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Baenziger, J. E.

Publications and source records attributed to Baenziger, J. E..

2 recordsLinked to original sources

An extended structure of the intracellular domain of the Torpedo nicotinic acetylcholine receptor and its proposed interactions with rapsyn

To gain insight into the interactions between rapsyn and the nAChR that induce clustering at the post-synaptic membrane, we refined a cryo-EM dataset using an intracellular domain focused strategy to obtain a 3.0 [A] map with the most extensive density yet for the intracellular domain of the Torpedo nAChR. The improved map allowed us to extend the structure beyond the MX -helix and prior to the MA -helix of the intracellular domain. The new structure defines a sharp N-terminal boundary of each MA -helix to place agrin-dependent phosphorylated tyrosines unambiguously within the flexible regions of the MX-MA loops. Two distinct conformations of the {delta} M4 -helix were also resolved, indicating that M4 conformational heterogeneity reflects intrinsic flexibility rather than a change in gating state. The new structural constraints defined for the MX-MA loop were then used to evaluate AlphaFold3-predicted full-length models of the nAChR, rapsyn, and various rapsyn-nAChR complexes, identifying a consistent, asymmetric 3:1 binding architecture where each rapsyn is always sandwiched between the MX-MA loops from two subunits and where each phospho-tyrosine is lodged in a cationic pocket formed by conserved residues implicated in congenital myasthenic syndromes. The defined architecture fits published cryo-ET maps of Torpedo post-synaptic membranes and explains how both phosphorylated tyrosines and myasthenic syndrome-causing rapsyn mutations modulate receptor clustering.

neuroscience↗

Asynchronous subunit transitions precede acetylcholine receptor activation

Rapid communication at synapses is facilitated by postsynaptic receptors, which convert a chemical signal into an electrical response. In the case of ligand-gated ion channels, agonist binding triggers rapid transition through a series of intermediate states leading to a transient open-pore conformation. These transitions are usually framed in terms of a mechanism where agonist binding and channel activation are separate events. Here, we collect cryo-EM images over a range of agonist concentrations to define structures of the muscle-type nicotinic acetylcholine receptor in unliganded, mono-liganded, and di-liganded states. We show that agonist binding to a single agonist site stabilizes an intermediate state where an entire principal agonist-binding subunit has transitioned to an active-like conformation, while the other unoccupied principal subunit remains inactive, albeit poised for activation. Binding of agonist to the second agonist site fully activates the remaining subunits leading to hydration of the ion pore. Uniting this cryo-EM derived intermediate structure with single-channel recordings leads to a model where individual acetylcholine receptor subunits asynchronously undergo conformational transitions, and thus a sequential activation mechanism that has implications for the entire superfamily of pentameric ligand-gated ion channels.

neuroscience↗