Structural basis of α-scorpion toxin action on Na<sub>v</sub> channels.
basic_science · Level V
Where this comes from
- Record sourced from PubMed, PMID 30733386.
- Also identified by DOI 10.1126/science.aav8573.
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Abstract
Fast inactivation of voltage-gated sodium (Na<sub>v</sub>) channels is essential for electrical signaling, but its mechanism remains poorly understood. Here we determined the structures of a eukaryotic Na<sub>v</sub> channel alone and in complex with a lethal α-scorpion toxin, AaH2, by electron microscopy, both at 3.5-angstrom resolution. AaH2 wedges into voltage-sensing domain IV (VSD4) to impede fast activation by trapping a deactivated state in which gating charge interactions bridge to the acidic intracellular carboxyl-terminal domain. In the absence of AaH2, the S4 helix of VSD4 undergoes a ~13-angstrom translation to unlatch the intracellular fast-inactivation gating machinery. Highlighting the polypharmacology of α-scorpion toxins, AaH2 also targets an unanticipated receptor site on VSD1 and a pore glycan adjacent to VSD4. Overall, this work provides key insights into fast inactivation, electromechanical coupling, and pathogenic mutations in Na<sub>v</sub> channels.
Medical subject headings
- NAV1.7 Voltage-Gated Sodium Channel
- Scorpion Venoms
- Sodium Channel Blockers