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December 11, 2025Science7 citations

Structure and organization of AMPA receptor-TARP complexes in the mammalian cerebellum

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ASAlexander M. ScruttonNSNayanika SenguptaJIJosip Ivica

Key Points

  • This research aims to characterize the structure and organization of AMPA receptor-TARP complexes in the mammalian cerebellum.
  • Utilized mass-spectrometry to analyze AMPA receptor complexes.
  • Applied cryogenic electron microscopy for structural insights.
  • Conducted electrophysiology experiments to assess receptor function.
  • Identified calcium-impermeable GluA2/A4 heteromers with four TARP subunits.
  • Discovered BG-specific calcium-permeable GluA1/A4 heteromers with two Type-2 TARPs.
  • Characterized compact N-terminal domains of GluA4 that enhance synaptic delivery.

Abstract

AMPA receptors (AMPARs) are multimodal transducers of glutamatergic signals throughout the brain. Their diversity is exemplified in the cerebellum; at afferent synapses, AMPARs mediate high-frequency excitation, whereas in Bergmann glia (BG) they support calcium transients that modulate synaptic transmission. This spectrum arises from different combinations of core subunits (GluA1-4), auxiliary proteins, and post-transcriptional modifications. Here, using mass-spectrometry, cryo-EM, and electrophysiology, we characterize major cerebellar AMPARs in pig: calcium-impermeable GluA2/A4 heteromers with four TARP subunits, mainly neuronal in origin, and BG-specific calcium-permeable GluA1/A4 heteromers containing two Type-2 TARPs. We also showed that GluA4 receptors consistently exhibit compact N-terminal domains that promote their synaptic delivery. Our study defines the organizational principles of mammalian cerebellar AMPAR complexes and reveals how different receptor subtypes support cell-type specific functions.

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Cite This Study

Scrutton et al. (2025) studied this question.

synapsesocial.com/papers/69401b1e2d562116f28f764ehttps://doi.org/10.1126/science.aeb3577
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