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Injury-induced pulmonary tuft cells are heterogenous, arise independent of key Type 2 cytokines, and are dispensable for dysplastic repair

While the lung bears significant regenerative capacity, severe viral pneumonia can chronically impair lung function by triggering dysplastic remodeling. The connection between these enduring changes and chronic disease remains poorly understood. We recently described the emergence of tuft cells with...

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Autores principales: Barr, Justinn, Gentile, Maria Elena, Lee, Sunyoung, Kotas, Maya E, Fernanda de Mello Costa, Maria, Holcomb, Nicolas P, Jaquish, Abigail, Palashikar, Gargi, Soewignjo, Marcella, McDaniel, Margaret, Matsumoto, Ichiro, Margolskee, Robert, Von Moltke, Jakob, Cohen, Noam A, Sun, Xin, Vaughan, Andrew E
Formato: Online Artículo Texto
Lenguaje:English
Publicado: eLife Sciences Publications, Ltd 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9553214/
https://www.ncbi.nlm.nih.gov/pubmed/36073526
http://dx.doi.org/10.7554/eLife.78074
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author Barr, Justinn
Gentile, Maria Elena
Lee, Sunyoung
Kotas, Maya E
Fernanda de Mello Costa, Maria
Holcomb, Nicolas P
Jaquish, Abigail
Palashikar, Gargi
Soewignjo, Marcella
McDaniel, Margaret
Matsumoto, Ichiro
Margolskee, Robert
Von Moltke, Jakob
Cohen, Noam A
Sun, Xin
Vaughan, Andrew E
author_facet Barr, Justinn
Gentile, Maria Elena
Lee, Sunyoung
Kotas, Maya E
Fernanda de Mello Costa, Maria
Holcomb, Nicolas P
Jaquish, Abigail
Palashikar, Gargi
Soewignjo, Marcella
McDaniel, Margaret
Matsumoto, Ichiro
Margolskee, Robert
Von Moltke, Jakob
Cohen, Noam A
Sun, Xin
Vaughan, Andrew E
author_sort Barr, Justinn
collection PubMed
description While the lung bears significant regenerative capacity, severe viral pneumonia can chronically impair lung function by triggering dysplastic remodeling. The connection between these enduring changes and chronic disease remains poorly understood. We recently described the emergence of tuft cells within Krt5(+) dysplastic regions after influenza injury. Using bulk and single-cell transcriptomics, we characterized and delineated multiple distinct tuft cell populations that arise following influenza clearance. Distinct from intestinal tuft cells which rely on Type 2 immune signals for their expansion, neither IL-25 nor IL-4ra signaling are required to drive tuft cell development in dysplastic/injured lungs. In addition, tuft cell expansion occurred independently of type I or type III interferon signaling. Furthermore, tuft cells were also observed upon bleomycin injury, suggesting that their development may be a general response to severe lung injury. While intestinal tuft cells promote growth and differentiation of surrounding epithelial cells, in the lungs of tuft cell deficient mice, Krt5(+) dysplasia still occurs, goblet cell production is unchanged, and there remains no appreciable contribution of Krt5(+) cells into more regionally appropriate alveolar Type 2 cells. Together, these findings highlight unexpected differences in signals necessary for murine lung tuft cell amplification and establish a framework for future elucidation of tuft cell functions in pulmonary health and disease.
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spelling pubmed-95532142022-10-12 Injury-induced pulmonary tuft cells are heterogenous, arise independent of key Type 2 cytokines, and are dispensable for dysplastic repair Barr, Justinn Gentile, Maria Elena Lee, Sunyoung Kotas, Maya E Fernanda de Mello Costa, Maria Holcomb, Nicolas P Jaquish, Abigail Palashikar, Gargi Soewignjo, Marcella McDaniel, Margaret Matsumoto, Ichiro Margolskee, Robert Von Moltke, Jakob Cohen, Noam A Sun, Xin Vaughan, Andrew E eLife Stem Cells and Regenerative Medicine While the lung bears significant regenerative capacity, severe viral pneumonia can chronically impair lung function by triggering dysplastic remodeling. The connection between these enduring changes and chronic disease remains poorly understood. We recently described the emergence of tuft cells within Krt5(+) dysplastic regions after influenza injury. Using bulk and single-cell transcriptomics, we characterized and delineated multiple distinct tuft cell populations that arise following influenza clearance. Distinct from intestinal tuft cells which rely on Type 2 immune signals for their expansion, neither IL-25 nor IL-4ra signaling are required to drive tuft cell development in dysplastic/injured lungs. In addition, tuft cell expansion occurred independently of type I or type III interferon signaling. Furthermore, tuft cells were also observed upon bleomycin injury, suggesting that their development may be a general response to severe lung injury. While intestinal tuft cells promote growth and differentiation of surrounding epithelial cells, in the lungs of tuft cell deficient mice, Krt5(+) dysplasia still occurs, goblet cell production is unchanged, and there remains no appreciable contribution of Krt5(+) cells into more regionally appropriate alveolar Type 2 cells. Together, these findings highlight unexpected differences in signals necessary for murine lung tuft cell amplification and establish a framework for future elucidation of tuft cell functions in pulmonary health and disease. eLife Sciences Publications, Ltd 2022-09-08 /pmc/articles/PMC9553214/ /pubmed/36073526 http://dx.doi.org/10.7554/eLife.78074 Text en © 2022, Barr, Gentile et al https://creativecommons.org/licenses/by/4.0/This article is distributed under the terms of the Creative Commons Attribution License (https://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use and redistribution provided that the original author and source are credited.
spellingShingle Stem Cells and Regenerative Medicine
Barr, Justinn
Gentile, Maria Elena
Lee, Sunyoung
Kotas, Maya E
Fernanda de Mello Costa, Maria
Holcomb, Nicolas P
Jaquish, Abigail
Palashikar, Gargi
Soewignjo, Marcella
McDaniel, Margaret
Matsumoto, Ichiro
Margolskee, Robert
Von Moltke, Jakob
Cohen, Noam A
Sun, Xin
Vaughan, Andrew E
Injury-induced pulmonary tuft cells are heterogenous, arise independent of key Type 2 cytokines, and are dispensable for dysplastic repair
title Injury-induced pulmonary tuft cells are heterogenous, arise independent of key Type 2 cytokines, and are dispensable for dysplastic repair
title_full Injury-induced pulmonary tuft cells are heterogenous, arise independent of key Type 2 cytokines, and are dispensable for dysplastic repair
title_fullStr Injury-induced pulmonary tuft cells are heterogenous, arise independent of key Type 2 cytokines, and are dispensable for dysplastic repair
title_full_unstemmed Injury-induced pulmonary tuft cells are heterogenous, arise independent of key Type 2 cytokines, and are dispensable for dysplastic repair
title_short Injury-induced pulmonary tuft cells are heterogenous, arise independent of key Type 2 cytokines, and are dispensable for dysplastic repair
title_sort injury-induced pulmonary tuft cells are heterogenous, arise independent of key type 2 cytokines, and are dispensable for dysplastic repair
topic Stem Cells and Regenerative Medicine
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9553214/
https://www.ncbi.nlm.nih.gov/pubmed/36073526
http://dx.doi.org/10.7554/eLife.78074
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