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Secretion of S100A8, S100A9, and S100A12 by Neutrophils Involves Reactive Oxygen Species and Potassium Efflux

S100A8/A9 (calprotectin) and S100A12 proinflammatory mediators are found at inflammatory sites and in the serum of patients with inflammatory or autoimmune diseases. These cytoplasmic proteins are secreted by neutrophils at sites of inflammation via alternative secretion pathways of which little is...

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Autores principales: Tardif, Mélanie R., Chapeton-Montes, Julie Andrea, Posvandzic, Alma, Pagé, Nathalie, Gilbert, Caroline, Tessier, Philippe A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Hindawi Publishing Corporation 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4736198/
https://www.ncbi.nlm.nih.gov/pubmed/27057553
http://dx.doi.org/10.1155/2015/296149
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author Tardif, Mélanie R.
Chapeton-Montes, Julie Andrea
Posvandzic, Alma
Pagé, Nathalie
Gilbert, Caroline
Tessier, Philippe A.
author_facet Tardif, Mélanie R.
Chapeton-Montes, Julie Andrea
Posvandzic, Alma
Pagé, Nathalie
Gilbert, Caroline
Tessier, Philippe A.
author_sort Tardif, Mélanie R.
collection PubMed
description S100A8/A9 (calprotectin) and S100A12 proinflammatory mediators are found at inflammatory sites and in the serum of patients with inflammatory or autoimmune diseases. These cytoplasmic proteins are secreted by neutrophils at sites of inflammation via alternative secretion pathways of which little is known. This study examined the nature of the stimuli leading to S100A8/A9 and S100A12 secretion as well as the mechanism involved in this alternative secretion pathway. Chemotactic agents, cytokines, and particulate molecules were used to stimulate human neutrophils. MSU crystals, PMA, and H(2)O(2) induced the release of S100A8, S100A9, and S100A12 homodimers, as well as S100A8/A9 heterodimer. High concentrations of S100A8/A9 and S100A12 were secreted in response to nanoparticles like MSU, silica, TiO(2), fullerene, and single-wall carbon nanotubes as well as in response to microbe-derived molecules, such as zymosan or HKCA. However, neutrophils exposed to the chemotactic factors fMLP failed to secrete S100A8/A9 or S100A12. Secretion of S100A8/A9 was dependent on the production of reactive oxygen species and required K(+) exchanges through the ATP-sensitive K(+) channel. Altogether, these findings suggest that S100A12 and S100A8/A9 are secreted independently either via distinct mechanisms of secretion or following the activation of different signal transduction pathways.
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spelling pubmed-47361982016-04-07 Secretion of S100A8, S100A9, and S100A12 by Neutrophils Involves Reactive Oxygen Species and Potassium Efflux Tardif, Mélanie R. Chapeton-Montes, Julie Andrea Posvandzic, Alma Pagé, Nathalie Gilbert, Caroline Tessier, Philippe A. J Immunol Res Research Article S100A8/A9 (calprotectin) and S100A12 proinflammatory mediators are found at inflammatory sites and in the serum of patients with inflammatory or autoimmune diseases. These cytoplasmic proteins are secreted by neutrophils at sites of inflammation via alternative secretion pathways of which little is known. This study examined the nature of the stimuli leading to S100A8/A9 and S100A12 secretion as well as the mechanism involved in this alternative secretion pathway. Chemotactic agents, cytokines, and particulate molecules were used to stimulate human neutrophils. MSU crystals, PMA, and H(2)O(2) induced the release of S100A8, S100A9, and S100A12 homodimers, as well as S100A8/A9 heterodimer. High concentrations of S100A8/A9 and S100A12 were secreted in response to nanoparticles like MSU, silica, TiO(2), fullerene, and single-wall carbon nanotubes as well as in response to microbe-derived molecules, such as zymosan or HKCA. However, neutrophils exposed to the chemotactic factors fMLP failed to secrete S100A8/A9 or S100A12. Secretion of S100A8/A9 was dependent on the production of reactive oxygen species and required K(+) exchanges through the ATP-sensitive K(+) channel. Altogether, these findings suggest that S100A12 and S100A8/A9 are secreted independently either via distinct mechanisms of secretion or following the activation of different signal transduction pathways. Hindawi Publishing Corporation 2015 2015-12-30 /pmc/articles/PMC4736198/ /pubmed/27057553 http://dx.doi.org/10.1155/2015/296149 Text en Copyright © 2015 Mélanie R. Tardif et al. https://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Tardif, Mélanie R.
Chapeton-Montes, Julie Andrea
Posvandzic, Alma
Pagé, Nathalie
Gilbert, Caroline
Tessier, Philippe A.
Secretion of S100A8, S100A9, and S100A12 by Neutrophils Involves Reactive Oxygen Species and Potassium Efflux
title Secretion of S100A8, S100A9, and S100A12 by Neutrophils Involves Reactive Oxygen Species and Potassium Efflux
title_full Secretion of S100A8, S100A9, and S100A12 by Neutrophils Involves Reactive Oxygen Species and Potassium Efflux
title_fullStr Secretion of S100A8, S100A9, and S100A12 by Neutrophils Involves Reactive Oxygen Species and Potassium Efflux
title_full_unstemmed Secretion of S100A8, S100A9, and S100A12 by Neutrophils Involves Reactive Oxygen Species and Potassium Efflux
title_short Secretion of S100A8, S100A9, and S100A12 by Neutrophils Involves Reactive Oxygen Species and Potassium Efflux
title_sort secretion of s100a8, s100a9, and s100a12 by neutrophils involves reactive oxygen species and potassium efflux
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4736198/
https://www.ncbi.nlm.nih.gov/pubmed/27057553
http://dx.doi.org/10.1155/2015/296149
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