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Mitogen Activated Protein Kinase Activated Protein Kinase 2 Regulates Actin Polymerization and Vascular Leak in Ventilator Associated Lung Injury

Mechanical ventilation, a fundamental therapy for acute lung injury, worsens pulmonary vascular permeability by exacting mechanical stress on various components of the respiratory system causing ventilator associated lung injury. We postulated that MK2 activation via p38 MAP kinase induced HSP25 pho...

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Autores principales: Damarla, Mahendra, Hasan, Emile, Boueiz, Adel, Le, Anne, Pae, Hyun Hae, Montouchet, Calypso, Kolb, Todd, Simms, Tiffany, Myers, Allen, Kayyali, Usamah S., Gaestel, Matthias, Peng, Xinqi, Reddy, Sekhar P., Damico, Rachel, Hassoun, Paul M.
Formato: Texto
Lenguaje:English
Publicado: Public Library of Science 2009
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2643011/
https://www.ncbi.nlm.nih.gov/pubmed/19240800
http://dx.doi.org/10.1371/journal.pone.0004600
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author Damarla, Mahendra
Hasan, Emile
Boueiz, Adel
Le, Anne
Pae, Hyun Hae
Montouchet, Calypso
Kolb, Todd
Simms, Tiffany
Myers, Allen
Kayyali, Usamah S.
Gaestel, Matthias
Peng, Xinqi
Reddy, Sekhar P.
Damico, Rachel
Hassoun, Paul M.
author_facet Damarla, Mahendra
Hasan, Emile
Boueiz, Adel
Le, Anne
Pae, Hyun Hae
Montouchet, Calypso
Kolb, Todd
Simms, Tiffany
Myers, Allen
Kayyali, Usamah S.
Gaestel, Matthias
Peng, Xinqi
Reddy, Sekhar P.
Damico, Rachel
Hassoun, Paul M.
author_sort Damarla, Mahendra
collection PubMed
description Mechanical ventilation, a fundamental therapy for acute lung injury, worsens pulmonary vascular permeability by exacting mechanical stress on various components of the respiratory system causing ventilator associated lung injury. We postulated that MK2 activation via p38 MAP kinase induced HSP25 phosphorylation, in response to mechanical stress, leading to actin stress fiber formation and endothelial barrier dysfunction. We sought to determine the role of p38 MAP kinase and its downstream effector MK2 on HSP25 phosphorylation and actin stress fiber formation in ventilator associated lung injury. Wild type and MK2(−/−) mice received mechanical ventilation with high (20 ml/kg) or low (7 ml/kg) tidal volumes up to 4 hrs, after which lungs were harvested for immunohistochemistry, immunoblotting and lung permeability assays. High tidal volume mechanical ventilation resulted in significant phosphorylation of p38 MAP kinase, MK2, HSP25, actin polymerization, and an increase in pulmonary vascular permeability in wild type mice as compared to spontaneous breathing or low tidal volume mechanical ventilation. However, pretreatment of wild type mice with specific p38 MAP kinase or MK2 inhibitors abrogated HSP25 phosphorylation and actin polymerization, and protected against increased lung permeability. Finally, MK2(−/−) mice were unable to phosphorylate HSP25 or increase actin polymerization from baseline, and were resistant to increases in lung permeability in response to HV(T) MV. Our results suggest that p38 MAP kinase and its downstream effector MK2 mediate lung permeability in ventilator associated lung injury by regulating HSP25 phosphorylation and actin cytoskeletal remodeling.
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spelling pubmed-26430112009-02-25 Mitogen Activated Protein Kinase Activated Protein Kinase 2 Regulates Actin Polymerization and Vascular Leak in Ventilator Associated Lung Injury Damarla, Mahendra Hasan, Emile Boueiz, Adel Le, Anne Pae, Hyun Hae Montouchet, Calypso Kolb, Todd Simms, Tiffany Myers, Allen Kayyali, Usamah S. Gaestel, Matthias Peng, Xinqi Reddy, Sekhar P. Damico, Rachel Hassoun, Paul M. PLoS One Research Article Mechanical ventilation, a fundamental therapy for acute lung injury, worsens pulmonary vascular permeability by exacting mechanical stress on various components of the respiratory system causing ventilator associated lung injury. We postulated that MK2 activation via p38 MAP kinase induced HSP25 phosphorylation, in response to mechanical stress, leading to actin stress fiber formation and endothelial barrier dysfunction. We sought to determine the role of p38 MAP kinase and its downstream effector MK2 on HSP25 phosphorylation and actin stress fiber formation in ventilator associated lung injury. Wild type and MK2(−/−) mice received mechanical ventilation with high (20 ml/kg) or low (7 ml/kg) tidal volumes up to 4 hrs, after which lungs were harvested for immunohistochemistry, immunoblotting and lung permeability assays. High tidal volume mechanical ventilation resulted in significant phosphorylation of p38 MAP kinase, MK2, HSP25, actin polymerization, and an increase in pulmonary vascular permeability in wild type mice as compared to spontaneous breathing or low tidal volume mechanical ventilation. However, pretreatment of wild type mice with specific p38 MAP kinase or MK2 inhibitors abrogated HSP25 phosphorylation and actin polymerization, and protected against increased lung permeability. Finally, MK2(−/−) mice were unable to phosphorylate HSP25 or increase actin polymerization from baseline, and were resistant to increases in lung permeability in response to HV(T) MV. Our results suggest that p38 MAP kinase and its downstream effector MK2 mediate lung permeability in ventilator associated lung injury by regulating HSP25 phosphorylation and actin cytoskeletal remodeling. Public Library of Science 2009-02-25 /pmc/articles/PMC2643011/ /pubmed/19240800 http://dx.doi.org/10.1371/journal.pone.0004600 Text en Damarla et al. http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License, which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are properly credited.
spellingShingle Research Article
Damarla, Mahendra
Hasan, Emile
Boueiz, Adel
Le, Anne
Pae, Hyun Hae
Montouchet, Calypso
Kolb, Todd
Simms, Tiffany
Myers, Allen
Kayyali, Usamah S.
Gaestel, Matthias
Peng, Xinqi
Reddy, Sekhar P.
Damico, Rachel
Hassoun, Paul M.
Mitogen Activated Protein Kinase Activated Protein Kinase 2 Regulates Actin Polymerization and Vascular Leak in Ventilator Associated Lung Injury
title Mitogen Activated Protein Kinase Activated Protein Kinase 2 Regulates Actin Polymerization and Vascular Leak in Ventilator Associated Lung Injury
title_full Mitogen Activated Protein Kinase Activated Protein Kinase 2 Regulates Actin Polymerization and Vascular Leak in Ventilator Associated Lung Injury
title_fullStr Mitogen Activated Protein Kinase Activated Protein Kinase 2 Regulates Actin Polymerization and Vascular Leak in Ventilator Associated Lung Injury
title_full_unstemmed Mitogen Activated Protein Kinase Activated Protein Kinase 2 Regulates Actin Polymerization and Vascular Leak in Ventilator Associated Lung Injury
title_short Mitogen Activated Protein Kinase Activated Protein Kinase 2 Regulates Actin Polymerization and Vascular Leak in Ventilator Associated Lung Injury
title_sort mitogen activated protein kinase activated protein kinase 2 regulates actin polymerization and vascular leak in ventilator associated lung injury
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2643011/
https://www.ncbi.nlm.nih.gov/pubmed/19240800
http://dx.doi.org/10.1371/journal.pone.0004600
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