Asynchronous subunit transitions prime acetylcholine receptor activation.

Thompson, Mackenzie J; Tessier, Christian J G; Ananchenko, Anna; Hénault, Camille; Emlaw, Johnathon R; Dehez, François; Zarkadas, Eleftherios; daCosta, Corrie J B et al. · Science · 2026

basic_science · Level V

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Abstract

Communication at synapses is facilitated by postsynaptic receptors, which convert a chemical signal into an electrical response. For ligand-gated ion channels, agonist binding triggers rapid transitions through intermediate states leading to a transient open-pore conformation, with these transitions shaping the postsynaptic response. In this work, we determine structures of the muscle-type nicotinic acetylcholine receptor in unliganded, mono-liganded, and di-liganded states. Agonist binding to a single site stabilizes a closed structure where an entire principal agonist-binding subunit transitions to an active-like conformation, whereas the other unoccupied principal subunit remains inactive, albeit poised for activation. Uniting this intermediate structure with single-channel recordings informs a sequential activation mechanism where asynchronous subunit transitions prime the receptor for activation-a finding with implications for an entire superfamily of pentameric ligand-gated ion channels.

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