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Updated: Dec 27, 2025

Assessing Mitochondrial Function in Sciatic Nerve by High-Resolution Respirometry
Published on: May 5, 2022
Paclitaxel-induced peripheral neuropathy is caused by epidermal ROS and mitochondrial damage through conserved MMP-13
Anthony M Cirrincione1, Adriana D Pellegrini2, Jessica R Dominy2
1University of Miami, Department of Biology, 1301 Memorial Drive, Coral Gables, FL, 33146, USA.
Abstract:
Paclitaxel induces peripheral neuropathy as a side effect of cancer treatment. The underlying causes are unclear, but epidermal, unmyelinated axons have been shown to be the first to degenerate. We previously utilized an in vivo zebrafish model to show that the epidermal matrix-metalloproteinase 13 (MMP-13) induces degeneration of unmyelinated axons, whereas pharmacological inhibition of MMP-13 prevented axon degeneration. However, the precise functions by which MMP-13 is regulated and affects axons remained elusive. In this study, we assessed mitochondrial damage and reactive oxygen species (ROS) formation as possible inducers of MMP-13, and we analyzed MMP-13-dependent damage. We show that the small ROS, H2O2, is increased in basal keratinocytes following treatment with paclitaxel. Cytoplasmic H2O2 appears to derive, at least in part, from mitochondrial damage, leading to upregulation of MMP-13, which in turn underlies increased epidermal extracellular matrix degradation. Intriguingly, also axonal mitochondria show signs of damage, such as fusion/fission defects and vacuolation, but axons do not show increased levels of H2O2. Since MMP-13 inhibition prevents axon degeneration but does not prevent mitochondrial vacuolation, we suggest that vacuolization occurs independently of axonal damage. Finally, we show that MMP-13 dysregulation also underlies paclitaxel-induced peripheral neuropathy in mammals, indicating that epidermal mitochondrial H2O2 and its effectors could be targeted for therapeutic interventions.
Insights
Paclitaxel causes nerve damage by increasing epidermal reactive oxygen species (ROS), which upregulates MMP-13. Inhibiting MMP-13 may prevent paclitaxel-induced peripheral neuropathy.
Area of Science:
- Neuroscience
- Cell Biology
- Toxicology
Background:
- Paclitaxel, a cancer drug, causes peripheral neuropathy.
- Epidermal unmyelinated axons are the first to degenerate.
- Matrix-metalloproteinase 13 (MMP-13) in the epidermis contributes to axon degeneration.
Purpose of the Study:
- Investigate the regulation of MMP-13 by mitochondrial damage and reactive oxygen species (ROS).
- Analyze MMP-13-dependent axonal damage.
- Determine if MMP-13 dysregulation is conserved in mammals.
Main Methods:
- Utilized an in vivo zebrafish model.
- Assessed mitochondrial damage and ROS formation (H2O2).
- Pharmacologically inhibited MMP-13.
Main Results:
- Paclitaxel increased H2O2 in epidermal keratinocytes, leading to MMP-13 upregulation and extracellular matrix degradation.
- Axonal mitochondria showed damage (fusion/fission defects, vacuolation) but not increased H2O2.
- MMP-13 inhibition prevented axon degeneration but not mitochondrial vacuolation.
- MMP-13 dysregulation was confirmed in paclitaxel-induced peripheral neuropathy in mammals.
Conclusions:
- Epidermal mitochondrial H2O2 upregulates MMP-13, causing extracellular matrix degradation and subsequent axon degeneration.
- Axonal mitochondrial vacuolation is independent of MMP-13-mediated axonal damage.
- Targeting epidermal mitochondrial H2O2 and MMP-13 offers a potential therapeutic strategy for paclitaxel-induced peripheral neuropathy.
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