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OCT4/SOX2-independent Nanog autorepression modulates heterogeneous Nanog gene expression in mouse ES cells
by
Festuccia, Nicola
, Zhang, Wensheng
, Chambers, Ian
, Mullin, Nicholas P
, Karwacki‐Neisius, Violetta
, Kelly, David
, Robertson, Morag
, Navarro, Pablo
, Colby, Douglas
, Osorno, Rodrigo
, Gagliardi, Alessia
in
Animals
/ Biochemistry, Molecular Biology
/ Cell Differentiation - genetics
/ Cell Differentiation - physiology
/ Cellular Biology
/ Chromatin Immunoprecipitation
/ EMBO09
/ EMBO11
/ Embryonic Stem Cells - metabolism
/ Feedback, Physiological
/ Flow Cytometry
/ Gene expression
/ Gene Expression Regulation - genetics
/ Gene Expression Regulation - physiology
/ Gene Regulatory Networks - genetics
/ Genomics
/ Green Fluorescent Proteins
/ Heterogeneity
/ Homeodomain Proteins - metabolism
/ In Situ Hybridization, Fluorescence
/ Life Sciences
/ Mice
/ Molecular biology
/ nanog
/ Nanog Homeobox Protein
/ network
/ pluripotency
/ Pluripotent Stem Cells - metabolism
/ Reverse Transcriptase Polymerase Chain Reaction
/ Rodents
/ self-renewal
/ Signal transduction
/ Stem cells
/ Transcription Factors - metabolism
2012
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OCT4/SOX2-independent Nanog autorepression modulates heterogeneous Nanog gene expression in mouse ES cells
by
Festuccia, Nicola
, Zhang, Wensheng
, Chambers, Ian
, Mullin, Nicholas P
, Karwacki‐Neisius, Violetta
, Kelly, David
, Robertson, Morag
, Navarro, Pablo
, Colby, Douglas
, Osorno, Rodrigo
, Gagliardi, Alessia
in
Animals
/ Biochemistry, Molecular Biology
/ Cell Differentiation - genetics
/ Cell Differentiation - physiology
/ Cellular Biology
/ Chromatin Immunoprecipitation
/ EMBO09
/ EMBO11
/ Embryonic Stem Cells - metabolism
/ Feedback, Physiological
/ Flow Cytometry
/ Gene expression
/ Gene Expression Regulation - genetics
/ Gene Expression Regulation - physiology
/ Gene Regulatory Networks - genetics
/ Genomics
/ Green Fluorescent Proteins
/ Heterogeneity
/ Homeodomain Proteins - metabolism
/ In Situ Hybridization, Fluorescence
/ Life Sciences
/ Mice
/ Molecular biology
/ nanog
/ Nanog Homeobox Protein
/ network
/ pluripotency
/ Pluripotent Stem Cells - metabolism
/ Reverse Transcriptase Polymerase Chain Reaction
/ Rodents
/ self-renewal
/ Signal transduction
/ Stem cells
/ Transcription Factors - metabolism
2012
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OCT4/SOX2-independent Nanog autorepression modulates heterogeneous Nanog gene expression in mouse ES cells
by
Festuccia, Nicola
, Zhang, Wensheng
, Chambers, Ian
, Mullin, Nicholas P
, Karwacki‐Neisius, Violetta
, Kelly, David
, Robertson, Morag
, Navarro, Pablo
, Colby, Douglas
, Osorno, Rodrigo
, Gagliardi, Alessia
in
Animals
/ Biochemistry, Molecular Biology
/ Cell Differentiation - genetics
/ Cell Differentiation - physiology
/ Cellular Biology
/ Chromatin Immunoprecipitation
/ EMBO09
/ EMBO11
/ Embryonic Stem Cells - metabolism
/ Feedback, Physiological
/ Flow Cytometry
/ Gene expression
/ Gene Expression Regulation - genetics
/ Gene Expression Regulation - physiology
/ Gene Regulatory Networks - genetics
/ Genomics
/ Green Fluorescent Proteins
/ Heterogeneity
/ Homeodomain Proteins - metabolism
/ In Situ Hybridization, Fluorescence
/ Life Sciences
/ Mice
/ Molecular biology
/ nanog
/ Nanog Homeobox Protein
/ network
/ pluripotency
/ Pluripotent Stem Cells - metabolism
/ Reverse Transcriptase Polymerase Chain Reaction
/ Rodents
/ self-renewal
/ Signal transduction
/ Stem cells
/ Transcription Factors - metabolism
2012
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OCT4/SOX2-independent Nanog autorepression modulates heterogeneous Nanog gene expression in mouse ES cells
Journal Article
OCT4/SOX2-independent Nanog autorepression modulates heterogeneous Nanog gene expression in mouse ES cells
2012
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Overview
NANOG, OCT4 and SOX2 form the core network of transcription factors supporting embryonic stem (ES) cell self‐renewal. While OCT4 and SOX2 expression is relatively uniform, ES cells fluctuate between states of high NANOG expression possessing high self‐renewal efficiency, and low NANOG expression exhibiting increased differentiation propensity. NANOG, OCT4 and SOX2 are currently considered to activate transcription of each of the three genes, an architecture that cannot readily account for NANOG heterogeneity. Here, we examine the architecture of the
Nanog
‐centred network using inducible NANOG gain‐ and loss‐of‐function approaches. Rather than activating itself,
Nanog
activity is autorepressive and OCT4/SOX2‐independent. Moreover, the influence of
Nanog
on
Oct4
and
Sox2
expression is minimal. Using
Nanog
:GFP reporters, we show that
Nanog
autorepression is a major regulator of
Nanog
transcription switching. We conclude that the architecture of the pluripotency gene regulatory network encodes the capacity to generate reversible states of
Nanog
transcription via a
Nanog
‐centred autorepressive loop. Therefore, cellular variability in self‐renewal efficiency is an emergent property of the pluripotency gene regulatory network.
The discovery of
Nanog
autorepression offers a new perspective on the transcriptional networks that govern
Nanog's
heterogeneous expression in ES cells.
Publisher
John Wiley & Sons, Ltd,Nature Publishing Group UK,Springer Nature B.V,EMBO Press,Nature Publishing Group
Subject
/ Biochemistry, Molecular Biology
/ Cell Differentiation - genetics
/ Cell Differentiation - physiology
/ Chromatin Immunoprecipitation
/ EMBO09
/ EMBO11
/ Embryonic Stem Cells - metabolism
/ Gene Expression Regulation - genetics
/ Gene Expression Regulation - physiology
/ Gene Regulatory Networks - genetics
/ Genomics
/ Homeodomain Proteins - metabolism
/ In Situ Hybridization, Fluorescence
/ Mice
/ nanog
/ network
/ Pluripotent Stem Cells - metabolism
/ Reverse Transcriptase Polymerase Chain Reaction
/ Rodents
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