Acute changes in nerve excitability following oxaliplatin treatment in mice

Preet G S Makker1, Daniel White1, Justin G Lees1

  • 1Translational Neuroscience Facility, School of Medical Sciences, University of New South Wales (UNSW), Sydney, New South Wales, Australia.

Insights

A novel intramuscular injection model in mice effectively replicates acute oxaliplatin-induced peripheral neurotoxicity, mirroring clinical observations by altering nerve excitability through voltage-gated sodium and potassium channel modulation.

Area of Science:

  • Neuroscience
  • Pharmacology
  • Toxicology

Background:

  • Oxaliplatin chemotherapy can cause acute peripheral nerve hyperexcitability in humans, linked to voltage-gated sodium channel (Na+) activity.
  • Animal models for studying oxaliplatin-induced neurotoxicity often fail to replicate these observed changes in nerve excitability.

Purpose of the Study:

  • To develop and validate a novel animal model for acute oxaliplatin-induced peripheral neurotoxicity.
  • To investigate the effects of locally administered oxaliplatin on motor and sensory nerve excitability in mice.

Main Methods:

  • C57BL/6 mice received single intramuscular injections of oxaliplatin at the base of the tail.
  • Motor and sensory caudal nerve excitability was measured using electrophysiological techniques.
  • Mathematical modeling was employed to elucidate the underlying ion channel mechanisms.

Main Results:

  • Intramuscular oxaliplatin induced transient, dose-dependent changes in motor and sensory nerve excitability, unlike systemic injections.
  • Motor axons showed increased excitability and altered recovery cycles, attributed to slowed Na+ channel inactivation and reduced K+ conductance.
  • Sensory axons exhibited increased threshold and reduced amplitude following oxaliplatin treatment.

Conclusions:

  • Local intramuscular administration of oxaliplatin provides a clinically relevant model for acute peripheral neurotoxicity in mice.
  • This model allows for the study of oxaliplatin's effects on nerve excitability, primarily mediated by alterations in Na+ and K+ channel function.