Skip to main navigation Skip to search Skip to main content

Pharmacological characterisation of the highly Na v 1.7 selective spider venom peptide Pn3a

  • Jennifer R. Deuis
  • , Zoltan Dekan
  • , Joshua S. Wingerd
  • , Jennifer J. Smith
  • , Nehan R. Munasinghe
  • , Rebecca F. Bhola
  • , Wendy L. Imlach
  • , Volker Herzig
  • , David A. Armstrong
  • , K. Johan Rosengren
  • , Frank Bosmans
  • , Stephen G. Waxman
  • , Sulayman D. Dib-Hajj
  • , Pierre Escoubas
  • , Michael S. Minett
  • , Macdonald J. Christie
  • , Glenn F. King
  • , Paul F. Alewood
  • , Richard J. Lewis
  • , John N. Wood
  • Irina Vetter

Research output: Contribution to journalArticlepeer-review

Abstract

Human genetic studies have implicated the voltage-gated sodium channel Na V 1.7 as a therapeutic target for the treatment of pain. A novel peptide, μ-theraphotoxin-Pn3a, isolated from venom of the tarantula Pamphobeteus nigricolor, potently inhibits Na V 1.7 (IC 50 0.9 nM) with at least 40-1000-fold selectivity over all other Na V subtypes. Despite on-target activity in small-diameter dorsal root ganglia, spinal slices, and in a mouse model of pain induced by Na V 1.7 activation, Pn3a alone displayed no analgesic activity in formalin-, carrageenan- or FCA-induced pain in rodents when administered systemically. A broad lack of analgesic activity was also found for the selective Na V 1.7 inhibitors PF-04856264 and phlotoxin 1. However, when administered with subtherapeutic doses of opioids or the enkephalinase inhibitor thiorphan, these subtype-selective Na V 1.7 inhibitors produced profound analgesia. Our results suggest that in these inflammatory models, acute administration of peripherally restricted Na V 1.7 inhibitors can only produce analgesia when administered in combination with an opioid.

Original languageEnglish (US)
Article number40883
JournalScientific reports
Volume7
DOIs
StatePublished - Jan 20 2017

ASJC Scopus subject areas

  • General

Fingerprint

Dive into the research topics of 'Pharmacological characterisation of the highly Na v 1.7 selective spider venom peptide Pn3a'. Together they form a unique fingerprint.

Cite this