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Clonal Dynamics Reveal Two Distinct Populations of Basal Cells in Slow-Turnover Airway Epithelium

Epithelial lineages have been studied at cellular resolution in multiple organs that turn over rapidly. However, many epithelia, including those of the lung, liver, pancreas, and prostate, turn over slowly and may be regulated differently. We investigated the mouse tracheal epithelial lineage at hom...

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Autores principales: Watson, Julie K., Rulands, Steffen, Wilkinson, Adam C., Wuidart, Aline, Ousset, Marielle, Van Keymeulen, Alexandra, Göttgens, Berthold, Blanpain, Cédric, Simons, Benjamin D., Rawlins, Emma L.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Cell Press 2015
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4518462/
https://www.ncbi.nlm.nih.gov/pubmed/26119728
http://dx.doi.org/10.1016/j.celrep.2015.06.011
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author Watson, Julie K.
Rulands, Steffen
Wilkinson, Adam C.
Wuidart, Aline
Ousset, Marielle
Van Keymeulen, Alexandra
Göttgens, Berthold
Blanpain, Cédric
Simons, Benjamin D.
Rawlins, Emma L.
author_facet Watson, Julie K.
Rulands, Steffen
Wilkinson, Adam C.
Wuidart, Aline
Ousset, Marielle
Van Keymeulen, Alexandra
Göttgens, Berthold
Blanpain, Cédric
Simons, Benjamin D.
Rawlins, Emma L.
author_sort Watson, Julie K.
collection PubMed
description Epithelial lineages have been studied at cellular resolution in multiple organs that turn over rapidly. However, many epithelia, including those of the lung, liver, pancreas, and prostate, turn over slowly and may be regulated differently. We investigated the mouse tracheal epithelial lineage at homeostasis by using long-term clonal analysis and mathematical modeling. This pseudostratified epithelium contains basal cells and secretory and multiciliated luminal cells. Our analysis revealed that basal cells are heterogeneous, comprising approximately equal numbers of multipotent stem cells and committed precursors, which persist in the basal layer for 11 days before differentiating to luminal fate. We confirmed the molecular and functional differences within the basal population by using single-cell qRT-PCR and further lineage labeling. Additionally, we show that self-renewal of short-lived secretory cells is a feature of homeostasis. We have thus revealed early luminal commitment of cells that are morphologically indistinguishable from stem cells.
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spelling pubmed-45184622015-08-01 Clonal Dynamics Reveal Two Distinct Populations of Basal Cells in Slow-Turnover Airway Epithelium Watson, Julie K. Rulands, Steffen Wilkinson, Adam C. Wuidart, Aline Ousset, Marielle Van Keymeulen, Alexandra Göttgens, Berthold Blanpain, Cédric Simons, Benjamin D. Rawlins, Emma L. Cell Rep Article Epithelial lineages have been studied at cellular resolution in multiple organs that turn over rapidly. However, many epithelia, including those of the lung, liver, pancreas, and prostate, turn over slowly and may be regulated differently. We investigated the mouse tracheal epithelial lineage at homeostasis by using long-term clonal analysis and mathematical modeling. This pseudostratified epithelium contains basal cells and secretory and multiciliated luminal cells. Our analysis revealed that basal cells are heterogeneous, comprising approximately equal numbers of multipotent stem cells and committed precursors, which persist in the basal layer for 11 days before differentiating to luminal fate. We confirmed the molecular and functional differences within the basal population by using single-cell qRT-PCR and further lineage labeling. Additionally, we show that self-renewal of short-lived secretory cells is a feature of homeostasis. We have thus revealed early luminal commitment of cells that are morphologically indistinguishable from stem cells. Cell Press 2015-06-25 /pmc/articles/PMC4518462/ /pubmed/26119728 http://dx.doi.org/10.1016/j.celrep.2015.06.011 Text en © 2015 The Authors http://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 Article
Watson, Julie K.
Rulands, Steffen
Wilkinson, Adam C.
Wuidart, Aline
Ousset, Marielle
Van Keymeulen, Alexandra
Göttgens, Berthold
Blanpain, Cédric
Simons, Benjamin D.
Rawlins, Emma L.
Clonal Dynamics Reveal Two Distinct Populations of Basal Cells in Slow-Turnover Airway Epithelium
title Clonal Dynamics Reveal Two Distinct Populations of Basal Cells in Slow-Turnover Airway Epithelium
title_full Clonal Dynamics Reveal Two Distinct Populations of Basal Cells in Slow-Turnover Airway Epithelium
title_fullStr Clonal Dynamics Reveal Two Distinct Populations of Basal Cells in Slow-Turnover Airway Epithelium
title_full_unstemmed Clonal Dynamics Reveal Two Distinct Populations of Basal Cells in Slow-Turnover Airway Epithelium
title_short Clonal Dynamics Reveal Two Distinct Populations of Basal Cells in Slow-Turnover Airway Epithelium
title_sort clonal dynamics reveal two distinct populations of basal cells in slow-turnover airway epithelium
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4518462/
https://www.ncbi.nlm.nih.gov/pubmed/26119728
http://dx.doi.org/10.1016/j.celrep.2015.06.011
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