ACS Chemical Neuroscience 2026
Maria Vangelatou, Kian Stenbolt, Sylvie Bay, Karima Medjebeur, Gabriel Ayme, Pierre Lafaye, Arnaud Blondel, Laurie Peverini, Alexandre Mourot, Pierre-Jean Corringer
Abstract
Photopharmacology, which enables the precise optical control of endogenous receptor activity, represents a powerful approach in neuroscience. However, photochromic diffusible ligands often exhibit limited subtype specificity, while alternative strategies for controlling specific receptor subtypes require genetic modification. Here, to achieve high subtype selectivity without the need of receptor engineering, we introduce a genetically independent strategy for optical control of endogenous receptors based on highly selective and chemically defined photoswitchable nanobodies. By covalently coupling a light-sensitive azobenzene agonist to a high-affinity nanobody targeting α7 nicotinic acetylcholine receptor (nAChR), we engineered MalAzoCh-C4, an optonanobody that confers reversible, light-dependent activation of native α7 receptors. In Xenopus oocytes, MalAzoCh-C4 enables wavelength-controlled modulation of recombinant α7 receptors, with enhanced activity in trans configuration. In acute hippocampal slices, application of MalAzoCh-C4 produces robust photocontrol of endogenous α7 nAChRs in interneurons, sufficient to modulate action potential firing. This strategy combines nanobody specificity with the temporal resolution of photopharmacology, establishing optonanobodies as a platform for control of native neuronal receptors.


