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Updated: Jun 26, 2026

Nerve Excitability Assessment in Chemotherapy-induced Neurotoxicity
Published on: April 26, 2012
Acute abnormalities of sensory nerve function associated with oxaliplatin-induced neurotoxicity
Susanna B Park1, David Goldstein, Cindy S-Y Lin
1Prince of Wales Medical Research Institute, Barker St, Randwick, Sydney, New South Wales 2031.
Purpose:
Neurotoxicity is becoming increasingly recognized as the major dose-limiting toxicity of oxaliplatin. Because the mechanism of oxaliplatin-induced neurotoxicity remains unclear, the present study investigated the potential of axonal excitability techniques in identifying pathophysiologic mechanisms and early markers of nerve dysfunction.
Patients And Methods:
Measures of sensory axonal excitability were recorded before and after infusion over 88 treatment cycles in 25 patients with colorectal cancer, who received a total oxaliplatin dose of 766 +/- 56 mg/m(2). Neurologic assessment, clinical rating scales, and routine nerve conduction studies were performed.
Results:
By completion of treatment, 16% of patients had developed severe (grade 3) neurotoxicity, and oxaliplatin dose reduction or cessation as a result of neurotoxicity was required in 40% of patients. Changes in axonal excitability occurred after infusion and could be explained on the basis of alterations in axonal membrane sodium (Na+) channel function (refractoriness: 7.6% +/- 1.7% before infusion v 4.5% +/- 1.4% after infusion; P = .03; superexcitability: -22.8% +/- 0.8% before infusion v -20.1% +/- 1.1% after infusion; P = .0002). Changes became less pronounced in later treatment cycles, suggesting that chronic nerve dysfunction and sensory loss masked acute effects at higher cumulative doses. Importantly, patients who demonstrated reductions in superexcitability in early treatment were subsequently more likely to develop moderate to severe neurotoxicity. The findings suggest that the degree of acute nerve dysfunction may relate to the development of chronic neurotoxicity.
Conclusion:
Sensory axonal excitability techniques may facilitate identification of Na+ channel dysfunction in oxaliplatin-induced neurotoxicity and thereby provide a method to identify patients at risk for neurotoxicity to target those most likely to benefit from future neuroprotective strategies.
Insights
Axonal excitability techniques reveal sodium channel dysfunction in oxaliplatin neurotoxicity. Early changes in nerve function may predict severe nerve damage in patients undergoing chemotherapy.
Area of Science:
- Neuroscience
- Oncology
- Pharmacology
Background:
- Oxaliplatin is a key chemotherapy agent for colorectal cancer.
- Neurotoxicity is a significant dose-limiting side effect of oxaliplatin.
- The precise mechanisms underlying oxaliplatin-induced neurotoxicity are not fully understood.
Purpose of the Study:
- To investigate axonal excitability techniques for identifying mechanisms of oxaliplatin neurotoxicity.
- To explore early markers of nerve dysfunction in patients treated with oxaliplatin.
- To assess the role of sodium channel function in oxaliplatin-induced nerve damage.
Main Methods:
- Sensory axonal excitability was measured in 25 colorectal cancer patients over 88 treatment cycles.
- Measurements were taken before and after oxaliplatin infusions.
- Neurologic assessments, clinical scales, and nerve conduction studies were also performed.
Main Results:
- 40% of patients required oxaliplatin dose adjustments due to neurotoxicity.
- Axonal excitability changes indicated altered sodium (Na+) channel function post-infusion.
- Reduced superexcitability early in treatment correlated with later moderate to severe neurotoxicity.
Conclusions:
- Axonal excitability techniques can identify sodium channel dysfunction in oxaliplatin neurotoxicity.
- These techniques may help identify patients at risk for neurotoxicity.
- This approach could guide the selection of patients for neuroprotective strategies.
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