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Amniotic MSCs reduce pulmonary fibrosis by hampering lung B‐cell recruitment, retention, and maturation

Growing evidence suggests a mechanistic link between inflammation and the development and progression of fibrotic processes. Mesenchymal stromal cells derived from the human amniotic membrane (hAMSCs), which display marked immunomodulatory properties, have been shown to reduce bleomycin‐induced lung...

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Autores principales: Cargnoni, Anna, Romele, Pietro, Bonassi Signoroni, Patrizia, Farigu, Serafina, Magatti, Marta, Vertua, Elsa, Toschi, Ivan, Cesari, Valentina, Silini, Antonietta R., Stefani, Francesca R., Parolini, Ornella
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley & Sons, Inc. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7445028/
https://www.ncbi.nlm.nih.gov/pubmed/32452646
http://dx.doi.org/10.1002/sctm.20-0068
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author Cargnoni, Anna
Romele, Pietro
Bonassi Signoroni, Patrizia
Farigu, Serafina
Magatti, Marta
Vertua, Elsa
Toschi, Ivan
Cesari, Valentina
Silini, Antonietta R.
Stefani, Francesca R.
Parolini, Ornella
author_facet Cargnoni, Anna
Romele, Pietro
Bonassi Signoroni, Patrizia
Farigu, Serafina
Magatti, Marta
Vertua, Elsa
Toschi, Ivan
Cesari, Valentina
Silini, Antonietta R.
Stefani, Francesca R.
Parolini, Ornella
author_sort Cargnoni, Anna
collection PubMed
description Growing evidence suggests a mechanistic link between inflammation and the development and progression of fibrotic processes. Mesenchymal stromal cells derived from the human amniotic membrane (hAMSCs), which display marked immunomodulatory properties, have been shown to reduce bleomycin‐induced lung fibrosis in mice, possibly by creating a microenvironment able to limit the evolution of chronic inflammation to fibrosis. However, the ability of hAMSCs to modulate immune cells involved in bleomycin‐induced pulmonary inflammation has yet to be elucidated. Herein, we conducted a longitudinal study of the effects of hAMSCs on alveolar and lung immune cell populations upon bleomycin challenge. Immune cells collected through bronchoalveolar lavage were examined by flow cytometry, and lung tissues were used to study gene expression of markers associated with different immune cell types. We observed that hAMSCs increased lung expression of T regulatory cell marker Foxp3, increased macrophage polarization toward an anti‐inflammatory phenotype (M2), and reduced the antigen‐presentation potential of macrophages and dendritic cells. For the first time, we demonstrate that hAMSCs markedly reduce pulmonary B‐cell recruitment, retention, and maturation, and counteract the formation and expansion of intrapulmonary lymphoid aggregates. Thus, hAMSCs may hamper the self‐maintaining inflammatory condition promoted by B cells that continuously act as antigen presenting cells for proximal T lymphocytes in injured lungs. By modulating B‐cell response, hAMSCs may contribute to blunting of the chronicization of lung inflammatory processes with a consequent reduction of the progression of the fibrotic lesion.
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spelling pubmed-74450282020-08-28 Amniotic MSCs reduce pulmonary fibrosis by hampering lung B‐cell recruitment, retention, and maturation Cargnoni, Anna Romele, Pietro Bonassi Signoroni, Patrizia Farigu, Serafina Magatti, Marta Vertua, Elsa Toschi, Ivan Cesari, Valentina Silini, Antonietta R. Stefani, Francesca R. Parolini, Ornella Stem Cells Transl Med Fetal and Neonatal Stem Cells Growing evidence suggests a mechanistic link between inflammation and the development and progression of fibrotic processes. Mesenchymal stromal cells derived from the human amniotic membrane (hAMSCs), which display marked immunomodulatory properties, have been shown to reduce bleomycin‐induced lung fibrosis in mice, possibly by creating a microenvironment able to limit the evolution of chronic inflammation to fibrosis. However, the ability of hAMSCs to modulate immune cells involved in bleomycin‐induced pulmonary inflammation has yet to be elucidated. Herein, we conducted a longitudinal study of the effects of hAMSCs on alveolar and lung immune cell populations upon bleomycin challenge. Immune cells collected through bronchoalveolar lavage were examined by flow cytometry, and lung tissues were used to study gene expression of markers associated with different immune cell types. We observed that hAMSCs increased lung expression of T regulatory cell marker Foxp3, increased macrophage polarization toward an anti‐inflammatory phenotype (M2), and reduced the antigen‐presentation potential of macrophages and dendritic cells. For the first time, we demonstrate that hAMSCs markedly reduce pulmonary B‐cell recruitment, retention, and maturation, and counteract the formation and expansion of intrapulmonary lymphoid aggregates. Thus, hAMSCs may hamper the self‐maintaining inflammatory condition promoted by B cells that continuously act as antigen presenting cells for proximal T lymphocytes in injured lungs. By modulating B‐cell response, hAMSCs may contribute to blunting of the chronicization of lung inflammatory processes with a consequent reduction of the progression of the fibrotic lesion. John Wiley & Sons, Inc. 2020-05-26 /pmc/articles/PMC7445028/ /pubmed/32452646 http://dx.doi.org/10.1002/sctm.20-0068 Text en © 2020 The Authors. stem cells translational medicine published by Wiley Periodicals, Inc. on behalf of AlphaMed Press This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Fetal and Neonatal Stem Cells
Cargnoni, Anna
Romele, Pietro
Bonassi Signoroni, Patrizia
Farigu, Serafina
Magatti, Marta
Vertua, Elsa
Toschi, Ivan
Cesari, Valentina
Silini, Antonietta R.
Stefani, Francesca R.
Parolini, Ornella
Amniotic MSCs reduce pulmonary fibrosis by hampering lung B‐cell recruitment, retention, and maturation
title Amniotic MSCs reduce pulmonary fibrosis by hampering lung B‐cell recruitment, retention, and maturation
title_full Amniotic MSCs reduce pulmonary fibrosis by hampering lung B‐cell recruitment, retention, and maturation
title_fullStr Amniotic MSCs reduce pulmonary fibrosis by hampering lung B‐cell recruitment, retention, and maturation
title_full_unstemmed Amniotic MSCs reduce pulmonary fibrosis by hampering lung B‐cell recruitment, retention, and maturation
title_short Amniotic MSCs reduce pulmonary fibrosis by hampering lung B‐cell recruitment, retention, and maturation
title_sort amniotic mscs reduce pulmonary fibrosis by hampering lung b‐cell recruitment, retention, and maturation
topic Fetal and Neonatal Stem Cells
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7445028/
https://www.ncbi.nlm.nih.gov/pubmed/32452646
http://dx.doi.org/10.1002/sctm.20-0068
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