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PMID: 16179608 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Activin/Nodal and FGF pathways cooperate to maintain pluripotency of human embryonic stem cells.

Journal of cell science ·Vol. 118 ·No. Pt 19 ·2005-10-01 ·Pages 4495-509

Vallier L, Alexander M, Pedersen RA

Abstract

Maintenance of pluripotency is crucial to the mammalian embryo's ability to generate the extra-embryonic and embryonic tissues that are needed for intrauterine survival and foetal development. The recent establishment of embryonic stem cells from human blastocysts (hESCs) provides an opportunity to identify the factors supporting pluripotency at early stages of human development. Using this in vitro model, we have recently shown that Nodal can block neuronal differentiation, suggesting that TGFbeta family members are involved in cell fate decisions of hESCs, including preservation of their pluripotency. Here, we report that Activin/Nodal signalling through Smad2/3 activation is necessary to maintain the pluripotent status of hESCs. Inhibition of Activin/Nodal signalling by follistatin and by overexpression of Lefty or Cerberus-Short, or by the Activin receptor inhibitor SB431542, precipitates hESC differentiation. Nevertheless, neither Nodal nor Activin is sufficient to sustain long-term hESC growth in a chemically defined medium without serum. Recent studies have shown that FGF2 can also maintain long-term expression of pluripotency markers, and we find that inhibition of the FGF signalling pathway by the tyrosine kinase inhibitor SU5402 causes hESC differentiation. However, this effect of FGF on hESC pluripotency depends on Activin/Nodal signalling, because it is blocked by SB431542. Finally, long-term maintenance of in-vitro pluripotency can be achieved with a combination of Activin or Nodal plus FGF2 in the absence of feeder-cell layers, conditioned medium or Serum Replacer. These findings suggest that the Activin/Nodal pathway maintains pluripotency through mechanism(s) in which FGF acts as a competence factor and therefore provide further evidence of distinct mechanisms for preservation of pluripotency in mouse and human ESCs.

MeSH Terms
Activin Receptors, Type I/antagonists & inhibitors,metabolism Activins/genetics,metabolism Animals Benzamides/metabolism Biomarkers/metabolism Cell Differentiation/physiology Cells, Cultured Dioxoles/metabolism Embryo, Mammalian/cytology,physiology Epidermal Growth Factor/genetics,metabolism Fibroblast Growth Factors/metabolism GPI-Linked Proteins Humans Intercellular Signaling Peptides and Proteins Membrane Glycoproteins/genetics,metabolism Mice Neoplasm Proteins/genetics,metabolism Nodal Protein Pluripotent Stem Cells/cytology,physiology Signal Transduction/physiology Smad Proteins/metabolism Transforming Growth Factor beta/genetics,metabolism Transforming Growth Factor beta1
Chemicals
4-(5-benzo(1,3)dioxol-5-yl-4-pyridin-2-yl-1H-imidazol-2-yl)benzamide Benzamides Biomarkers Dioxoles GPI-Linked Proteins Intercellular Signaling Peptides and Proteins Membrane Glycoproteins NODAL protein, human Neoplasm Proteins Nodal Protein Nodal protein, mouse Smad Proteins TDGF1 protein, human TGFB1 protein, human Tgfb1 protein, mouse Transforming Growth Factor beta Transforming Growth Factor beta1 Activins Fibroblast Growth Factors Epidermal Growth Factor Activin Receptors, Type I
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Vallier Ludovic
Department of Surgery and Cambridge Institute for Medical Research, Addenbrooke's Hospital, University of Cambridge, Hills Road, Cambridge CB2 2XY, UK. lv225@cam.ac.uk
Alexander Morgan
Pedersen Roger A
Article Info
Journal
Journal of cell science
Abbr.
J Cell Sci
ISSN
0021-9533
Published
2005-10-01
Pages
4495-509
Language
English
Region
England
NLM ID
0052457
Subset
IM
Grants
Medical Research Council · G0100501 · United Kingdom
Medical Research Council · G0800784 · United Kingdom
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