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Malat1 deficiency prevents hypoxia-induced lung dysfunction by protecting the access to alveoli

Hypoxia is common in lung diseases and a potent stimulator of the long non-coding RNA Metastasis-Associated Lung Adenocarcinoma Transcript 1 (MALAT1). Herein, we investigated the impact of Malat1 on hypoxia-induced lung dysfunction in mice. Malat1-deficient mice and their wild-type littermates were...

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Autores principales: Sallé-Lefort, Sandrine, Miard, Stéphanie, Henry, Cyndi, Arias-Reyes, Christian, Marcouiller, François, Beaulieu, Marie-Josée, Aubin, Sophie, Lechasseur, Ariane, Jubinville, Éric, Marsolais, David, Morissette, Mathieu C., Joseph, Vincent, Soliz, Jorge, Bossé, Ynuk, Picard, Frédéric
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9464821/
https://www.ncbi.nlm.nih.gov/pubmed/36105289
http://dx.doi.org/10.3389/fphys.2022.949378
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author Sallé-Lefort, Sandrine
Miard, Stéphanie
Henry, Cyndi
Arias-Reyes, Christian
Marcouiller, François
Beaulieu, Marie-Josée
Aubin, Sophie
Lechasseur, Ariane
Jubinville, Éric
Marsolais, David
Morissette, Mathieu C.
Joseph, Vincent
Soliz, Jorge
Bossé, Ynuk
Picard, Frédéric
author_facet Sallé-Lefort, Sandrine
Miard, Stéphanie
Henry, Cyndi
Arias-Reyes, Christian
Marcouiller, François
Beaulieu, Marie-Josée
Aubin, Sophie
Lechasseur, Ariane
Jubinville, Éric
Marsolais, David
Morissette, Mathieu C.
Joseph, Vincent
Soliz, Jorge
Bossé, Ynuk
Picard, Frédéric
author_sort Sallé-Lefort, Sandrine
collection PubMed
description Hypoxia is common in lung diseases and a potent stimulator of the long non-coding RNA Metastasis-Associated Lung Adenocarcinoma Transcript 1 (MALAT1). Herein, we investigated the impact of Malat1 on hypoxia-induced lung dysfunction in mice. Malat1-deficient mice and their wild-type littermates were tested after 8 days of normoxia or hypoxia (10% oxygen). Hypoxia decreased elastance of the lung by increasing lung volume and caused in vivo hyperresponsiveness to methacholine without altering the contraction of airway smooth muscle. Malat1 deficiency also modestly decreased lung elastance but only when tested at low lung volumes and without altering lung volume and airway smooth muscle contraction. The in vivo responsiveness to methacholine was also attenuated by Malat1 deficiency, at least when elastance, a readout sensitive to small airway closure, was used to assess the response. More impressively, in vivo hyperresponsiveness to methacholine caused by hypoxia was virtually absent in Malat1-deficient mice, especially when hysteresivity, a readout sensitive to small airway narrowing heterogeneity, was used to assess the response. Malat1 deficiency also increased the coefficient of oxygen extraction and decreased ventilation in conscious mice, suggesting improvements in gas exchange and in clinical signs of respiratory distress during natural breathing. Combined with a lower elastance at low lung volumes at baseline, as well as a decreased propensity for small airway closure and narrowing heterogeneity during a methacholine challenge, these findings represent compelling evidence suggesting that the lack of Malat1 protects the access to alveoli for air entering the lung.
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spelling pubmed-94648212022-09-13 Malat1 deficiency prevents hypoxia-induced lung dysfunction by protecting the access to alveoli Sallé-Lefort, Sandrine Miard, Stéphanie Henry, Cyndi Arias-Reyes, Christian Marcouiller, François Beaulieu, Marie-Josée Aubin, Sophie Lechasseur, Ariane Jubinville, Éric Marsolais, David Morissette, Mathieu C. Joseph, Vincent Soliz, Jorge Bossé, Ynuk Picard, Frédéric Front Physiol Physiology Hypoxia is common in lung diseases and a potent stimulator of the long non-coding RNA Metastasis-Associated Lung Adenocarcinoma Transcript 1 (MALAT1). Herein, we investigated the impact of Malat1 on hypoxia-induced lung dysfunction in mice. Malat1-deficient mice and their wild-type littermates were tested after 8 days of normoxia or hypoxia (10% oxygen). Hypoxia decreased elastance of the lung by increasing lung volume and caused in vivo hyperresponsiveness to methacholine without altering the contraction of airway smooth muscle. Malat1 deficiency also modestly decreased lung elastance but only when tested at low lung volumes and without altering lung volume and airway smooth muscle contraction. The in vivo responsiveness to methacholine was also attenuated by Malat1 deficiency, at least when elastance, a readout sensitive to small airway closure, was used to assess the response. More impressively, in vivo hyperresponsiveness to methacholine caused by hypoxia was virtually absent in Malat1-deficient mice, especially when hysteresivity, a readout sensitive to small airway narrowing heterogeneity, was used to assess the response. Malat1 deficiency also increased the coefficient of oxygen extraction and decreased ventilation in conscious mice, suggesting improvements in gas exchange and in clinical signs of respiratory distress during natural breathing. Combined with a lower elastance at low lung volumes at baseline, as well as a decreased propensity for small airway closure and narrowing heterogeneity during a methacholine challenge, these findings represent compelling evidence suggesting that the lack of Malat1 protects the access to alveoli for air entering the lung. Frontiers Media S.A. 2022-08-29 /pmc/articles/PMC9464821/ /pubmed/36105289 http://dx.doi.org/10.3389/fphys.2022.949378 Text en Copyright © 2022 Sallé-Lefort, Miard, Henry, Arias-Reyes, Marcouiller, Beaulieu, Aubin, Lechasseur, Jubinville, Marsolais, Morissette, Joseph, Soliz, Bossé and Picard. https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Physiology
Sallé-Lefort, Sandrine
Miard, Stéphanie
Henry, Cyndi
Arias-Reyes, Christian
Marcouiller, François
Beaulieu, Marie-Josée
Aubin, Sophie
Lechasseur, Ariane
Jubinville, Éric
Marsolais, David
Morissette, Mathieu C.
Joseph, Vincent
Soliz, Jorge
Bossé, Ynuk
Picard, Frédéric
Malat1 deficiency prevents hypoxia-induced lung dysfunction by protecting the access to alveoli
title Malat1 deficiency prevents hypoxia-induced lung dysfunction by protecting the access to alveoli
title_full Malat1 deficiency prevents hypoxia-induced lung dysfunction by protecting the access to alveoli
title_fullStr Malat1 deficiency prevents hypoxia-induced lung dysfunction by protecting the access to alveoli
title_full_unstemmed Malat1 deficiency prevents hypoxia-induced lung dysfunction by protecting the access to alveoli
title_short Malat1 deficiency prevents hypoxia-induced lung dysfunction by protecting the access to alveoli
title_sort malat1 deficiency prevents hypoxia-induced lung dysfunction by protecting the access to alveoli
topic Physiology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9464821/
https://www.ncbi.nlm.nih.gov/pubmed/36105289
http://dx.doi.org/10.3389/fphys.2022.949378
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