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.

Redox Biology
|December 2, 2022
PubMed

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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