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The extracellular matrix controls gap junction protein expression and function in postnatal hippocampal neural progenitor cells

BACKGROUND: Gap junction protein and extracellular matrix signalling systems act in concert to influence developmental specification of neural stem and progenitor cells. It is not known how these two signalling systems interact. Here, we examined the role of ECM components in regulating connexin exp...

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Autores principales: Imbeault, Sophie, Gauvin, Lianne G, Toeg, Hadi D, Pettit, Alexandra, Sorbara, Catherine D, Migahed, Lamiaa, DesRoches, Rebecca, Menzies, A Sheila, Nishii, Kiyomasa, Paul, David L, Simon, Alexander M, Bennett, Steffany AL
Formato: Texto
Lenguaje:English
Publicado: BioMed Central 2009
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2655299/
https://www.ncbi.nlm.nih.gov/pubmed/19236721
http://dx.doi.org/10.1186/1471-2202-10-13
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author Imbeault, Sophie
Gauvin, Lianne G
Toeg, Hadi D
Pettit, Alexandra
Sorbara, Catherine D
Migahed, Lamiaa
DesRoches, Rebecca
Menzies, A Sheila
Nishii, Kiyomasa
Paul, David L
Simon, Alexander M
Bennett, Steffany AL
author_facet Imbeault, Sophie
Gauvin, Lianne G
Toeg, Hadi D
Pettit, Alexandra
Sorbara, Catherine D
Migahed, Lamiaa
DesRoches, Rebecca
Menzies, A Sheila
Nishii, Kiyomasa
Paul, David L
Simon, Alexander M
Bennett, Steffany AL
author_sort Imbeault, Sophie
collection PubMed
description BACKGROUND: Gap junction protein and extracellular matrix signalling systems act in concert to influence developmental specification of neural stem and progenitor cells. It is not known how these two signalling systems interact. Here, we examined the role of ECM components in regulating connexin expression and function in postnatal hippocampal progenitor cells. RESULTS: We found that Cx26, Cx29, Cx30, Cx37, Cx40, Cx43, Cx45, and Cx47 mRNA and protein but only Cx32 and Cx36 mRNA are detected in distinct neural progenitor cell populations cultured in the absence of exogenous ECM. Multipotential Type 1 cells express Cx26, Cx30, and Cx43 protein. Their Type 2a progeny but not Type 2b and 3 neuronally committed progenitor cells additionally express Cx37, Cx40, and Cx45. Cx29 and Cx47 protein is detected in early oligodendrocyte progenitors and mature oligodendrocytes respectively. Engagement with a laminin substrate markedly increases Cx26 protein expression, decreases Cx40, Cx43, Cx45, and Cx47 protein expression, and alters subcellular localization of Cx30. These changes are associated with decreased neurogenesis. Further, laminin elicits the appearance of Cx32 protein in early oligodendrocyte progenitors and Cx36 protein in immature neurons. These changes impact upon functional connexin-mediated hemichannel activity but not gap junctional intercellular communication. CONCLUSION: Together, these findings demonstrate a new role for extracellular matrix-cell interaction, specifically laminin, in the regulation of intrinsic connexin expression and function in postnatal neural progenitor cells.
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spelling pubmed-26552992009-03-14 The extracellular matrix controls gap junction protein expression and function in postnatal hippocampal neural progenitor cells Imbeault, Sophie Gauvin, Lianne G Toeg, Hadi D Pettit, Alexandra Sorbara, Catherine D Migahed, Lamiaa DesRoches, Rebecca Menzies, A Sheila Nishii, Kiyomasa Paul, David L Simon, Alexander M Bennett, Steffany AL BMC Neurosci Research Article BACKGROUND: Gap junction protein and extracellular matrix signalling systems act in concert to influence developmental specification of neural stem and progenitor cells. It is not known how these two signalling systems interact. Here, we examined the role of ECM components in regulating connexin expression and function in postnatal hippocampal progenitor cells. RESULTS: We found that Cx26, Cx29, Cx30, Cx37, Cx40, Cx43, Cx45, and Cx47 mRNA and protein but only Cx32 and Cx36 mRNA are detected in distinct neural progenitor cell populations cultured in the absence of exogenous ECM. Multipotential Type 1 cells express Cx26, Cx30, and Cx43 protein. Their Type 2a progeny but not Type 2b and 3 neuronally committed progenitor cells additionally express Cx37, Cx40, and Cx45. Cx29 and Cx47 protein is detected in early oligodendrocyte progenitors and mature oligodendrocytes respectively. Engagement with a laminin substrate markedly increases Cx26 protein expression, decreases Cx40, Cx43, Cx45, and Cx47 protein expression, and alters subcellular localization of Cx30. These changes are associated with decreased neurogenesis. Further, laminin elicits the appearance of Cx32 protein in early oligodendrocyte progenitors and Cx36 protein in immature neurons. These changes impact upon functional connexin-mediated hemichannel activity but not gap junctional intercellular communication. CONCLUSION: Together, these findings demonstrate a new role for extracellular matrix-cell interaction, specifically laminin, in the regulation of intrinsic connexin expression and function in postnatal neural progenitor cells. BioMed Central 2009-02-24 /pmc/articles/PMC2655299/ /pubmed/19236721 http://dx.doi.org/10.1186/1471-2202-10-13 Text en Copyright © 2009 Imbeault 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
Imbeault, Sophie
Gauvin, Lianne G
Toeg, Hadi D
Pettit, Alexandra
Sorbara, Catherine D
Migahed, Lamiaa
DesRoches, Rebecca
Menzies, A Sheila
Nishii, Kiyomasa
Paul, David L
Simon, Alexander M
Bennett, Steffany AL
The extracellular matrix controls gap junction protein expression and function in postnatal hippocampal neural progenitor cells
title The extracellular matrix controls gap junction protein expression and function in postnatal hippocampal neural progenitor cells
title_full The extracellular matrix controls gap junction protein expression and function in postnatal hippocampal neural progenitor cells
title_fullStr The extracellular matrix controls gap junction protein expression and function in postnatal hippocampal neural progenitor cells
title_full_unstemmed The extracellular matrix controls gap junction protein expression and function in postnatal hippocampal neural progenitor cells
title_short The extracellular matrix controls gap junction protein expression and function in postnatal hippocampal neural progenitor cells
title_sort extracellular matrix controls gap junction protein expression and function in postnatal hippocampal neural progenitor cells
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2655299/
https://www.ncbi.nlm.nih.gov/pubmed/19236721
http://dx.doi.org/10.1186/1471-2202-10-13
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