Related Experiment Video
Updated: Jul 15, 2025

ROS Live Cell Imaging During Neuronal Development
Published on: February 9, 2021
Novel NADPH Oxidase-2 Inhibitors as Potential Anti-Inflammatory and Neuroprotective Agents
Matea Juric1, Varun Rawat2, Radhika Amaradhi2
1Department of Biophysics, Medical College of Wisconsin, Milwaukee, WI 53226, USA.
Abstract:
A family of seven NADPH oxidase enzymes (Nox1-5, Duox1-2) has been implicated in a variety of diseases, including inflammatory lung diseases, neurodegenerative diseases, cardiovascular diseases, and cancer. Here, we report the results of our studies aimed at developing novel brain-permeable Nox2 inhibitors with potential application as neuroprotective agents. Using cell-based assays, we identified a novel Nox2 inhibitor, TG15-132, that prevents PMA-stimulated oxygen consumption and reactive oxygen species (superoxide radical anion and hydrogen peroxide) formation upon acute treatment in differentiated HL60 cells. Long-term treatment with TG15-132 attenuates the induction of genes encoding Nox2 subunits, several inflammatory cytokines, and iNOS in differentiated THP-1 cells. Moreover, TG15-132 shows a relatively long plasma half-life (5.6 h) and excellent brain permeability, with a brain-to-plasma ratio (>5-fold) in rodent models. Additionally, TG15-132 does not cause any toxic effects on vital organs or blood biomarkers of toxicity in mice upon chronic dosing for seven days. We propose that TG15-132 may be used as a Nox2 inhibitor and a potential neuroprotective agent, with possible further structural modifications to increase its potency.
Insights
Researchers developed TG15-132, a novel brain-permeable Nox2 inhibitor. This compound shows potential as a neuroprotective agent, reducing reactive oxygen species and inflammation without causing toxicity in preclinical studies.
Area of Science:
- Biochemistry
- Pharmacology
- Neuroscience
Background:
- NADPH oxidase (Nox) enzymes, particularly Nox2, are implicated in various diseases, including neurodegenerative conditions.
- Developing brain-permeable inhibitors is crucial for targeting central nervous system disorders.
Purpose of the Study:
- To identify and characterize novel brain-permeable Nox2 inhibitors for potential neuroprotection.
- To evaluate the efficacy and safety of TG15-132 as a Nox2 inhibitor.
Main Methods:
- Cell-based assays using differentiated HL60 and THP-1 cells to assess inhibitor activity.
- Measurement of oxygen consumption and reactive oxygen species (ROS) production.
- Gene expression analysis for Nox2 subunits, inflammatory cytokines, and iNOS.
- Pharmacokinetic studies (plasma half-life, brain permeability) in rodent models.
- Toxicology assessment in mice upon chronic dosing.
Main Results:
- TG15-132 effectively inhibited PMA-stimulated oxygen consumption and ROS formation in HL60 cells.
- Long-term TG15-132 treatment reduced gene induction of Nox2 subunits, inflammatory cytokines, and iNOS in THP-1 cells.
- TG15-132 demonstrated a favorable plasma half-life (5.6 h) and significant brain permeability (>5-fold brain-to-plasma ratio).
- No toxic effects were observed in mice after seven days of chronic dosing.
Conclusions:
- TG15-132 is a potent, brain-permeable Nox2 inhibitor with potential neuroprotective properties.
- Its ability to reduce oxidative stress and inflammation, coupled with a good safety profile, supports its further development.
- Further structural modifications may enhance TG15-132's potency for therapeutic applications.
Related Concept Videos
Cognitive Enhancers: Cholinesterase Inhibitors and NMDA Receptor Antagonists
Drugs Affecting Neurotransmitter Synthesis
Antiepileptic Drugs: Modulators of Neurotransmitter Release Mediated by SV2A Protein
SV2A is a transmembrane glycoprotein located predominantly in the brain, modulating the release of neurotransmitters for neuronal communication. Both levetiracetam and brivaracetam exhibit a high affinity for...
Electron Transport Chain: Complex I and II
ROS generation is regulated and maintained at moderate levels necessary...

