Mitochondrial Reactive Oxygen Species Mediate Activation of TRPV1 and Calcium Entry Following Peripheral Sensory

Bradley Kievit1, Aaron D Johnstone2, Julien Gibon1

  • 1Department of Biology, University of British Columbia Okanagan, Kelowna, BC, Canada.

Insights

Axon injury triggers self-destruction via calcium influx, mediated by TRPV1 channels. Mitochondrial reactive oxygen species (ROS) activate TRPV1, driving this calcium rise and subsequent axonal degeneration.

Area of Science:

  • Neuroscience
  • Cell Biology
  • Ion Channel Physiology

Background:

  • Axon degeneration after injury involves signaling pathways and calcium influx.
  • The specific ion channels and activation mechanisms for this calcium rise remain largely unknown.
  • Transient Receptor Potential Vanilloid 1 (TRPV1) is implicated in calcium signaling.

Purpose of the Study:

  • To investigate the role of TRPV1 channels in calcium influx and degeneration following axonal injury.
  • To determine if mitochondrial reactive oxygen species (ROS) production regulates TRPV1 activity after axotomy.

Main Methods:

  • In vitro transection of murine dorsal root ganglia (DRG) sensory axons.
  • Intra-axonal calcium imaging to measure Ca2+ influx.
  • Utilized TRPV1 knockout mice and capsazepine (CPZ) treatment.
  • Interventions included NAD+ supplementation, NAC, and MitoQ to modulate mitochondrial ROS.

Main Results:

  • Axons lacking TRPV1 or treated with CPZ showed significantly reduced Ca2+ influx after transection.
  • TRPV1 knockout sensory neurons exhibited partial rescue from degeneration post-injury.
  • Mitochondrial ROS production, modulated by NAD+, NAC, or MitoQ, was essential for axotomy-induced TRPV1 activation and Ca2+ influx.

Conclusions:

  • TRPV1 channels play a critical pro-degenerative role in axonal injury.
  • Mitochondrial ROS production is a key upstream activator of TRPV1 following axotomy.
  • Targeting ROS-dependent TRPV1 activation may offer therapeutic strategies for axonal degeneration.

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