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Updated: Aug 19, 2025

Electroconvulsive Seizures in Rats and Fractionation of Their Hippocampi to Examine Seizure-induced Changes in Postsynaptic Density Proteins
Published on: August 15, 2017
Specific inhibition of NADPH oxidase 2 modifies chronic epilepsy
Prince Kumar Singh1, Aseel Saadi1, Yara Sheeni1
1The Institute for Drug Research, The School of Pharmacy, Faculty of Medicine, The Hebrew University of Jerusalem, Jerusalem, 91120, Israel.
Abstract:
Recent work by us and others has implicated NADPH oxidase (NOX) enzymes as main producers of reactive oxygen species (ROS) following a brain insult such as status epilepticus, contributing to neuronal damage and development of epilepsy. Although several NOX isoforms have been examined in the context of epilepsy, most attention has focused on NOX2. In this present study, we demonstrate the effect of gp91ds-tat, a specific competitive inhibitor of NOX2, in in vitro epileptiform activity model as well as in temporal lobe epilepsy (TLE) model in rats. We showed that in in vitro seizure model, gp91ds-tat modulated Ca2+ oscillation, prevented epileptiform activity-induced ROS generation, mitochondrial depolarization, and neuronal death. Administration of gp91ds-tat 1 h after kainic acid-induced status epilepticus significantly decreased the expression of NOX2, as well as the overall NOX activity in the cortex and the hippocampus. Finally, we showed that upon continuous intracerebroventricular administration to epileptic rats, gp91ds-tat significantly reduced the seizure frequency and the total number of seizures post-treatment compared to the scrambled peptide-treated animals. The results of the study suggest that NOX2 may have an important effect on modulation of epileptiform activity and has a critical role in mediating seizure-induced NOX activation, ROS generation and oxidative stress in the brain, and thus significantly contributes to development of epilepsy following a brain insult.
Insights
Inhibition of NADPH oxidase 2 (NOX2) with gp91ds-tat reduced reactive oxygen species (ROS) and neuronal death in epilepsy models. This suggests NOX2 plays a key role in seizure-induced brain damage and epilepsy development.
Area of Science:
- Neuroscience
- Biochemistry
- Pathology
Background:
- NADPH oxidase (NOX) enzymes generate reactive oxygen species (ROS) after brain injury, contributing to neuronal damage and epilepsy.
- NOX2 is a primary suspect, but its specific role in epilepsy requires further investigation.
Purpose of the Study:
- To investigate the therapeutic potential of gp91ds-tat, a NOX2 inhibitor, in epilepsy models.
- To elucidate the role of NOX2 in seizure-induced oxidative stress and neuronal death.
Main Methods:
- In vitro models of epileptiform activity and in vivo temporal lobe epilepsy (TLE) rat models were used.
- gp91ds-tat was administered to inhibit NOX2 activity and assess its effects on ROS generation, mitochondrial function, neuronal survival, and seizure frequency.
Main Results:
- gp91ds-tat inhibited ROS generation, mitochondrial depolarization, and neuronal death in vitro.
- In vivo, gp91ds-tat reduced NOX2 expression and overall NOX activity post-status epilepticus.
- Continuous administration of gp91ds-tat significantly decreased seizure frequency and severity in epileptic rats.
Conclusions:
- NOX2 is critically involved in mediating seizure-induced NOX activation, ROS generation, and oxidative stress.
- Targeting NOX2 with inhibitors like gp91ds-tat may offer a novel therapeutic strategy for managing epilepsy following brain insults.
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