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Updated: Nov 24, 2025

Author Spotlight: Exploring the Role of Ion Channels in Cancer: Characterization and Potential Treatment Approaches
Published on: June 16, 2023
Imbalanced Subthreshold Currents Following Sepsis and Chemotherapy: A Shared Mechanism Offering a New Therapeutic
Mark M Rich1, Stephen N Housley2,3, Paul Nardelli2
1Department of Neuroscience, Cell Biology and Physiology, Wright State University, Dayton, OH, USA.
Abstract:
Both sepsis and treatment of cancer with chemotherapy are known to cause neurologic dysfunction. The primary defects seen in both groups of patients are neuropathy and encephalopathy; the underlying mechanisms are poorly understood. Analysis of preclinical models of these disparate conditions reveal similar defects in ion channel function contributing to peripheral neuropathy. The defects in ion channel function extend to the central nervous system where lower motoneurons are affected. In motoneurons the defect involves ion channels responsible for subthreshold currents that convert steady depolarization into repetitive firing. The inability to correctly translate depolarization into steady, repetitive firing has profound effects on motor function, and could be an important contributor to weakness and fatigue experienced by both groups of patients. The possibility that disruption of function, either instead of, or in addition to neurodegeneration, may underlie weakness and fatigue leads to a novel approach to therapy. Activation of serotonin (5HT) receptors in a rat model of sepsis restores the normal balance of subthreshold currents and normal motoneuron firing. If an imbalance of subthreshold currents also occurs in other central nervous system neurons, it could contribute to encephalopathy. We hypothesize that pharmacologically restoring the proper balance of subthreshold currents might provide effective therapy for both neuropathy and encephalopathy in patients recovering from sepsis or treatment with chemotherapy.
Insights
Neurologic dysfunction from sepsis and chemotherapy may stem from ion channel defects affecting nerve cell firing. Restoring normal ion channel function, potentially with serotonin receptor activation, could treat neuropathy and encephalopathy.
Area of Science:
- Neuroscience
- Ion channel physiology
- Pharmacology
Background:
- Sepsis and chemotherapy can cause neuropathy and encephalopathy, with unclear mechanisms.
- Preclinical models show similar ion channel defects in both conditions, affecting peripheral and central nervous system neurons.
- These defects impact motoneuron firing, potentially causing weakness and fatigue.
Purpose of the Study:
- To investigate the role of ion channel dysfunction in sepsis- and chemotherapy-induced neurologic deficits.
- To explore a novel therapeutic approach targeting ion channel function.
- To evaluate the potential of serotonin receptor activation in a sepsis model.
Main Methods:
- Analysis of preclinical models of sepsis and chemotherapy.
- Electrophysiological assessment of ion channel function in neurons.
- Pharmacological intervention using serotonin receptor agonists in a rat sepsis model.
Main Results:
- Identified similar ion channel defects in motoneurons in preclinical models of sepsis and chemotherapy.
- Observed that serotonin (5HT) receptor activation restored normal subthreshold currents and motoneuron firing in a rat sepsis model.
- Hypothesized that these findings may extend to encephalopathy.
Conclusions:
- Ion channel dysfunction, rather than solely neurodegeneration, may underlie weakness and fatigue in sepsis and chemotherapy patients.
- Pharmacologically restoring ion channel balance presents a potential therapeutic strategy.
- Targeting serotonin receptors may offer a novel treatment for sepsis- and chemotherapy-induced neuropathy and encephalopathy.
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