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Updated: May 4, 2026

Monitoring the Reductive and Oxidative Half-Reactions of a Flavin-Dependent Monooxygenase using Stopped-Flow Spectrophotometry
Published on: March 18, 2012
Evolution of NADPH Oxidase Inhibitors: Selectivity and Mechanisms for Target Engagement
Sebastian Altenhöfer1, Kim A Radermacher1, Pamela W M Kleikers1
1Department of Pharmacology, Cardiovascular Research Institute Maastricht (CARIM), Maastricht University , Maastricht, the Netherlands .
Significance:
Oxidative stress, an excess of reactive oxygen species (ROS) production versus consumption, may be involved in the pathogenesis of different diseases. The only known enzymes solely dedicated to ROS generation are nicotinamide adenine dinucleotide phosphate (NADPH) oxidases with their catalytic subunits (NOX). After the clinical failure of most antioxidant trials, NOX inhibitors are the most promising therapeutic option for diseases associated with oxidative stress.
Recent Advances:
Historical NADPH oxidase inhibitors, apocynin and diphenylene iodonium, are un-specific and not isoform selective. Novel NOX inhibitors stemming from rational drug discovery approaches, for example, GKT137831, ML171, and VAS2870, show improved specificity for NADPH oxidases and moderate NOX isoform selectivity. Along with NOX2 docking sequence (NOX2ds)-tat, a peptide-based inhibitor, the use of these novel small molecules in animal models has provided preliminary in vivo evidence for a pathophysiological role of specific NOX isoforms.
Critical Issues:
Here, we discuss whether novel NOX inhibitors enable reliable validation of NOX isoforms' pathological roles and whether this knowledge supports translation into pharmacological applications. Modern NOX inhibitors have increased the evidence for pathophysiological roles of NADPH oxidases. However, in comparison to knockout mouse models, NOX inhibitors have limited isoform selectivity. Thus, their use does not enable clear statements on the involvement of individual NOX isoforms in a given disease.
Future Directions:
The development of isoform-selective NOX inhibitors and biologicals will enable reliable validation of specific NOX isoforms in disease models other than the mouse. Finally, GKT137831, the first NOX inhibitor in clinical development, is poised to provide proof of principle for the clinical potential of NOX inhibition.
Insights
Novel nicotinamide adenine dinucleotide phosphate (NADPH) oxidase (NOX) inhibitors show promise for treating diseases linked to oxidative stress. However, current inhibitors lack the isoform selectivity needed for definitive disease validation, highlighting the need for more targeted drug development.
Area of Science:
- Biochemistry
- Pharmacology
- Molecular Biology
Background:
- Oxidative stress, driven by excess reactive oxygen species (ROS), is implicated in various diseases.
- Nicotinamide adenine dinucleotide phosphate (NADPH) oxidases (NOX) are key enzymes in ROS generation.
- Antioxidant trials have largely failed, making NOX inhibitors a promising therapeutic avenue.
Purpose of the Study:
- To evaluate the utility of novel NOX inhibitors in validating the pathological roles of specific NOX isoforms.
- To assess the potential of NOX inhibitors for pharmacological applications in disease treatment.
Main Methods:
- Review of historical and novel NOX inhibitors, including apocynin, diphenylene iodonium, GKT137831, ML171, VAS2870, and NOX2ds-tat.
- Analysis of evidence from animal models using these inhibitors.
- Comparison of NOX inhibitors with knockout mouse models for isoform selectivity.
Main Results:
- Modern NOX inhibitors provide increased evidence for the involvement of NADPH oxidases in disease pathogenesis.
- However, current NOX inhibitors exhibit limited isoform selectivity compared to genetic models.
- This lack of selectivity hinders clear determination of individual NOX isoform involvement in specific diseases.
Conclusions:
- Development of isoform-selective NOX inhibitors and biologicals is crucial for reliable validation of NOX isoforms in disease models.
- GKT137831, the first NOX inhibitor in clinical trials, may offer proof of concept for NOX inhibition's clinical utility.
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