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Updated: Mar 13, 2026

Simultaneous Measurement of Superoxide/Hydrogen Peroxide and NADH Production by Flavin-containing Mitochondrial Dehydrogenases
Published on: February 24, 2018
Therapeutic potential of NADPH oxidase 1/4 inhibitors
G Teixeira1, C Szyndralewiez2, S Molango2
1Evotec International GmbH, Goettingen, Germany.
Abstract:
The NADPH oxidase (NOX) family of enzymes produces ROS as their sole function and is becoming recognized as key modulators of signal transduction pathways with a physiological role under acute stress and a pathological role after excessive activation under chronic stress. The seven isoforms differ in their regulation, tissue and subcellular localization and ROS products. The most studied are NOX1, 2 and 4. Genetic deletion of NOX1 and 4, in contrast to NOX2, has revealed no significant spontaneous pathologies and a pathogenic relevance of both NOX1 and 4 across multiple organs in a wide range of diseases and in particular inflammatory and fibrotic diseases. This has stimulated interest in NOX inhibitors for therapeutic application. GKT136901 and GKT137831 are two structurally related compounds demonstrating a preferential inhibition of NOX1 and 4 that have suitable properties for in vivo studies and have consequently been evaluated across a range of disease models and compared with gene deletion. In contrast to gene deletion, these inhibitors do not completely suppress ROS production, maintaining some basal level of ROS. Despite this and consistent with most gene deletion studies, these inhibitors are well tolerated and slow or prevent disease progression in a range of models of chronic inflammatory and fibrotic diseases by modulating common signal transduction pathways. Clinical trials in patients with GKT137831 have demonstrated excellent tolerability and reduction of various markers of chronic inflammation. NOX1/4 inhibition may provide a safe and effective therapeutic strategy for a range of inflammatory and fibrotic diseases.
Linked Articles:
This article is part of a themed section on Redox Biology and Oxidative Stress in Health and Disease. To view the other articles in this section visit http://onlinelibrary.wiley.com/doi/10.1111/bph.v174.12/issuetoc.
Insights
NADPH oxidase (NOX) enzymes, particularly NOX1 and NOX4, are implicated in inflammatory and fibrotic diseases. Inhibiting these enzymes with compounds like GKT137831 shows therapeutic potential for chronic conditions.
Area of Science:
- Redox Biology
- Enzymology
- Pharmacology
Background:
- NADPH oxidase (NOX) enzymes generate reactive oxygen species (ROS), modulating cellular signaling.
- NOX1 and NOX4 isoforms are increasingly recognized for their roles in inflammatory and fibrotic diseases.
- NOX enzymes have physiological roles in acute stress and pathological roles in chronic stress.
Purpose of the Study:
- To evaluate the therapeutic potential of NOX1/4 inhibitors in inflammatory and fibrotic diseases.
- To compare the effects of NOX1/4 inhibition with genetic deletion of NOX isoforms.
- To assess the safety and efficacy of GKT137831 in preclinical models and clinical trials.
Main Methods:
- Utilized NOX inhibitors GKT136901 and GKT137831, which preferentially inhibit NOX1 and NOX4.
- Evaluated inhibitors in various disease models, comparing outcomes with genetic NOX deletion.
- Conducted clinical trials with GKT137831 to assess tolerability and efficacy in patients with chronic inflammation.
Main Results:
- NOX1/4 inhibitors GKT136901 and GKT137831 demonstrated efficacy in preclinical models of chronic inflammatory and fibrotic diseases.
- Inhibitors slowed or prevented disease progression by modulating common signal transduction pathways.
- Clinical trials showed GKT137831 to be well-tolerated and effective in reducing markers of chronic inflammation.
Conclusions:
- NOX1/4 inhibition represents a promising therapeutic strategy for inflammatory and fibrotic diseases.
- GKT137831 exhibits excellent tolerability and efficacy in reducing chronic inflammation markers.
- Targeting NOX1/4 may offer a safe and effective treatment approach for a range of chronic conditions.
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