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Cell cycle regulation of astrocytes by extracellular nucleotides and fibroblast growth factor-2

Extracellular ATP enhances the mitogenic activity of fibroblast growth factor-2 (FGF2) in astrocytes, but the molecular mechanism underlying this synergistic interaction is not known. To determine whether the potentiating effect of extracellular ATP involves cell cycle control mechanisms, we have me...

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Detalles Bibliográficos
Autores principales: Neary, Joseph T., Kang, Yuan, Shi, You-Fang
Formato: Texto
Lenguaje:English
Publicado: Springer Netherlands 2005
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2096554/
https://www.ncbi.nlm.nih.gov/pubmed/18404517
http://dx.doi.org/10.1007/s11302-005-8075-y
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author Neary, Joseph T.
Kang, Yuan
Shi, You-Fang
author_facet Neary, Joseph T.
Kang, Yuan
Shi, You-Fang
author_sort Neary, Joseph T.
collection PubMed
description Extracellular ATP enhances the mitogenic activity of fibroblast growth factor-2 (FGF2) in astrocytes, but the molecular mechanism underlying this synergistic interaction is not known. To determine whether the potentiating effect of extracellular ATP involves cell cycle control mechanisms, we have measured the expression of cyclins that are induced in different phases of the cell cycle in primary cultures of rat cortical astrocytes. We found that ATP potentiated the ability of FGF2 to stimulate expression of cyclin D1, a regulator of cell cycle entry, as well as cyclin A, a regulator of DNA replication. Because FGF2 and P2 purinergic receptors are coupled to extracellular signal regulated protein kinase (ERK), a key member of a signaling cascade that regulates proliferation, we also investigated the role of ERK in regulating cyclin expression induced by FGF2 and ATP. We found that the potentiating effect of ATP on cyclin expression was significantly reduced by U0126, an inhibitor of MEK, the upstream activator of ERK. P2 receptor agonist studies revealed that UTP enhanced FGF2-induced cyclin expression and mitogenesis whereas 2-methylthioADP was ineffective. By contrast, 2-3-O-(4-benzoyl)-benzoyl-ATP markedly inhibited FGF2-induced mitogenesis. Consistent with opposing effects of P2Y and P2X receptors on mitogenesis, UTP stimulated a transient activation of ERK whereas BzATP stimulated a more sustained ERK signal. These findings suggest that signaling by P2Y receptors, most likely of the purine/pyrimidine subtype, enhance the ability of FGF2 to stimulate entry into a new cell cycle, as well as DNA replication, by an ERK-dependent mechanism, whereas signaling by P2X receptors, possibly the P2X7 subtype, inhibits FGF2-induced mitogenesis in astrocytes. Interactions between P2Y, P2X and polypeptide growth factor signaling pathways may have important implications for CNS development as well as injury and repair.
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spelling pubmed-20965542008-02-27 Cell cycle regulation of astrocytes by extracellular nucleotides and fibroblast growth factor-2 Neary, Joseph T. Kang, Yuan Shi, You-Fang Purinergic Signal Article Extracellular ATP enhances the mitogenic activity of fibroblast growth factor-2 (FGF2) in astrocytes, but the molecular mechanism underlying this synergistic interaction is not known. To determine whether the potentiating effect of extracellular ATP involves cell cycle control mechanisms, we have measured the expression of cyclins that are induced in different phases of the cell cycle in primary cultures of rat cortical astrocytes. We found that ATP potentiated the ability of FGF2 to stimulate expression of cyclin D1, a regulator of cell cycle entry, as well as cyclin A, a regulator of DNA replication. Because FGF2 and P2 purinergic receptors are coupled to extracellular signal regulated protein kinase (ERK), a key member of a signaling cascade that regulates proliferation, we also investigated the role of ERK in regulating cyclin expression induced by FGF2 and ATP. We found that the potentiating effect of ATP on cyclin expression was significantly reduced by U0126, an inhibitor of MEK, the upstream activator of ERK. P2 receptor agonist studies revealed that UTP enhanced FGF2-induced cyclin expression and mitogenesis whereas 2-methylthioADP was ineffective. By contrast, 2-3-O-(4-benzoyl)-benzoyl-ATP markedly inhibited FGF2-induced mitogenesis. Consistent with opposing effects of P2Y and P2X receptors on mitogenesis, UTP stimulated a transient activation of ERK whereas BzATP stimulated a more sustained ERK signal. These findings suggest that signaling by P2Y receptors, most likely of the purine/pyrimidine subtype, enhance the ability of FGF2 to stimulate entry into a new cell cycle, as well as DNA replication, by an ERK-dependent mechanism, whereas signaling by P2X receptors, possibly the P2X7 subtype, inhibits FGF2-induced mitogenesis in astrocytes. Interactions between P2Y, P2X and polypeptide growth factor signaling pathways may have important implications for CNS development as well as injury and repair. Springer Netherlands 2005-12-03 2005-12 /pmc/articles/PMC2096554/ /pubmed/18404517 http://dx.doi.org/10.1007/s11302-005-8075-y Text en © Springer 2005
spellingShingle Article
Neary, Joseph T.
Kang, Yuan
Shi, You-Fang
Cell cycle regulation of astrocytes by extracellular nucleotides and fibroblast growth factor-2
title Cell cycle regulation of astrocytes by extracellular nucleotides and fibroblast growth factor-2
title_full Cell cycle regulation of astrocytes by extracellular nucleotides and fibroblast growth factor-2
title_fullStr Cell cycle regulation of astrocytes by extracellular nucleotides and fibroblast growth factor-2
title_full_unstemmed Cell cycle regulation of astrocytes by extracellular nucleotides and fibroblast growth factor-2
title_short Cell cycle regulation of astrocytes by extracellular nucleotides and fibroblast growth factor-2
title_sort cell cycle regulation of astrocytes by extracellular nucleotides and fibroblast growth factor-2
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2096554/
https://www.ncbi.nlm.nih.gov/pubmed/18404517
http://dx.doi.org/10.1007/s11302-005-8075-y
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