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Meta-omics profiling of the gut-lung axis illuminates metabolic networks and host-microbial interactions associated with elevated lung elastance in a murine model of obese allergic asthma

Obesity and associated changes to the gut microbiome worsen airway inflammation and hyperresponsiveness in asthma. Obesogenic host-microbial metabolomes have altered production of metabolites that may influence lung function and inflammatory responses in asthma. To understand the interplay of the gu...

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Autores principales: Heinrich, Victoria A., Uvalle, Crystal, Manni, Michelle L., Li, Kelvin, Mullett, Steven J., Donepudi, Sri Ramya, Clader, Jason, Fitch, Adam, Ellgass, Madeline, Cechova, Veronika, Qin, Shulin, Holguin, Fernando, Freeman, Bruce A., Methé, Barbara A., Morris, Alison, Gelhaus, Stacy L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10249466/
https://www.ncbi.nlm.nih.gov/pubmed/37293566
http://dx.doi.org/10.3389/frmbi.2023.1153691
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author Heinrich, Victoria A.
Uvalle, Crystal
Manni, Michelle L.
Li, Kelvin
Mullett, Steven J.
Donepudi, Sri Ramya
Clader, Jason
Fitch, Adam
Ellgass, Madeline
Cechova, Veronika
Qin, Shulin
Holguin, Fernando
Freeman, Bruce A.
Methé, Barbara A.
Morris, Alison
Gelhaus, Stacy L.
author_facet Heinrich, Victoria A.
Uvalle, Crystal
Manni, Michelle L.
Li, Kelvin
Mullett, Steven J.
Donepudi, Sri Ramya
Clader, Jason
Fitch, Adam
Ellgass, Madeline
Cechova, Veronika
Qin, Shulin
Holguin, Fernando
Freeman, Bruce A.
Methé, Barbara A.
Morris, Alison
Gelhaus, Stacy L.
author_sort Heinrich, Victoria A.
collection PubMed
description Obesity and associated changes to the gut microbiome worsen airway inflammation and hyperresponsiveness in asthma. Obesogenic host-microbial metabolomes have altered production of metabolites that may influence lung function and inflammatory responses in asthma. To understand the interplay of the gut microbiome, metabolism, and host inflammation in obesity-associated asthma, we used a multi-omics approach to profile the gut-lung axis in the setting of allergic airway disease and diet-induced obesity. We evaluated an immunomodulator, nitro-oleic acid (NO(2)-OA), as a host- and microbial-targeted treatment intervention for obesity-associated allergic asthma. Allergic airway disease was induced using house dust mite and cholera toxin adjuvant in C57BL6/J mice with diet-induced obesity to model obesity-associated asthma. Lung function was measured by flexiVent following a week of NO(2)-OA treatment and allergen challenge. 16S rRNA gene (from DNA, taxa presence) and 16S rRNA (from RNA, taxa activity) sequencing, metabolomics, and host gene expression were paired with a Treatment-Measured-Response model as a data integration framework for identifying latent/hidden relationships with linear regression among variables identified from high-dimensional meta-omics datasets. Targeting both the host and gut microbiota, NO(2)-OA attenuated airway inflammation, improved lung elastance, and modified the gut microbiome. Meta-omics data integration and modeling determined that gut-associated inflammation, metabolites, and functionally active gut microbiota were linked to lung function outcomes. Using Treatment-Measured-Response modeling and meta-omics profiling of the gut-lung axis, we uncovered a previously hidden network of interactions between gut levels of amino acid metabolites involved in elastin and collagen synthesis, gut microbiota, NO(2)-OA, and lung elastance. Further targeted metabolomics analyses revealed that obese mice with allergic airway disease had higher levels of proline and hydroxyproline in the lungs. NO(2)-OA treatment reduced proline biosynthesis by downregulation of pyrroline-5-carboxylate reductase 1 (PYCR1) expression. These findings are relevant to human disease: adults with mild-moderate asthma and BMI ≥ 25 had higher plasma hydroxyproline levels. Our results suggest that changes to structural proteins in the lung airways and parenchyma may contribute to heightened lung elastance and serve as a potential therapeutic target for obese allergic asthma.
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spelling pubmed-102494662023-06-08 Meta-omics profiling of the gut-lung axis illuminates metabolic networks and host-microbial interactions associated with elevated lung elastance in a murine model of obese allergic asthma Heinrich, Victoria A. Uvalle, Crystal Manni, Michelle L. Li, Kelvin Mullett, Steven J. Donepudi, Sri Ramya Clader, Jason Fitch, Adam Ellgass, Madeline Cechova, Veronika Qin, Shulin Holguin, Fernando Freeman, Bruce A. Methé, Barbara A. Morris, Alison Gelhaus, Stacy L. Front Microbiomes Article Obesity and associated changes to the gut microbiome worsen airway inflammation and hyperresponsiveness in asthma. Obesogenic host-microbial metabolomes have altered production of metabolites that may influence lung function and inflammatory responses in asthma. To understand the interplay of the gut microbiome, metabolism, and host inflammation in obesity-associated asthma, we used a multi-omics approach to profile the gut-lung axis in the setting of allergic airway disease and diet-induced obesity. We evaluated an immunomodulator, nitro-oleic acid (NO(2)-OA), as a host- and microbial-targeted treatment intervention for obesity-associated allergic asthma. Allergic airway disease was induced using house dust mite and cholera toxin adjuvant in C57BL6/J mice with diet-induced obesity to model obesity-associated asthma. Lung function was measured by flexiVent following a week of NO(2)-OA treatment and allergen challenge. 16S rRNA gene (from DNA, taxa presence) and 16S rRNA (from RNA, taxa activity) sequencing, metabolomics, and host gene expression were paired with a Treatment-Measured-Response model as a data integration framework for identifying latent/hidden relationships with linear regression among variables identified from high-dimensional meta-omics datasets. Targeting both the host and gut microbiota, NO(2)-OA attenuated airway inflammation, improved lung elastance, and modified the gut microbiome. Meta-omics data integration and modeling determined that gut-associated inflammation, metabolites, and functionally active gut microbiota were linked to lung function outcomes. Using Treatment-Measured-Response modeling and meta-omics profiling of the gut-lung axis, we uncovered a previously hidden network of interactions between gut levels of amino acid metabolites involved in elastin and collagen synthesis, gut microbiota, NO(2)-OA, and lung elastance. Further targeted metabolomics analyses revealed that obese mice with allergic airway disease had higher levels of proline and hydroxyproline in the lungs. NO(2)-OA treatment reduced proline biosynthesis by downregulation of pyrroline-5-carboxylate reductase 1 (PYCR1) expression. These findings are relevant to human disease: adults with mild-moderate asthma and BMI ≥ 25 had higher plasma hydroxyproline levels. Our results suggest that changes to structural proteins in the lung airways and parenchyma may contribute to heightened lung elastance and serve as a potential therapeutic target for obese allergic asthma. 2023 2023-05-05 /pmc/articles/PMC10249466/ /pubmed/37293566 http://dx.doi.org/10.3389/frmbi.2023.1153691 Text en 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).
spellingShingle Article
Heinrich, Victoria A.
Uvalle, Crystal
Manni, Michelle L.
Li, Kelvin
Mullett, Steven J.
Donepudi, Sri Ramya
Clader, Jason
Fitch, Adam
Ellgass, Madeline
Cechova, Veronika
Qin, Shulin
Holguin, Fernando
Freeman, Bruce A.
Methé, Barbara A.
Morris, Alison
Gelhaus, Stacy L.
Meta-omics profiling of the gut-lung axis illuminates metabolic networks and host-microbial interactions associated with elevated lung elastance in a murine model of obese allergic asthma
title Meta-omics profiling of the gut-lung axis illuminates metabolic networks and host-microbial interactions associated with elevated lung elastance in a murine model of obese allergic asthma
title_full Meta-omics profiling of the gut-lung axis illuminates metabolic networks and host-microbial interactions associated with elevated lung elastance in a murine model of obese allergic asthma
title_fullStr Meta-omics profiling of the gut-lung axis illuminates metabolic networks and host-microbial interactions associated with elevated lung elastance in a murine model of obese allergic asthma
title_full_unstemmed Meta-omics profiling of the gut-lung axis illuminates metabolic networks and host-microbial interactions associated with elevated lung elastance in a murine model of obese allergic asthma
title_short Meta-omics profiling of the gut-lung axis illuminates metabolic networks and host-microbial interactions associated with elevated lung elastance in a murine model of obese allergic asthma
title_sort meta-omics profiling of the gut-lung axis illuminates metabolic networks and host-microbial interactions associated with elevated lung elastance in a murine model of obese allergic asthma
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10249466/
https://www.ncbi.nlm.nih.gov/pubmed/37293566
http://dx.doi.org/10.3389/frmbi.2023.1153691
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