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A closer look into NADPH oxidase inhibitors: Validation and insight into their mechanism of action

NADPH-oxidases (NOXs) purposefully produce reactive-oxygen-species (ROS) and are found in most kingdoms of life. The seven human NOXs are each characterized by a specific expression profile and a fine regulation to spatio-temporally tune ROS concentration in cells and tissues. One of the best known...

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Autores principales: Reis, Joana, Massari, Marta, Marchese, Sara, Ceccon, Marta, Aalbers, Friso S., Corana, Federica, Valente, Sergio, Mai, Antonello, Magnani, Francesca, Mattevi, Andrea
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Elsevier 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7042484/
https://www.ncbi.nlm.nih.gov/pubmed/32105983
http://dx.doi.org/10.1016/j.redox.2020.101466
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author Reis, Joana
Massari, Marta
Marchese, Sara
Ceccon, Marta
Aalbers, Friso S.
Corana, Federica
Valente, Sergio
Mai, Antonello
Magnani, Francesca
Mattevi, Andrea
author_facet Reis, Joana
Massari, Marta
Marchese, Sara
Ceccon, Marta
Aalbers, Friso S.
Corana, Federica
Valente, Sergio
Mai, Antonello
Magnani, Francesca
Mattevi, Andrea
author_sort Reis, Joana
collection PubMed
description NADPH-oxidases (NOXs) purposefully produce reactive-oxygen-species (ROS) and are found in most kingdoms of life. The seven human NOXs are each characterized by a specific expression profile and a fine regulation to spatio-temporally tune ROS concentration in cells and tissues. One of the best known roles for NOXs is in host protection against pathogens but ROS themselves are important second messengers involved in tissue regeneration and the modulation of pathways that induce and sustain cell proliferation. As such, NOXs are attractive pharmacological targets in immunomodulation, fibrosis and cancer. We have studied an extensive number of available NOX inhibitors, with the specific aim to identify bona fide ligands versus ROS-scavenging molecules. Accordingly, we have established a comprehensive platform of biochemical and biophysical assays. Most of the investigated small molecules revealed ROS-scavenging and/or assay-interfering properties to various degrees. A few compounds, however, were also demonstrated to directly engage one or more NOX enzymes. Diphenylene iodonium was found to react with the NOXs’ flavin and heme prosthetic groups to form stable adducts. We also discovered that two compounds, VAS2870 and VAS3947, inhibit NOXs through the covalent alkylation of a cysteine residue. Importantly, the amino acid involved in covalent binding was found to reside in the dehydrogenase domain, where the nicotinamide ring of NADPH is bound. This work can serve as a springboard to guide further development of bona fide ligands with either agonistic or antagonistic properties toward NOXs.
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spelling pubmed-70424842020-03-03 A closer look into NADPH oxidase inhibitors: Validation and insight into their mechanism of action Reis, Joana Massari, Marta Marchese, Sara Ceccon, Marta Aalbers, Friso S. Corana, Federica Valente, Sergio Mai, Antonello Magnani, Francesca Mattevi, Andrea Redox Biol Research Paper NADPH-oxidases (NOXs) purposefully produce reactive-oxygen-species (ROS) and are found in most kingdoms of life. The seven human NOXs are each characterized by a specific expression profile and a fine regulation to spatio-temporally tune ROS concentration in cells and tissues. One of the best known roles for NOXs is in host protection against pathogens but ROS themselves are important second messengers involved in tissue regeneration and the modulation of pathways that induce and sustain cell proliferation. As such, NOXs are attractive pharmacological targets in immunomodulation, fibrosis and cancer. We have studied an extensive number of available NOX inhibitors, with the specific aim to identify bona fide ligands versus ROS-scavenging molecules. Accordingly, we have established a comprehensive platform of biochemical and biophysical assays. Most of the investigated small molecules revealed ROS-scavenging and/or assay-interfering properties to various degrees. A few compounds, however, were also demonstrated to directly engage one or more NOX enzymes. Diphenylene iodonium was found to react with the NOXs’ flavin and heme prosthetic groups to form stable adducts. We also discovered that two compounds, VAS2870 and VAS3947, inhibit NOXs through the covalent alkylation of a cysteine residue. Importantly, the amino acid involved in covalent binding was found to reside in the dehydrogenase domain, where the nicotinamide ring of NADPH is bound. This work can serve as a springboard to guide further development of bona fide ligands with either agonistic or antagonistic properties toward NOXs. Elsevier 2020-02-15 /pmc/articles/PMC7042484/ /pubmed/32105983 http://dx.doi.org/10.1016/j.redox.2020.101466 Text en © 2020 The Authors http://creativecommons.org/licenses/by-nc-nd/4.0/ This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/).
spellingShingle Research Paper
Reis, Joana
Massari, Marta
Marchese, Sara
Ceccon, Marta
Aalbers, Friso S.
Corana, Federica
Valente, Sergio
Mai, Antonello
Magnani, Francesca
Mattevi, Andrea
A closer look into NADPH oxidase inhibitors: Validation and insight into their mechanism of action
title A closer look into NADPH oxidase inhibitors: Validation and insight into their mechanism of action
title_full A closer look into NADPH oxidase inhibitors: Validation and insight into their mechanism of action
title_fullStr A closer look into NADPH oxidase inhibitors: Validation and insight into their mechanism of action
title_full_unstemmed A closer look into NADPH oxidase inhibitors: Validation and insight into their mechanism of action
title_short A closer look into NADPH oxidase inhibitors: Validation and insight into their mechanism of action
title_sort closer look into nadph oxidase inhibitors: validation and insight into their mechanism of action
topic Research Paper
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7042484/
https://www.ncbi.nlm.nih.gov/pubmed/32105983
http://dx.doi.org/10.1016/j.redox.2020.101466
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