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Updated: Oct 18, 2025

Nerve Excitability Assessment in Chemotherapy-induced Neurotoxicity
Published on: April 26, 2012
Cisplatin-induced neurotoxicity involves the disruption of serotonergic neurotransmission
Anna Wellenberg1, Vanessa Brinkmann1, Julia Bornhorst2
1Institute of Toxicology, Medical Faculty, Heinrich Heine University, D-40225 Düsseldorf, Germany.
Abstract:
Neurotoxicity is a frequent side effect of cisplatin (CisPt)-based anticancer therapy whose pathophysiology is largely vague. Here, we exploited C. elegans as a 3R-compliant in vivo model to elucidate molecular mechanisms contributing to CisPt-induced neuronal dysfunction. To this end, we monitored the impact of CisPt on various sensory functions as well as pharyngeal neurotransmission by recording electropharyngeograms (EPGs). CisPt neither affected food and odor sensation nor mechano-sensation, which involve dopaminergic and glutaminergic neurotransmission. However, CisPt reduced serotonin-regulated pharyngeal pumping activity independent of changes in the morphology of related neurons. CisPt-mediated alterations in EPGs were fully rescued by addition of serotonin (5-HT) (≤ 2 mM). Moreover, the CisPt-induced pharyngeal injury was prevented by co-incubation with the clinically approved serotonin re-uptake inhibitory drug duloxetine. A protective effect of 5-HT was also observed with respect to CisPt-mediated impairment of another 5-HT-dependent process, the egg laying activity. Importantly, CisPt-induced apoptosis in the gonad and learning disability were not influenced by 5-HT. Using different C. elegans mutants we found that CisPt-mediated (neuro)toxicity is independent of serotonin biosynthesis and re-uptake and likely involves serotonin-receptor subtype 7 (SER-7)-related functions. In conclusion, by measuring EPGs as a surrogate parameter of neuronal dysfunction, we provide first evidence that CisPt-induced neurotoxicity in C. elegans involves 5-HT-dependent neurotransmission and SER-7-mediated signaling mechanisms and can be prevented by the clinically approved antidepressant duloxetine. The data highlight the particular suitability of C. elegans as a 3R-conform in vivo model in molecular (neuro)toxicology and, moreover, for the pre-clinical identification of neuroprotective candidate drugs.
Insights
Cisplatin chemotherapy causes neurotoxicity. This study in C. elegans reveals it involves serotonin signaling and can be prevented by duloxetine, a clinically approved antidepressant.
Area of Science:
- Neuroscience
- Toxicology
- Genetics
Background:
- Cisplatin (CisPt) chemotherapy frequently causes neurotoxicity, with unclear mechanisms.
- Understanding CisPt neurotoxicity is crucial for improving cancer patient outcomes.
- C. elegans offers a 3R-compliant model for studying neurotoxicity.
Purpose of the Study:
- To elucidate molecular mechanisms of CisPt-induced neurotoxicity using C. elegans.
- To investigate the role of serotonin signaling in CisPt neurotoxicity.
- To identify potential neuroprotective strategies against CisPt.
Main Methods:
- Electropharyngeograms (EPGs) to assess pharyngeal neurotransmission.
- Monitoring sensory functions and neuronal morphology.
- Utilizing C. elegans mutants and drug interventions (serotonin, duloxetine).
Main Results:
- CisPt impaired serotonin-regulated pharyngeal pumping, but not other sensory functions.
- Serotonin (5-HT) and duloxetine rescued CisPt-induced pharyngeal dysfunction.
- Neurotoxicity was independent of serotonin synthesis/reuptake but involved SER-7 receptor signaling.
Conclusions:
- CisPt neurotoxicity in C. elegans involves 5-HT-dependent neurotransmission and SER-7 signaling.
- Duloxetine demonstrates neuroprotective potential against CisPt toxicity.
- C. elegans is a valuable model for neurotoxicology and drug screening.
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