Subconductance states in NMDA receptor variants are Ca2+ impermeable and act at the M2 loop
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A variety of de novo disease-associated variants are found in NMDA receptors (NMDARs), which carry out critical roles at synapses including mediating a Ca2+ influx. In the central permeation pathway, a vestibule is positioned between the external M3 gate and the M2 pore loop. A variant in the obligatory GluN1 subunit, Met641Ile, reduces Ca2+ permeability, but the mechanism of action is unknown. We find that other variants at GluN1-M641, including Leu, Val, and Thr, as well as variants at a homologous position in GluN2A (Val639Ile), do not alter Ca2+ permeability. Notably, and in contrast to the other variants, GluN1-Met641Ile has a prominent subconductance state. Molecular dynamics simulations show that the Ile641 side chain interacts more with the M2 loop, including the N-site in GluN1 and GluN2, than the wild-type Met641 side chain. N-site variants also induce subconductance states and reduce Ca2+ permeability. We conclude that subconductance states are largely Ca2+ impermeable and that the Met641Ile variant alters Ca2+ permeability by inducing a subconductance state via interacting with the M2 loop.