7xm9 Citations

Structural basis for NaV1.7 inhibition by pore blockers.

Nat Struct Mol Biol (2022)
Related entries: 7xmf, 7xmg

Cited: 14 times
EuropePMC logo PMID: 36424527

Abstract

Voltage-gated sodium channel NaV1.7 plays essential roles in pain and odor perception. NaV1.7 variants cause pain disorders. Accordingly, NaV1.7 has elicited extensive attention in developing new analgesics. Here we present cryo-EM structures of human NaV1.7/β1/β2 complexed with inhibitors XEN907, TC-N1752 and NaV1.7-IN2, explaining specific binding sites and modulation mechanism for the pore blockers. These inhibitors bind in the central cavity blocking ion permeation, but engage different parts of the cavity wall. XEN907 directly causes α- to π-helix transition of DIV-S6 helix, which tightens the fast inactivation gate. TC-N1752 induces π-helix transition of DII-S6 helix mediated by a conserved asparagine on DIII-S6, which closes the activation gate. NaV1.7-IN2 serves as a pore blocker without causing conformational change. Electrophysiological results demonstrate that XEN907 and TC-N1752 stabilize NaV1.7 in inactivated state and delay the recovery from inactivation. Our results provide structural framework for NaV1.7 modulation by pore blockers, and important implications for developing subtype-selective analgesics.

Reviews - 7xm9 mentioned but not cited (2)

  1. Structural Advances in Voltage-Gated Sodium Channels. Jiang D, Zhang J, Xia Z. Front Pharmacol 13 908867 (2022)
  2. A structural atlas of druggable sites on Nav channels. Li Z, Wu Q, Yan N. Channels (Austin) 18 2287832 (2024)

Articles - 7xm9 mentioned but not cited (2)



Reviews citing this publication (4)

  1. Voltage gated sodium and calcium channels: Discovery, structure, function, and Pharmacology. Catterall WA. Channels (Austin) 17 2281714 (2023)
  2. Nanomedicine and voltage-gated sodium channel blockers in pain management: a game changer or a lost cause? Le Franc A, Da Silva A, Lepetre-Mouelhi S. Drug Deliv Transl Res 14 2112-2145 (2024)
  3. Structural biology and molecular pharmacology of voltage-gated ion channels. Huang J, Pan X, Yan N. Nat Rev Mol Cell Biol (2024)
  4. Targeting ion channels with ultra-large library screening for hit discovery. Melancon K, Pliushcheuskaya P, Meiler J, Künze G. Front Mol Neurosci 16 1336004 (2023)

Articles citing this publication (6)