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Microbial-induced Redox Imbalance in the Neonatal Lung Is Ameliorated by Live Biotherapeutics

Bronchopulmonary dysplasia (BPD) is a common lung disease of premature infants. Hyperoxia exposure and microbial dysbiosis are contributors to BPD development. However, the mechanisms linking pulmonary microbial dysbiosis to worsening lung injury are unknown. Nrf2 (nuclear factor erythroid 2-related...

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Autores principales: Freeman, Amelia E., Willis, Kent A., Qiao, Luhua, Abdelgawad, Ahmed S., Halloran, Brian, Rezonzew, Gabriel, Nizami, Zoha, Wenger, Nancy, Gaggar, Amit, Ambalavanan, Namasivayam, Tipple, Trent E., Lal, Charitharth V.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Thoracic Society 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9989473/
https://www.ncbi.nlm.nih.gov/pubmed/36287630
http://dx.doi.org/10.1165/rcmb.2021-0508OC
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author Freeman, Amelia E.
Willis, Kent A.
Qiao, Luhua
Abdelgawad, Ahmed S.
Halloran, Brian
Rezonzew, Gabriel
Nizami, Zoha
Wenger, Nancy
Gaggar, Amit
Ambalavanan, Namasivayam
Tipple, Trent E.
Lal, Charitharth V.
author_facet Freeman, Amelia E.
Willis, Kent A.
Qiao, Luhua
Abdelgawad, Ahmed S.
Halloran, Brian
Rezonzew, Gabriel
Nizami, Zoha
Wenger, Nancy
Gaggar, Amit
Ambalavanan, Namasivayam
Tipple, Trent E.
Lal, Charitharth V.
author_sort Freeman, Amelia E.
collection PubMed
description Bronchopulmonary dysplasia (BPD) is a common lung disease of premature infants. Hyperoxia exposure and microbial dysbiosis are contributors to BPD development. However, the mechanisms linking pulmonary microbial dysbiosis to worsening lung injury are unknown. Nrf2 (nuclear factor erythroid 2-related factor 2) is a transcription factor that regulates oxidative stress responses and modulates hyperoxia-induced lung injury. We hypothesized that airway dysbiosis would attenuate Nrf2-dependent antioxidant function, resulting in a more severe phenotype of BPD. Here, we show that preterm infants with a Gammaproteobacteria-predominant dysbiosis have increased endotoxin in tracheal aspirates, and mice monocolonized with the representative Gammaproteobacteria Escherichia coli show increased tissue damage compared with germ-free (GF) control mice. Furthermore, we show Nrf2-deficient mice have worse lung structure and function after exposure to hyperoxia when the airway microbiome is augmented with E. coli. To confirm the disease-initiating potential of airway dysbiosis, we developed a novel humanized mouse model by colonizing GF mice with tracheal aspirates from human infants with or without severe BPD, producing gnotobiotic mice with BPD-associated and non–BPD-associated lung microbiomes. After hyperoxia exposure, BPD-associated mice demonstrated a more severe BPD phenotype and increased expression of Nrf2-regulated genes, compared with GF and non–BPD-associated mice. Furthermore, augmenting Nrf2-mediated antioxidant activity by supporting colonization with Lactobacillus species improved dysbiotic-augmented lung injury. Our results demonstrate that a lack of protective pulmonary microbiome signature attenuates an Nrf2-mediated antioxidant response, which is augmented by a respiratory probiotic blend. We anticipate antioxidant pathways will be major targets of future microbiome-based therapeutics for respiratory disease.
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spelling pubmed-99894732023-10-26 Microbial-induced Redox Imbalance in the Neonatal Lung Is Ameliorated by Live Biotherapeutics Freeman, Amelia E. Willis, Kent A. Qiao, Luhua Abdelgawad, Ahmed S. Halloran, Brian Rezonzew, Gabriel Nizami, Zoha Wenger, Nancy Gaggar, Amit Ambalavanan, Namasivayam Tipple, Trent E. Lal, Charitharth V. Am J Respir Cell Mol Biol Original Research Bronchopulmonary dysplasia (BPD) is a common lung disease of premature infants. Hyperoxia exposure and microbial dysbiosis are contributors to BPD development. However, the mechanisms linking pulmonary microbial dysbiosis to worsening lung injury are unknown. Nrf2 (nuclear factor erythroid 2-related factor 2) is a transcription factor that regulates oxidative stress responses and modulates hyperoxia-induced lung injury. We hypothesized that airway dysbiosis would attenuate Nrf2-dependent antioxidant function, resulting in a more severe phenotype of BPD. Here, we show that preterm infants with a Gammaproteobacteria-predominant dysbiosis have increased endotoxin in tracheal aspirates, and mice monocolonized with the representative Gammaproteobacteria Escherichia coli show increased tissue damage compared with germ-free (GF) control mice. Furthermore, we show Nrf2-deficient mice have worse lung structure and function after exposure to hyperoxia when the airway microbiome is augmented with E. coli. To confirm the disease-initiating potential of airway dysbiosis, we developed a novel humanized mouse model by colonizing GF mice with tracheal aspirates from human infants with or without severe BPD, producing gnotobiotic mice with BPD-associated and non–BPD-associated lung microbiomes. After hyperoxia exposure, BPD-associated mice demonstrated a more severe BPD phenotype and increased expression of Nrf2-regulated genes, compared with GF and non–BPD-associated mice. Furthermore, augmenting Nrf2-mediated antioxidant activity by supporting colonization with Lactobacillus species improved dysbiotic-augmented lung injury. Our results demonstrate that a lack of protective pulmonary microbiome signature attenuates an Nrf2-mediated antioxidant response, which is augmented by a respiratory probiotic blend. We anticipate antioxidant pathways will be major targets of future microbiome-based therapeutics for respiratory disease. American Thoracic Society 2022-10-26 /pmc/articles/PMC9989473/ /pubmed/36287630 http://dx.doi.org/10.1165/rcmb.2021-0508OC Text en Copyright © 2023 by the American Thoracic Society https://creativecommons.org/licenses/by-nc-nd/4.0/This article is open access and distributed under the terms of the Creative Commons Attribution Non-Commercial No Derivatives License 4.0 (https://creativecommons.org/licenses/by-nc-nd/4.0/) . For commercial usage and reprints, please e-mail Diane Gern.
spellingShingle Original Research
Freeman, Amelia E.
Willis, Kent A.
Qiao, Luhua
Abdelgawad, Ahmed S.
Halloran, Brian
Rezonzew, Gabriel
Nizami, Zoha
Wenger, Nancy
Gaggar, Amit
Ambalavanan, Namasivayam
Tipple, Trent E.
Lal, Charitharth V.
Microbial-induced Redox Imbalance in the Neonatal Lung Is Ameliorated by Live Biotherapeutics
title Microbial-induced Redox Imbalance in the Neonatal Lung Is Ameliorated by Live Biotherapeutics
title_full Microbial-induced Redox Imbalance in the Neonatal Lung Is Ameliorated by Live Biotherapeutics
title_fullStr Microbial-induced Redox Imbalance in the Neonatal Lung Is Ameliorated by Live Biotherapeutics
title_full_unstemmed Microbial-induced Redox Imbalance in the Neonatal Lung Is Ameliorated by Live Biotherapeutics
title_short Microbial-induced Redox Imbalance in the Neonatal Lung Is Ameliorated by Live Biotherapeutics
title_sort microbial-induced redox imbalance in the neonatal lung is ameliorated by live biotherapeutics
topic Original Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9989473/
https://www.ncbi.nlm.nih.gov/pubmed/36287630
http://dx.doi.org/10.1165/rcmb.2021-0508OC
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