Mechanisms underlying TARP modulation of the GluA1/2-γ8 AMPA receptor.
Beatriz HerguedasBianka K KohegyiJan-Niklas DohrkeJake F WatsonDanyang ZhangHinze HoSaher A ShaikhRemigijus LapeJames Michael KriegerIngo H GregerPublished in: Nature communications (2022)
AMPA-type glutamate receptors (AMPARs) mediate rapid signal transmission at excitatory synapses in the brain. Glutamate binding to the receptor's ligand-binding domains (LBDs) leads to ion channel activation and desensitization. Gating kinetics shape synaptic transmission and are strongly modulated by transmembrane AMPAR regulatory proteins (TARPs) through currently incompletely resolved mechanisms. Here, electron cryo-microscopy structures of the GluA1/2 TARP-γ8 complex, in both open and desensitized states (at 3.5 Å), reveal state-selective engagement of the LBDs by the large TARP-γ8 loop ('β1'), elucidating how this TARP stabilizes specific gating states. We further show how TARPs alter channel rectification, by interacting with the pore helix of the selectivity filter. Lastly, we reveal that the Q/R-editing site couples the channel constriction at the filter entrance to the gate, and forms the major cation binding site in the conduction path. Our results provide a mechanistic framework of how TARPs modulate AMPAR gating and conductance.
Keyphrases
- high resolution
- genome wide
- crispr cas
- transcription factor
- single cell
- neuropathic pain
- social media
- single molecule
- white matter
- electron microscopy
- resting state
- ionic liquid
- optical coherence tomography
- high throughput
- multiple sclerosis
- mass spectrometry
- spinal cord injury
- functional connectivity
- subarachnoid hemorrhage