway-selective therapies.
Study at a glance
| Characteristics | Structural biology study Peer reviewed |
|---|---|
| Keywords | Κ-opioid receptor Kor Kappa opioid receptor Receptor structure Protein structure |
| Citations | 79 |
| Key finding | The four G-protein subtypes (Gi1, GoA, Gz, Gg) display intrinsically different binding affinity and allosteric activity on agonist binding at KOR, and structural comparisons reveal molecular determinants for KOR-G-protein interactions and subtype selectivity. |
Abstract
The κ-opioid receptor (KOR) represents a highly desirable therapeutic target for treating not only pain but also addiction and affective disorders1. However, the development of KOR analgesics has been hindered by the associated hallucinogenic side effects2. The initiation of KOR signalling requires the Gi/o-family proteins including the conventional (Gi1, Gi2, Gi3, GoA and GoB) and nonconventional (Gz and Gg) subtypes. How hallucinogens exert their actions through KOR and how KOR determines G-protein subtype selectivity are not well understood. Here we determined the active-state structures of KOR in a complex with multiple G-protein heterotrimers-Gi1, GoA, Gz and Gg-using cryo-electron microscopy. The KOR-G-protein complexes are bound to hallucinogenic salvinorins or highly selective KOR agonists. Comparisons of these structures reveal molecular determinants critical for KOR-G-protein interactions as well as key elements governing Gi/o-family subtype selectivity and KOR ligand selectivity. Furthermore, the four G-protein subtypes display an intrinsically different binding affinity and allosteric activity on agonist binding at KOR. These results provide insights into the actions of opioids and G-protein-coupling specificity at KOR and establish a foundation to examine the therapeutic potential of pathway-selective agonists of KOR.