Docking of virtual libraries identifies small-molecule agonists of neurotensin receptors with analgesic activity
- Nicolas Panel
- Duy Duc Vo
- Harald Hübner
- Mattia Deluigi
- Szymon Pach
- Félix Bélair
- Dorothee Weikert
- Christoph Klenk
- Mark Hilge
- Niharika Shiva
- Isabelle Brochu
- Jean-Michel Longpré
- Frida Bällgren
- Aljona Saleh
- Huabin Hu
- Jon Kapla
- Stefanie Kampen
- Israel Cabeza de Vaca
- Jan Kihlberg
- Nina Wettschureck
- Philippe Sarret
- Andreas Plückthun
- Peter Gmeiner
- Jens Carlsson
2026-07-22
Peptide-activated G protein-coupled receptors (GPCRs) play crucial roles in numerous diseases, but remain difficult therapeutic targets due to the challenges in developing small-molecule drugs. Here, we explore structure-based strategies to identify small-molecule agonists of neurotensin (NTS) receptors, which hold promise for developing non-opioid analgesics. Chemical libraries of drug-like molecules are first designed based on a receptor-peptide complex, and then 14.5 million compounds are computationally docked to the orthosteric binding site of the NTS 1 receptor. A set of 39 top-ranked compounds is synthesized, and seven of these are experimentally confirmed to activate the NTS 1 receptor. Structure-guided optimization yields NTS 1 ligands with signaling signatures distinct from the endogenous peptide, and these compounds also exhibit high affinity for the NTS 2 receptor. High-resolution crystal structures of two agonists bound to the NTS 1 receptor confirm predicted binding modes and reveal key determinants of activation. In vivo, the compounds produce robust antinociception in rodents without inducing hypotension, consistent with a contribution of NTS 2 receptor activity. To facilitate broader application of our virtual screening approach to peptide-binding GPCRs, we provide access to tailored chemical libraries containing billions of readily synthesizable compounds.