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Updated: Apr 26, 2026

Nerve Excitability Assessment in Chemotherapy-induced Neurotoxicity
Published on: April 26, 2012
Oxaliplatin neurotoxicity involves peroxisome alterations. PPARγ agonism as preventive pharmacological approach
Matteo Zanardelli1, Laura Micheli1, Lorenzo Cinci1
1Dept. of Neuroscience, Psychology, Drug Research and Child Health - Neurofarba - Pharmacology and Toxicology Section, University of Florence, Florence, Italy.
Abstract:
The development of neuropathic syndromes is an important, dose limiting side effect of anticancer agents like platinum derivates, taxanes and vinca alkaloids. The causes of neurotoxicity are still unclear but the impairment of the oxidative equilibrium is strictly related to pain. Two intracellular organelles, mitochondria and peroxisomes cooperate to the maintaining of the redox cellular state. Whereas a relationship between chemotherapy-dependent mitochondrial alteration and neuropathy has been established, the role of peroxisome is poor explored. In order to study the mechanisms of oxaliplatin-induced neurotoxicity, peroxisomal involvement was evaluated in vitro and in vivo. In primary rat astrocyte cell culture, oxaliplatin (10 µM for 48 h or 1 µM for 5 days) increased the number of peroxisomes, nevertheless expression and functionality of catalase, the most important antioxidant defense enzyme in mammalian peroxisomes, were significantly reduced. Five day incubation with the selective Peroxisome Proliferator Activated Receptor-γ (PPAR-γ) antagonist G3335 (30 µM) induced a similar peroxisomal impairment suggesting a relationship between PPARγ signaling and oxaliplatin neurotoxicity. The PPARγ agonist rosiglitazone (10 µM) reduced the harmful effects induced both by G3335 and oxaliplatin. In vivo, in a rat model of oxaliplatin induced neuropathy, a repeated treatment with rosiglitazone (3 and 10 mg kg(-1) per os) significantly reduced neuropathic pain evoked by noxious (Paw pressure test) and non-noxious (Cold plate test) stimuli. The behavioral effect paralleled with the prevention of catalase impairment induced by oxaliplatin in dorsal root ganglia. In the spinal cord, catalase protection was showed by the lower rosiglitazone dosage without effect on the astrocyte density increase induced by oxaliplatin. Rosiglitazone did not alter the oxaliplatin-induced mortality of the human colon cancer cell line HT-29. These results highlight the role of peroxisomes in oxaliplatin-dependent nervous damage and suggest PPARγ stimulation as a candidate to counteract oxaliplatin neurotoxicity.
Insights
Oxaliplatin chemotherapy causes nerve damage, potentially through peroxisome impairment. Stimulating PPAR-gamma with rosiglitazone may counteract this neurotoxicity and reduce pain.
Area of Science:
- Neuroscience
- Cell Biology
- Pharmacology
Background:
- Chemotherapy agents like oxaliplatin can cause dose-limiting neuropathic syndromes.
- Oxaliplatin-induced neurotoxicity is linked to oxidative stress, but the role of peroxisomes is under-explored.
- Peroxisomes and mitochondria are key organelles in maintaining cellular redox balance.
Purpose of the Study:
- To investigate the involvement of peroxisomes in oxaliplatin-induced neurotoxicity.
- To explore the potential of Peroxisome Proliferator Activated Receptor-gamma (PPAR-γ) agonists in mitigating oxaliplatin neurotoxicity.
Main Methods:
- In vitro studies using primary rat astrocyte cell cultures treated with oxaliplatin and PPAR-γ modulators (G3335 and rosiglitazone).
- In vivo studies using a rat model of oxaliplatin-induced neuropathy, assessing pain behavior and biochemical markers.
- Evaluation of peroxisome number, catalase expression/functionality, and astrocyte density.
Main Results:
- Oxaliplatin increased peroxisome number but reduced catalase expression and function in rat astrocytes.
- PPAR-γ antagonist G3335 mimicked oxaliplatin's effects, while PPAR-γ agonist rosiglitazone counteracted these effects.
- In vivo, rosiglitazone significantly reduced oxaliplatin-induced neuropathic pain and prevented catalase impairment in dorsal root ganglia.
Conclusions:
- Peroxisomal dysfunction, specifically impaired catalase activity, plays a significant role in oxaliplatin neurotoxicity.
- PPAR-γ signaling is implicated in oxaliplatin-induced nervous system damage.
- Stimulating PPAR-γ with rosiglitazone shows therapeutic potential for managing oxaliplatin-related neuropathic pain.
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