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PMID: 17068183 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Analysis of Oct4-dependent transcriptional networks regulating self-renewal and pluripotency in human embryonic stem cells.

Stem cells (Dayton, Ohio) ·Vol. 25 ·No. 2 ·2007-02-00 ·Pages 500-10

Babaie Y, Herwig R, Greber B, Brink TC, Wruck W, Groth D, Lehrach H, Burdon T, Adjaye J

Abstract

The POU domain transcription factor OCT4 is a key regulator of pluripotency in the early mammalian embryo and is highly expressed in the inner cell mass of the blastocyst. Consistent with its essential role in maintaining pluripotency, Oct4 expression is rapidly downregulated during formation of the trophoblast lineage. To enhance our understanding of the molecular basis of this differentiation event in humans, we used a functional genomics approach involving RNA interference-mediated suppression of OCT4 function in a human ESC line and analysis of the resulting transcriptional profiles to identify OCT4-dependent genes in human cells. We detected altered expression of >1,000 genes, including targets regulated directly by OCT4 either positively (NANOG, SOX2, REX1, LEFTB, LEFTA/EBAF DPPA4, THY1, and TDGF1) or negatively (CDX2, EOMES, BMP4, TBX18, Brachyury [T], DKK1, HLX1, GATA6, ID2, and DLX5), as well as targets for the OCT4-associated stem cell regulators SOX2 and NANOG. Our data set includes regulators of ACTIVIN, BMP, fibroblast growth factor, and WNT signaling. These pathways are implicated in regulating human ESC differentiation and therefore further validate the results of our analysis. In addition, we identified a number of differentially expressed genes that are involved in epigenetics, chromatin remodeling, apoptosis, and metabolism that may point to underlying molecular mechanisms that regulate pluripotency and trophoblast differentiation in humans. Significant concordance between this data set and previous comparisons between inner cell mass and trophectoderm in human embryos indicates that the study of human ESC differentiation in vitro represents a useful model of early embryonic differentiation in humans.

MeSH Terms
Apoptosis/genetics Bone Morphogenetic Proteins/genetics,metabolism Cell Differentiation Cell Lineage Embryonic Stem Cells/cytology,metabolism Fibroblast Growth Factors/genetics,metabolism Gene Expression Profiling Gene Regulatory Networks/genetics Hedgehog Proteins/genetics,metabolism Humans Metabolic Networks and Pathways/genetics Octamer Transcription Factor-3/deficiency,genetics,metabolism Pluripotent Stem Cells/cytology,metabolism RNA Interference RNA, Small Interfering Receptors, Notch/genetics,metabolism Signal Transduction/genetics Suppression, Genetic Transfection Transforming Growth Factor beta/genetics,metabolism Trophoblasts/cytology Wnt Proteins/genetics,metabolism
Chemicals
Bone Morphogenetic Proteins Hedgehog Proteins Octamer Transcription Factor-3 RNA, Small Interfering Receptors, Notch Transforming Growth Factor beta Wnt Proteins Fibroblast Growth Factors
Authors & Affiliations
9 authors, click to expand affiliations / ORCID
Babaie Yasmin
Roslin Institute, Department of Gene Function and Development, Roslin, Midlothian, United Kingdom.
Herwig Ralf
Greber Boris
Brink Thore C
Wruck Wasco
Groth Detlef
Lehrach Hans
Burdon Tom
Adjaye James
Article Info
Journal
Stem cells (Dayton, Ohio)
Abbr.
Stem Cells
ISSN
1066-5099
Published
2007-02-00
Epub
2006-00-26
Pages
500-10
Language
English
Region
United States
NLM ID
9304532
Subset
IM
Grants
Biotechnology and Biological Sciences Research Council · BBS/E/R/00000664 · United Kingdom
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