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The α and Δ Isoforms of CREB1 Are Required to Maintain Normal Pulmonary Vascular Resistance

Chronic hypoxia causes pulmonary hypertension associated with structural alterations in pulmonary vessels and sustained vasoconstriction. The transcriptional mechanisms responsible for these distinctive changes are unclear. We have previously reported that CREB1 is activated in the lung in response...

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Autores principales: Li, Lili, Howell, Katherine, Sands, Michelle, Banahan, Mark, Frohlich, Stephen, Rowan, Simon C., Neary, Roisín, Ryan, Donal, McLoughlin, Paul
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2013
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3857174/
https://www.ncbi.nlm.nih.gov/pubmed/24349008
http://dx.doi.org/10.1371/journal.pone.0080637
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author Li, Lili
Howell, Katherine
Sands, Michelle
Banahan, Mark
Frohlich, Stephen
Rowan, Simon C.
Neary, Roisín
Ryan, Donal
McLoughlin, Paul
author_facet Li, Lili
Howell, Katherine
Sands, Michelle
Banahan, Mark
Frohlich, Stephen
Rowan, Simon C.
Neary, Roisín
Ryan, Donal
McLoughlin, Paul
author_sort Li, Lili
collection PubMed
description Chronic hypoxia causes pulmonary hypertension associated with structural alterations in pulmonary vessels and sustained vasoconstriction. The transcriptional mechanisms responsible for these distinctive changes are unclear. We have previously reported that CREB1 is activated in the lung in response to alveolar hypoxia but not in other organs. To directly investigate the role of α and Δ isoforms of CREB1 in the regulation of pulmonary vascular resistance we examined the responses of mice in which these isoforms of CREB1 had been inactivated by gene mutation, leaving only the β isoform intact (CREB(αΔ) mice). Here we report that expression of CREB regulated genes was altered in the lungs of CREB(αΔ) mice. CREB(αΔ) mice had greater pulmonary vascular resistance than wild types, both basally in normoxia and following exposure to hypoxic conditions for three weeks. There was no difference in rho kinase mediated vasoconstriction between CREB(αΔ) and wild type mice. Stereological analysis of pulmonary vascular structure showed characteristic wall thickening and lumen reduction in hypoxic wild-type mice, with similar changes observed in CREB(αΔ). CREB(αΔ) mice had larger lungs with reduced epithelial surface density suggesting increased pulmonary compliance. These findings show that α and Δ isoforms of CREB1 regulate homeostatic gene expression in the lung and that normal activity of these isoforms is essential to maintain low pulmonary vascular resistance in both normoxic and hypoxic conditions and to maintain the normal alveolar structure. Interventions that enhance the actions of α and Δ isoforms of CREB1 warrant further investigation in hypoxic lung diseases.
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spelling pubmed-38571742013-12-13 The α and Δ Isoforms of CREB1 Are Required to Maintain Normal Pulmonary Vascular Resistance Li, Lili Howell, Katherine Sands, Michelle Banahan, Mark Frohlich, Stephen Rowan, Simon C. Neary, Roisín Ryan, Donal McLoughlin, Paul PLoS One Research Article Chronic hypoxia causes pulmonary hypertension associated with structural alterations in pulmonary vessels and sustained vasoconstriction. The transcriptional mechanisms responsible for these distinctive changes are unclear. We have previously reported that CREB1 is activated in the lung in response to alveolar hypoxia but not in other organs. To directly investigate the role of α and Δ isoforms of CREB1 in the regulation of pulmonary vascular resistance we examined the responses of mice in which these isoforms of CREB1 had been inactivated by gene mutation, leaving only the β isoform intact (CREB(αΔ) mice). Here we report that expression of CREB regulated genes was altered in the lungs of CREB(αΔ) mice. CREB(αΔ) mice had greater pulmonary vascular resistance than wild types, both basally in normoxia and following exposure to hypoxic conditions for three weeks. There was no difference in rho kinase mediated vasoconstriction between CREB(αΔ) and wild type mice. Stereological analysis of pulmonary vascular structure showed characteristic wall thickening and lumen reduction in hypoxic wild-type mice, with similar changes observed in CREB(αΔ). CREB(αΔ) mice had larger lungs with reduced epithelial surface density suggesting increased pulmonary compliance. These findings show that α and Δ isoforms of CREB1 regulate homeostatic gene expression in the lung and that normal activity of these isoforms is essential to maintain low pulmonary vascular resistance in both normoxic and hypoxic conditions and to maintain the normal alveolar structure. Interventions that enhance the actions of α and Δ isoforms of CREB1 warrant further investigation in hypoxic lung diseases. Public Library of Science 2013-12-09 /pmc/articles/PMC3857174/ /pubmed/24349008 http://dx.doi.org/10.1371/journal.pone.0080637 Text en © 2013 Li 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
Li, Lili
Howell, Katherine
Sands, Michelle
Banahan, Mark
Frohlich, Stephen
Rowan, Simon C.
Neary, Roisín
Ryan, Donal
McLoughlin, Paul
The α and Δ Isoforms of CREB1 Are Required to Maintain Normal Pulmonary Vascular Resistance
title The α and Δ Isoforms of CREB1 Are Required to Maintain Normal Pulmonary Vascular Resistance
title_full The α and Δ Isoforms of CREB1 Are Required to Maintain Normal Pulmonary Vascular Resistance
title_fullStr The α and Δ Isoforms of CREB1 Are Required to Maintain Normal Pulmonary Vascular Resistance
title_full_unstemmed The α and Δ Isoforms of CREB1 Are Required to Maintain Normal Pulmonary Vascular Resistance
title_short The α and Δ Isoforms of CREB1 Are Required to Maintain Normal Pulmonary Vascular Resistance
title_sort α and δ isoforms of creb1 are required to maintain normal pulmonary vascular resistance
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3857174/
https://www.ncbi.nlm.nih.gov/pubmed/24349008
http://dx.doi.org/10.1371/journal.pone.0080637
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