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Updated: Jan 24, 2026

Direct-current Stimulation and Multi-electrode Array Recording of Seizure-like Activity in Mice Brain Slice Preparation
Published on: June 7, 2016
Gluconate suppresses seizure activity in developing brains by inhibiting CLC-3 chloride channels
Zheng Wu1, Qingwei Huo2,3, Liang Ren4
1Department of Biology, Huck Institutes of Life Sciences, The Pennsylvania State University, University Park, PA, 16802, USA.
Insights
Gluconate effectively inhibits neonatal seizures by targeting CLC-3 chloride channels, which are crucial for excitatory GABA activity in developing brains. This finding offers a new therapeutic approach for treating infant epilepsy.
Area of Science:
- Neuroscience
- Molecular Biology
- Pharmacology
Background:
- Neonatal seizures differ significantly from adult seizures, often showing resistance to conventional antiepileptic drugs.
- The specific ion channel mechanisms underlying neonatal epilepsy remain incompletely understood.
Purpose of the Study:
- To investigate the role of CLC-3 chloride channels in neonatal seizures.
- To determine the efficacy of gluconate in inhibiting neonatal seizure activity via CLC-3 channel modulation.
Main Methods:
- Electrophysiological recordings (voltage-dependent outward rectifying Cl- current) in neonatal and adult mouse brain slices.
- In vivo electroencephalogram (EEG) recordings in neonatal animals.
- Analysis of CLC-3 knockout mouse models.
- Assessment of intracellular Cl- homeostasis and GABAergic activity.
Main Results:
- A voltage-dependent outward rectifying Cl- current mediated by CLC-3 channels was identified in developing brains but absent in adult brains.
- Gluconate administration suppressed seizure activity in neonatal brain slices and in vivo EEG recordings.
- CLC-3 knockout neonatal neurons exhibited diminished outward rectifying Cl- current and reduced epileptiform activity.
- Activation of CLC-3 channels was shown to disrupt intracellular Cl- homeostasis and enhance excitatory GABA activity.
Conclusions:
- Inhibition of CLC-3 chloride channels by gluconate represents a promising therapeutic strategy for neonatal seizures.
- Targeting CLC-3 channels may offer a specific approach to managing epilepsy in newborns.
- Understanding CLC-3 channel function is critical for addressing the unique pathophysiology of neonatal seizures.
Abstract:
Neonatal seizures are different from adult seizures, and many antiepileptic drugs that are effective in adults often fail to treat neonates. Here, we report that gluconate inhibits neonatal seizure by inhibiting CLC-3 chloride channels. We detect a voltage-dependent outward rectifying Cl- current mediated by CLC-3 Cl- channels in early developing brains but not adult mouse brains. Blocking CLC-3 Cl- channels by gluconate inhibits seizure activity both in neonatal brain slices and in neonatal animals with in vivo EEG recordings. Consistently, neonatal neurons of CLC-3 knockout mice lack the outward rectifying Cl- current and show reduced epileptiform activity upon stimulation. Mechanistically, we demonstrate that activation of CLC-3 Cl- channels alters intracellular Cl- homeostasis and enhances GABA excitatory activity. Our studies suggest that gluconate can suppress neonatal seizure activities through inhibiting CLC-3 Cl- channels in developing brains.
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Seizures: Classification
Seizures are typically classified into two main categories: focal and generalized seizures.
Focal Seizures
Focal seizures originate from specific regions of the brain. These seizures are further sub-classified into two types: