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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.
Abstract:
Axons that are physically separated from their soma activate a series of signaling events that results in axonal self-destruction. A critical element of this signaling pathway is an intra-axonal calcium rise that occurs just prior to axonal fragmentation. Previous studies have shown that preventing this calcium rise delays the onset of axon fragmentation, yet the ion channels responsible for the influx, and the mechanisms by which they are activated, are largely unknown. Axonal injury can be modeled in vitro by transecting murine dorsal root ganglia (DRG) sensory axons. We coupled transections with intra-axonal calcium imaging and found that Ca2+ influx is sharply reduced in axons lacking trpv1 (for transient receptor potential cation channel vanilloid 1) and in axons treated with capsazepine (CPZ), a TRPV1 antagonist. Sensory neurons from trpv1 -/- mice were partially rescued from degeneration after transection, indicating that TRPV1 normally plays a pro-degenerative role after axonal injury. TRPV1 activity can be regulated by direct post-translational modification induced by reactive oxygen species (ROS). Here, we tested the hypothesis that mitochondrial ROS production induced by axotomy is required for TRPV1 activity and subsequent axonal degeneration. We found that reducing mitochondrial depolarization with NAD+ supplementation or scavenging ROS using NAC or MitoQ sharply attenuates TRPV1-dependent calcium influx induced by axotomy. This study shows that ROS-dependent TRPV1 activation is required for Ca2+ entry after axotomy.
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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