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Long term culture of mesenchymal stem cells in hypoxia promotes a genetic program maintaining their undifferentiated and multipotent status

BACKGROUND: In the bone marrow, hematopietic and mesenchymal stem cells form a unique niche in which the oxygen tension is low. Hypoxia may have a role in maintaining stem cell fate, self renewal and multipotency. However, whereas most studies addressed the effect of transient in vitro exposure of M...

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Autores principales: Basciano, Leticia, Nemos, Christophe, Foliguet, Bernard, de Isla, Natalia, de Carvalho, Marcelo, Tran, Nguyen, Dalloul, Ali
Formato: Texto
Lenguaje:English
Publicado: BioMed Central 2011
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3073900/
https://www.ncbi.nlm.nih.gov/pubmed/21450070
http://dx.doi.org/10.1186/1471-2121-12-12
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author Basciano, Leticia
Nemos, Christophe
Foliguet, Bernard
de Isla, Natalia
de Carvalho, Marcelo
Tran, Nguyen
Dalloul, Ali
author_facet Basciano, Leticia
Nemos, Christophe
Foliguet, Bernard
de Isla, Natalia
de Carvalho, Marcelo
Tran, Nguyen
Dalloul, Ali
author_sort Basciano, Leticia
collection PubMed
description BACKGROUND: In the bone marrow, hematopietic and mesenchymal stem cells form a unique niche in which the oxygen tension is low. Hypoxia may have a role in maintaining stem cell fate, self renewal and multipotency. However, whereas most studies addressed the effect of transient in vitro exposure of MSC to hypoxia, permanent culture under hypoxia should reflect the better physiological conditions. RESULTS: Morphologic studies, differentiation and transcriptional profiling experiments were performed on MSC cultured in normoxia (21% O(2)) versus hypoxia (5% O(2)) for up to passage 2. Cells at passage 0 and at passage 2 were compared, and those at passage 0 in hypoxia generated fewer and smaller colonies than in normoxia. In parallel, MSC displayed (>4 fold) inhibition of genes involved in DNA metabolism, cell cycle progression and chromosome cohesion whereas transcripts involved in adhesion and metabolism (CD93, ESAM, VWF, PLVAP, ANGPT2, LEP, TCF1) were stimulated. Compared to normoxic cells, hypoxic cells were morphologically undifferentiated and contained less mitochondrias. After this lag phase, cells at passage 2 in hypoxia outgrew the cells cultured in normoxia and displayed an enhanced expression of genes (4-60 fold) involved in extracellular matrix assembly (SMOC2), neural and muscle development (NOG, GPR56, SNTG2, LAMA) and epithelial development (DMKN). This group described herein for the first time was assigned by the Gene Ontology program to "plasticity". CONCLUSION: The duration of hypoxemia is a critical parameter in the differentiation capacity of MSC. Even in growth promoting conditions, hypoxia enhanced a genetic program that maintained the cells undifferentiated and multipotent. This condition may better reflect the in vivo gene signature of MSC, with potential implications in regenerative medicine.
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spelling pubmed-30739002011-04-12 Long term culture of mesenchymal stem cells in hypoxia promotes a genetic program maintaining their undifferentiated and multipotent status Basciano, Leticia Nemos, Christophe Foliguet, Bernard de Isla, Natalia de Carvalho, Marcelo Tran, Nguyen Dalloul, Ali BMC Cell Biol Research Article BACKGROUND: In the bone marrow, hematopietic and mesenchymal stem cells form a unique niche in which the oxygen tension is low. Hypoxia may have a role in maintaining stem cell fate, self renewal and multipotency. However, whereas most studies addressed the effect of transient in vitro exposure of MSC to hypoxia, permanent culture under hypoxia should reflect the better physiological conditions. RESULTS: Morphologic studies, differentiation and transcriptional profiling experiments were performed on MSC cultured in normoxia (21% O(2)) versus hypoxia (5% O(2)) for up to passage 2. Cells at passage 0 and at passage 2 were compared, and those at passage 0 in hypoxia generated fewer and smaller colonies than in normoxia. In parallel, MSC displayed (>4 fold) inhibition of genes involved in DNA metabolism, cell cycle progression and chromosome cohesion whereas transcripts involved in adhesion and metabolism (CD93, ESAM, VWF, PLVAP, ANGPT2, LEP, TCF1) were stimulated. Compared to normoxic cells, hypoxic cells were morphologically undifferentiated and contained less mitochondrias. After this lag phase, cells at passage 2 in hypoxia outgrew the cells cultured in normoxia and displayed an enhanced expression of genes (4-60 fold) involved in extracellular matrix assembly (SMOC2), neural and muscle development (NOG, GPR56, SNTG2, LAMA) and epithelial development (DMKN). This group described herein for the first time was assigned by the Gene Ontology program to "plasticity". CONCLUSION: The duration of hypoxemia is a critical parameter in the differentiation capacity of MSC. Even in growth promoting conditions, hypoxia enhanced a genetic program that maintained the cells undifferentiated and multipotent. This condition may better reflect the in vivo gene signature of MSC, with potential implications in regenerative medicine. BioMed Central 2011-03-30 /pmc/articles/PMC3073900/ /pubmed/21450070 http://dx.doi.org/10.1186/1471-2121-12-12 Text en Copyright ©2011 Basciano et al; licensee BioMed Central Ltd. http://creativecommons.org/licenses/by/2.0 This is an Open Access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/2.0), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Article
Basciano, Leticia
Nemos, Christophe
Foliguet, Bernard
de Isla, Natalia
de Carvalho, Marcelo
Tran, Nguyen
Dalloul, Ali
Long term culture of mesenchymal stem cells in hypoxia promotes a genetic program maintaining their undifferentiated and multipotent status
title Long term culture of mesenchymal stem cells in hypoxia promotes a genetic program maintaining their undifferentiated and multipotent status
title_full Long term culture of mesenchymal stem cells in hypoxia promotes a genetic program maintaining their undifferentiated and multipotent status
title_fullStr Long term culture of mesenchymal stem cells in hypoxia promotes a genetic program maintaining their undifferentiated and multipotent status
title_full_unstemmed Long term culture of mesenchymal stem cells in hypoxia promotes a genetic program maintaining their undifferentiated and multipotent status
title_short Long term culture of mesenchymal stem cells in hypoxia promotes a genetic program maintaining their undifferentiated and multipotent status
title_sort long term culture of mesenchymal stem cells in hypoxia promotes a genetic program maintaining their undifferentiated and multipotent status
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3073900/
https://www.ncbi.nlm.nih.gov/pubmed/21450070
http://dx.doi.org/10.1186/1471-2121-12-12
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