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A direct physical interaction between Nanog and Sox2 regulates embryonic stem cell self-renewal
by
Halbritter, Florian
, Kousa, Anastasia I
, Chambers, Ian
, Tomlinson, Simon R
, Weiss, Jason T
, Ying Tan, Zi
, Poot, Raymond A
, Gagliardi, Alessia
, Demmers, Jeroen
, Nicolis, Silvia K
, Favaro, Rebecca
, Mullin, Nicholas P
, Felker, Anastasia
, Bezstarosti, Karel
, Colby, Douglas
in
Animals
/ Cell differentiation
/ Cell Proliferation
/ Colony-Forming Units Assay
/ Deoxyribonucleic acid
/ DNA
/ DNA-independent interaction
/ EMBO11
/ EMBO37
/ Embryonic Stem Cells - metabolism
/ Embryonic Stem Cells - physiology
/ Homeodomain Proteins - metabolism
/ hydrophobic stacking
/ Immunoblotting
/ Immunoprecipitation
/ Mice
/ Molecular biology
/ Mutation
/ Nanog Homeobox Protein
/ Plasmids - genetics
/ pluripotency
/ Protein Interaction Domains and Motifs - genetics
/ Protein Interaction Mapping
/ protein interactome
/ Proteins
/ SELEX
/ SELEX Aptamer Technique
/ Signal transduction
/ SOXB1 Transcription Factors - metabolism
/ Stem cells
/ Tryptophan - metabolism
/ Tyrosine - metabolism
2013
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A direct physical interaction between Nanog and Sox2 regulates embryonic stem cell self-renewal
by
Halbritter, Florian
, Kousa, Anastasia I
, Chambers, Ian
, Tomlinson, Simon R
, Weiss, Jason T
, Ying Tan, Zi
, Poot, Raymond A
, Gagliardi, Alessia
, Demmers, Jeroen
, Nicolis, Silvia K
, Favaro, Rebecca
, Mullin, Nicholas P
, Felker, Anastasia
, Bezstarosti, Karel
, Colby, Douglas
in
Animals
/ Cell differentiation
/ Cell Proliferation
/ Colony-Forming Units Assay
/ Deoxyribonucleic acid
/ DNA
/ DNA-independent interaction
/ EMBO11
/ EMBO37
/ Embryonic Stem Cells - metabolism
/ Embryonic Stem Cells - physiology
/ Homeodomain Proteins - metabolism
/ hydrophobic stacking
/ Immunoblotting
/ Immunoprecipitation
/ Mice
/ Molecular biology
/ Mutation
/ Nanog Homeobox Protein
/ Plasmids - genetics
/ pluripotency
/ Protein Interaction Domains and Motifs - genetics
/ Protein Interaction Mapping
/ protein interactome
/ Proteins
/ SELEX
/ SELEX Aptamer Technique
/ Signal transduction
/ SOXB1 Transcription Factors - metabolism
/ Stem cells
/ Tryptophan - metabolism
/ Tyrosine - metabolism
2013
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A direct physical interaction between Nanog and Sox2 regulates embryonic stem cell self-renewal
by
Halbritter, Florian
, Kousa, Anastasia I
, Chambers, Ian
, Tomlinson, Simon R
, Weiss, Jason T
, Ying Tan, Zi
, Poot, Raymond A
, Gagliardi, Alessia
, Demmers, Jeroen
, Nicolis, Silvia K
, Favaro, Rebecca
, Mullin, Nicholas P
, Felker, Anastasia
, Bezstarosti, Karel
, Colby, Douglas
in
Animals
/ Cell differentiation
/ Cell Proliferation
/ Colony-Forming Units Assay
/ Deoxyribonucleic acid
/ DNA
/ DNA-independent interaction
/ EMBO11
/ EMBO37
/ Embryonic Stem Cells - metabolism
/ Embryonic Stem Cells - physiology
/ Homeodomain Proteins - metabolism
/ hydrophobic stacking
/ Immunoblotting
/ Immunoprecipitation
/ Mice
/ Molecular biology
/ Mutation
/ Nanog Homeobox Protein
/ Plasmids - genetics
/ pluripotency
/ Protein Interaction Domains and Motifs - genetics
/ Protein Interaction Mapping
/ protein interactome
/ Proteins
/ SELEX
/ SELEX Aptamer Technique
/ Signal transduction
/ SOXB1 Transcription Factors - metabolism
/ Stem cells
/ Tryptophan - metabolism
/ Tyrosine - metabolism
2013
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A direct physical interaction between Nanog and Sox2 regulates embryonic stem cell self-renewal
Journal Article
A direct physical interaction between Nanog and Sox2 regulates embryonic stem cell self-renewal
2013
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Overview
Embryonic stem (ES) cell self‐renewal efficiency is determined by the Nanog protein level. However, the protein partners of Nanog that function to direct self‐renewal are unclear. Here, we identify a Nanog interactome of over 130 proteins including transcription factors, chromatin modifying complexes, phosphorylation and ubiquitination enzymes, basal transcriptional machinery members, and RNA processing factors. Sox2 was identified as a robust interacting partner of Nanog. The purified Nanog–Sox2 complex identified a DNA recognition sequence present in multiple overlapping Nanog/Sox2 ChIP‐Seq data sets. The Nanog tryptophan repeat region is necessary and sufficient for interaction with Sox2, with tryptophan residues required. In Sox2, tyrosine to alanine mutations within a triple‐repeat motif (S X T/S Y) abrogates the Nanog–Sox2 interaction, alters expression of genes associated with the Nanog‐Sox2 cognate sequence, and reduces the ability of Sox2 to rescue ES cell differentiation induced by endogenous
Sox2
deletion. Substitution of the tyrosines with phenylalanine rescues both the Sox2–Nanog interaction and efficient self‐renewal. These results suggest that aromatic stacking of Nanog tryptophans and Sox2 tyrosines mediates an interaction central to ES cell self‐renewal.
This paper features a comprehensive proteomic view on the Nanog interactome. Further, it molecularly and functionally defines the intimate interplay of Nanog with another pluripotency determinant Sox2.
Publisher
John Wiley & Sons, Ltd,Nature Publishing Group UK,Springer Nature B.V,European Molecular Biology Organization
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