GluA2-containing AMPA receptors form a continuum of Ca<sup>2+</sup>-permeable channels.

Miguez-Cabello, Federico; Wang, Xin-Tong; Yan, Yuhao; Brake, Niklas; Alexander, Ryan P D; Perozzo, Amanda M; Khadra, Anmar; Bowie, Derek · Nature · 2025

basic_science · Level V

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Abstract

Fast excitatory neurotransmission in the mammalian brain is mediated by cation-selective AMPA (α-amino-3-hydroxy-5-methyl-4-isoxazolepropionic acid) receptors (AMPARs)<sup>1</sup>. AMPARs are critical for the learning and memory mechanisms of Hebbian plasticity<sup>2</sup> and glutamatergic synapse homeostasis<sup>3</sup>, with recent work establishing that AMPAR missense mutations can cause autism and intellectual disability<sup>4-7</sup>. AMPARs have been grouped into two functionally distinct tetrameric assemblies based on the inclusion or exclusion of the GluA2 subunit that determines Ca<sup>2+</sup> permeability through RNA editing<sup>8,9</sup>. GluA2-containing AMPARs are the most abundant in the central nervous system and considered to be Ca<sup>2+</sup> impermeable<sup>10</sup>. Here we show this is not the case. Contrary to conventional understanding, GluA2-containing AMPARs form a continuum of polyamine-insensitive ion channels with varying degrees of Ca<sup>2+</sup> permeability. Their ability to transport Ca<sup>2+</sup> is shaped by the subunit composition of AMPAR tetramers as well as the spatial orientation of transmembrane AMPAR regulatory proteins and cornichon auxiliary subunits. Ca<sup>2+</sup> crosses the ion-conduction pathway by docking to an extracellular binding site that helps funnel divalent ions into the pore selectivity filter. The dynamic range in Ca<sup>2+</sup> permeability, however, arises because auxiliary subunits primarily modify the selectivity filter. Taken together, our work proposes a broader role for AMPARs in Ca<sup>2+</sup> signalling in the mammalian brain and offers mechanistic insight into the pathogenic nature of missense mutations.

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