α2δ-1 switches the phenotype of synaptic AMPA receptors by physically disrupting heteromeric subunit assembly

Lingyong Li, Shao Rui Chen, Meng Hua Zhou, Li Wang, De Pei Li, Hong Chen, Garam Lee, Vasanthi Jayaraman, Hui Lin Pan

Research output: Contribution to journalArticlepeer-review

21 Scopus citations

Abstract

Many neurological disorders show an increased prevalence of GluA2-lacking, Ca2+-permeable AMPA receptors (CP-AMPARs), which dramatically alters synaptic function. However, the molecular mechanism underlying this distinct synaptic plasticity remains enigmatic. Here, we show that nerve injury potentiates postsynaptic, but not presynaptic, CP-AMPARs in the spinal dorsal horn via α2δ-1. Overexpressing α2δ-1, previously regarded as a Ca2+ channel subunit, augments CP-AMPAR levels at the cell surface and synapse. Mechanistically, α2δ-1 physically interacts with both GluA1 and GluA2 via its C terminus, inhibits the GluA1/GluA2 heteromeric assembly, and increases GluA2 retention in the endoplasmic reticulum. Consequently, α2δ-1 diminishes the availability and synaptic expression of GluA1/GluA2 heterotetramers in the spinal cord in neuropathic pain. Inhibiting α2δ-1 with gabapentin or disrupting the α2δ-1-AMPAR complex fully restores the intracellular assembly and synaptic dominance of heteromeric GluA1/GluA2 receptors. Thus, α2δ-1 is a pivotal AMPAR-interacting protein that controls the subunit composition and Ca2+ permeability of postsynaptic AMPARs.

Original languageEnglish (US)
Article number109396
JournalCell Reports
Volume36
Issue number3
DOIs
StatePublished - Jul 20 2021

Keywords

  • Cacna2d1
  • GluR2
  • NMDA receptor
  • diabetic neuropathy
  • dorsal root ganglion
  • gabapentinoids
  • pregabalin
  • synaptic trafficking
  • thrombospondin
  • voltage-activated calcium channel

ASJC Scopus subject areas

  • General Biochemistry, Genetics and Molecular Biology

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