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Differentiation and migration properties of human foetal umbilical cord perivascular cells: potential for lung repair

Mesenchymal stem cells (MSC) have been derived from different cultured human tissues, including bone marrow, adipose tissue, amniotic fluid and umbilical cord blood. Only recently it was suggested that MSC descended from perivascular cells, the latter being defined as CD146(+) neuro-glial proteoglyc...

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Autores principales: Montemurro, Tiziana, Andriolo, Gabriella, Montelatici, Elisa, Weissmann, Gaia, Crisan, Mihaela, Colnaghi, Maria Rosa, Rebulla, Paolo, Mosca, Fabio, Péault, Bruno, Lazzari, Lorenza
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Blackwell Publishing Ltd 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3922668/
https://www.ncbi.nlm.nih.gov/pubmed/20219017
http://dx.doi.org/10.1111/j.1582-4934.2010.01047.x
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author Montemurro, Tiziana
Andriolo, Gabriella
Montelatici, Elisa
Weissmann, Gaia
Crisan, Mihaela
Colnaghi, Maria Rosa
Rebulla, Paolo
Mosca, Fabio
Péault, Bruno
Lazzari, Lorenza
author_facet Montemurro, Tiziana
Andriolo, Gabriella
Montelatici, Elisa
Weissmann, Gaia
Crisan, Mihaela
Colnaghi, Maria Rosa
Rebulla, Paolo
Mosca, Fabio
Péault, Bruno
Lazzari, Lorenza
author_sort Montemurro, Tiziana
collection PubMed
description Mesenchymal stem cells (MSC) have been derived from different cultured human tissues, including bone marrow, adipose tissue, amniotic fluid and umbilical cord blood. Only recently it was suggested that MSC descended from perivascular cells, the latter being defined as CD146(+) neuro-glial proteoglycan (NG)2(+) platelet-derived growth factor-Rβ(+) ALP(+) CD34(–) CD45(–) von Willebrand factor (vWF)(–) CD144(–). Herein we studied the properties of perivascular cells from a novel source, the foetal human umbilical cord (HUC) collected from pre-term newborns. By immunohistochemistry and flow cytometry we show that pre-term/foetal HUCs contain more perivascular cells than their full-term counterparts (2.5%versus 0.15%). Moreover, foetal HUC perivascular cells (HUCPC) express the embryonic cell markers specific embryonic antigen-4, Runx1 and Oct-4 and can be cultured over the long term. To further confirm the MSC identity of these cultured perivascular cells, we also showed their expression at different passages of antigens that typify MSC. The multilineage differentiative capacity of HUCPC into osteogenic, adipogenic and myogenic cell lineages was demonstrated in culture. In the perspective of a therapeutic application in chronic lung disease of pre-term newborns, we demonstrated the in vitro ability of HUCPC to migrate towards an alveolar type II cell line damaged with bleomycin, an anti-cancer agent with known pulmonary toxicity. The secretory profile exhibited by foetal HUCPC in the migration assay suggested a paracrine effect that could be exploited in various clinical conditions including lung disorders.
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spelling pubmed-39226682015-04-06 Differentiation and migration properties of human foetal umbilical cord perivascular cells: potential for lung repair Montemurro, Tiziana Andriolo, Gabriella Montelatici, Elisa Weissmann, Gaia Crisan, Mihaela Colnaghi, Maria Rosa Rebulla, Paolo Mosca, Fabio Péault, Bruno Lazzari, Lorenza J Cell Mol Med Articles Mesenchymal stem cells (MSC) have been derived from different cultured human tissues, including bone marrow, adipose tissue, amniotic fluid and umbilical cord blood. Only recently it was suggested that MSC descended from perivascular cells, the latter being defined as CD146(+) neuro-glial proteoglycan (NG)2(+) platelet-derived growth factor-Rβ(+) ALP(+) CD34(–) CD45(–) von Willebrand factor (vWF)(–) CD144(–). Herein we studied the properties of perivascular cells from a novel source, the foetal human umbilical cord (HUC) collected from pre-term newborns. By immunohistochemistry and flow cytometry we show that pre-term/foetal HUCs contain more perivascular cells than their full-term counterparts (2.5%versus 0.15%). Moreover, foetal HUC perivascular cells (HUCPC) express the embryonic cell markers specific embryonic antigen-4, Runx1 and Oct-4 and can be cultured over the long term. To further confirm the MSC identity of these cultured perivascular cells, we also showed their expression at different passages of antigens that typify MSC. The multilineage differentiative capacity of HUCPC into osteogenic, adipogenic and myogenic cell lineages was demonstrated in culture. In the perspective of a therapeutic application in chronic lung disease of pre-term newborns, we demonstrated the in vitro ability of HUCPC to migrate towards an alveolar type II cell line damaged with bleomycin, an anti-cancer agent with known pulmonary toxicity. The secretory profile exhibited by foetal HUCPC in the migration assay suggested a paracrine effect that could be exploited in various clinical conditions including lung disorders. Blackwell Publishing Ltd 2011-04 2010-03-09 /pmc/articles/PMC3922668/ /pubmed/20219017 http://dx.doi.org/10.1111/j.1582-4934.2010.01047.x Text en © 2011 The Authors Journal of Cellular and Molecular Medicine © 2011 Foundation for Cellular and Molecular Medicine/Blackwell Publishing Ltd
spellingShingle Articles
Montemurro, Tiziana
Andriolo, Gabriella
Montelatici, Elisa
Weissmann, Gaia
Crisan, Mihaela
Colnaghi, Maria Rosa
Rebulla, Paolo
Mosca, Fabio
Péault, Bruno
Lazzari, Lorenza
Differentiation and migration properties of human foetal umbilical cord perivascular cells: potential for lung repair
title Differentiation and migration properties of human foetal umbilical cord perivascular cells: potential for lung repair
title_full Differentiation and migration properties of human foetal umbilical cord perivascular cells: potential for lung repair
title_fullStr Differentiation and migration properties of human foetal umbilical cord perivascular cells: potential for lung repair
title_full_unstemmed Differentiation and migration properties of human foetal umbilical cord perivascular cells: potential for lung repair
title_short Differentiation and migration properties of human foetal umbilical cord perivascular cells: potential for lung repair
title_sort differentiation and migration properties of human foetal umbilical cord perivascular cells: potential for lung repair
topic Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3922668/
https://www.ncbi.nlm.nih.gov/pubmed/20219017
http://dx.doi.org/10.1111/j.1582-4934.2010.01047.x
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