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Obesity reprograms the pulmonary polyunsaturated fatty acid-derived lipidome, transcriptome, and gene-oxylipin networks

Obesity exacerbates inflammation upon lung injury; however, the mechanisms by which obesity primes pulmonary dysregulation prior to external injury are not well studied. Herein, we tested the hypothesis that obesity dysregulates pulmonary PUFA metabolism that is central to inflammation initiation an...

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Autores principales: Virk, Rafia, Buddenbaum, Nicole, Al-Shaer, Abrar, Armstrong, Michael, Manke, Jonathan, Reisdorph, Nichole, Sergin, Selin, Fenton, Jenifer I., Wallace, E. Diane, Ehrmann, Brandie M., Lovins, Hannah B., Gowdy, Kymberly M., Smith, M Ryan, Smith, Gregory J., Kelada, Samir N.P., Shaikh, Saame Raza
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Society for Biochemistry and Molecular Biology 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9508350/
https://www.ncbi.nlm.nih.gov/pubmed/36028048
http://dx.doi.org/10.1016/j.jlr.2022.100267
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author Virk, Rafia
Buddenbaum, Nicole
Al-Shaer, Abrar
Armstrong, Michael
Manke, Jonathan
Reisdorph, Nichole
Sergin, Selin
Fenton, Jenifer I.
Wallace, E. Diane
Ehrmann, Brandie M.
Lovins, Hannah B.
Gowdy, Kymberly M.
Smith, M Ryan
Smith, Gregory J.
Kelada, Samir N.P.
Shaikh, Saame Raza
author_facet Virk, Rafia
Buddenbaum, Nicole
Al-Shaer, Abrar
Armstrong, Michael
Manke, Jonathan
Reisdorph, Nichole
Sergin, Selin
Fenton, Jenifer I.
Wallace, E. Diane
Ehrmann, Brandie M.
Lovins, Hannah B.
Gowdy, Kymberly M.
Smith, M Ryan
Smith, Gregory J.
Kelada, Samir N.P.
Shaikh, Saame Raza
author_sort Virk, Rafia
collection PubMed
description Obesity exacerbates inflammation upon lung injury; however, the mechanisms by which obesity primes pulmonary dysregulation prior to external injury are not well studied. Herein, we tested the hypothesis that obesity dysregulates pulmonary PUFA metabolism that is central to inflammation initiation and resolution. We first show that a high-fat diet (HFD) administered to C57BL/6J mice increased the relative abundance of pulmonary PUFA-containing triglycerides and the concentration of PUFA-derived oxylipins (particularly prostaglandins and hydroxyeicosatetraenoic acids), independent of an increase in total pulmonary PUFAs, prior to onset of pulmonary inflammation. Experiments with a genetic model of obesity (ob/ob) generally recapitulated the effects of the HFD on the pulmonary oxylipin signature. Subsequent pulmonary next-generation RNA sequencing identified complex and unique transcriptional regulation with the HFD. We found the HFD increased pathways related to glycerophospholipid metabolism and immunity, including a unique elevation in B cell differentiation and signaling. Furthermore, we conducted computational integration of lipidomic with transcriptomic data. These analyses identified novel HFD-driven networks between glycerophospholipid metabolism and B cell receptor signaling with specific PUFA-derived pulmonary oxylipins. Finally, we confirmed the hypothesis by demonstrating that the concentration of pulmonary oxylipins, in addition to inflammatory markers, were generally increased in mice consuming a HFD upon ozone-induced acute lung injury. Collectively, these data show that a HFD dysregulates pulmonary PUFA metabolism prior to external lung injury, which may be a mechanism by which obesity primes the lungs to respond poorly to infectious and/or inflammatory challenges.
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spelling pubmed-95083502022-09-30 Obesity reprograms the pulmonary polyunsaturated fatty acid-derived lipidome, transcriptome, and gene-oxylipin networks Virk, Rafia Buddenbaum, Nicole Al-Shaer, Abrar Armstrong, Michael Manke, Jonathan Reisdorph, Nichole Sergin, Selin Fenton, Jenifer I. Wallace, E. Diane Ehrmann, Brandie M. Lovins, Hannah B. Gowdy, Kymberly M. Smith, M Ryan Smith, Gregory J. Kelada, Samir N.P. Shaikh, Saame Raza J Lipid Res Research Article Obesity exacerbates inflammation upon lung injury; however, the mechanisms by which obesity primes pulmonary dysregulation prior to external injury are not well studied. Herein, we tested the hypothesis that obesity dysregulates pulmonary PUFA metabolism that is central to inflammation initiation and resolution. We first show that a high-fat diet (HFD) administered to C57BL/6J mice increased the relative abundance of pulmonary PUFA-containing triglycerides and the concentration of PUFA-derived oxylipins (particularly prostaglandins and hydroxyeicosatetraenoic acids), independent of an increase in total pulmonary PUFAs, prior to onset of pulmonary inflammation. Experiments with a genetic model of obesity (ob/ob) generally recapitulated the effects of the HFD on the pulmonary oxylipin signature. Subsequent pulmonary next-generation RNA sequencing identified complex and unique transcriptional regulation with the HFD. We found the HFD increased pathways related to glycerophospholipid metabolism and immunity, including a unique elevation in B cell differentiation and signaling. Furthermore, we conducted computational integration of lipidomic with transcriptomic data. These analyses identified novel HFD-driven networks between glycerophospholipid metabolism and B cell receptor signaling with specific PUFA-derived pulmonary oxylipins. Finally, we confirmed the hypothesis by demonstrating that the concentration of pulmonary oxylipins, in addition to inflammatory markers, were generally increased in mice consuming a HFD upon ozone-induced acute lung injury. Collectively, these data show that a HFD dysregulates pulmonary PUFA metabolism prior to external lung injury, which may be a mechanism by which obesity primes the lungs to respond poorly to infectious and/or inflammatory challenges. American Society for Biochemistry and Molecular Biology 2022-08-24 /pmc/articles/PMC9508350/ /pubmed/36028048 http://dx.doi.org/10.1016/j.jlr.2022.100267 Text en © 2022 The Authors https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Research Article
Virk, Rafia
Buddenbaum, Nicole
Al-Shaer, Abrar
Armstrong, Michael
Manke, Jonathan
Reisdorph, Nichole
Sergin, Selin
Fenton, Jenifer I.
Wallace, E. Diane
Ehrmann, Brandie M.
Lovins, Hannah B.
Gowdy, Kymberly M.
Smith, M Ryan
Smith, Gregory J.
Kelada, Samir N.P.
Shaikh, Saame Raza
Obesity reprograms the pulmonary polyunsaturated fatty acid-derived lipidome, transcriptome, and gene-oxylipin networks
title Obesity reprograms the pulmonary polyunsaturated fatty acid-derived lipidome, transcriptome, and gene-oxylipin networks
title_full Obesity reprograms the pulmonary polyunsaturated fatty acid-derived lipidome, transcriptome, and gene-oxylipin networks
title_fullStr Obesity reprograms the pulmonary polyunsaturated fatty acid-derived lipidome, transcriptome, and gene-oxylipin networks
title_full_unstemmed Obesity reprograms the pulmonary polyunsaturated fatty acid-derived lipidome, transcriptome, and gene-oxylipin networks
title_short Obesity reprograms the pulmonary polyunsaturated fatty acid-derived lipidome, transcriptome, and gene-oxylipin networks
title_sort obesity reprograms the pulmonary polyunsaturated fatty acid-derived lipidome, transcriptome, and gene-oxylipin networks
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9508350/
https://www.ncbi.nlm.nih.gov/pubmed/36028048
http://dx.doi.org/10.1016/j.jlr.2022.100267
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