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Nerve Excitability Assessment in Chemotherapy-induced Neurotoxicity
Published on: April 26, 2012
Acute changes in nerve excitability following oxaliplatin treatment in mice
Preet G S Makker1, Daniel White1, Justin G Lees1
1Translational Neuroscience Facility, School of Medical Sciences, University of New South Wales (UNSW), Sydney, New South Wales, Australia.
Abstract:
Oxaliplatin chemotherapy produces acute changes in peripheral nerve excitability in humans by modulating voltage-gated Na+ channel activity. However, there are few animal studies of oxaliplatin-induced neuropathy that demonstrate similar changes in excitability. In the present study, we measured the excitability of motor and sensory caudal nerve in C57BL/6 mice after oxaliplatin injections either systemically (intraperitoneal) or locally (intramuscular at the base of the tail). As opposed to intraperitoneal administration of oxaliplatin, a single intramuscular injection of oxaliplatin produced changes in both motor and sensory axons. In motor axons, oxaliplatin caused a greater change in response to long-lasting depolarization and an upward shift in the recovery cycle, particularly at 24 h [depolarizing threshold electrotonus (TEd) 10-20 ms, P = 0.0095; TEd 90-100 ms, P = 0.0056) and 48 h (TEd 10-20 ms, P = 0.02; TEd 90-100 ms, P = 0.04) posttreatment. Oxaliplatin treatment also stimulated the production of afterdischarges in motor axons. These changes were transient and showed dose dependence. Mathematical modeling demonstrated that these changes could be accounted for by slowing inactivation of voltage-gated Na+ channels by 73.3% and reducing fast K+ conductance by 47% in motor axons. In sensory axons, oxaliplatin caused an increase in threshold, a reduction in peak amplitude, and greater threshold changes to strong hyperpolarizing currents on days 4 and 8. Thus, local administration of oxaliplatin produced clinically relevant changes in nerve excitability in mice and may provide an alternative approach for the study of acute oxaliplatin-induced neurotoxicity.NEW & NOTEWORTHY We present a novel mouse model of acute oxaliplatin-induced peripheral neurotoxicity that is comparable to clinical observations. Intramuscular injection of oxaliplatin produced acute changes in motor nerve excitability that were attributable to alterations in Na+ and K+ channel activity. Conversely, we were unable to show any significant changes in nerve excitability with systemic intraperitoneal injections of oxaliplatin. This study suggests that local intramuscular injection is a valid approach for modelling oxaliplatin-induced peripheral neuropathy in animals.
Insights
A novel intramuscular injection model in mice effectively replicates acute oxaliplatin-induced peripheral neurotoxicity, mirroring clinical observations by altering nerve excitability through voltage-gated sodium and potassium channel modulation.
Area of Science:
- Neuroscience
- Pharmacology
- Toxicology
Background:
- Oxaliplatin chemotherapy can cause acute peripheral nerve hyperexcitability in humans, linked to voltage-gated sodium channel (Na+) activity.
- Animal models for studying oxaliplatin-induced neurotoxicity often fail to replicate these observed changes in nerve excitability.
Purpose of the Study:
- To develop and validate a novel animal model for acute oxaliplatin-induced peripheral neurotoxicity.
- To investigate the effects of locally administered oxaliplatin on motor and sensory nerve excitability in mice.
Main Methods:
- C57BL/6 mice received single intramuscular injections of oxaliplatin at the base of the tail.
- Motor and sensory caudal nerve excitability was measured using electrophysiological techniques.
- Mathematical modeling was employed to elucidate the underlying ion channel mechanisms.
Main Results:
- Intramuscular oxaliplatin induced transient, dose-dependent changes in motor and sensory nerve excitability, unlike systemic injections.
- Motor axons showed increased excitability and altered recovery cycles, attributed to slowed Na+ channel inactivation and reduced K+ conductance.
- Sensory axons exhibited increased threshold and reduced amplitude following oxaliplatin treatment.
Conclusions:
- Local intramuscular administration of oxaliplatin provides a clinically relevant model for acute peripheral neurotoxicity in mice.
- This model allows for the study of oxaliplatin's effects on nerve excitability, primarily mediated by alterations in Na+ and K+ channel function.
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