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Updated: May 7, 2026

Oct4GiP Reporter Assay to Study Genes that Regulate Mouse Embryonic Stem Cell Maintenance and Self-renewal
Published on: May 30, 2012
Transcriptional reprogramming and chromatin remodeling accompanies Oct4 and Nanog silencing in mouse trophoblast
Timothy S Carey1, Inchul Choi, Catherine A Wilson
11 Developmental Epigenetics Laboratory, Department of Animal Science, Michigan State University , East Lansing, Michigan.
Abstract:
In mouse blastocysts, CDX2 plays a key role in silencing Oct4 and Nanog expression in the trophectoderm (TE) lineage. However, the underlying transcriptional and chromatin-based changes that are associated with CDX2-mediated repression are poorly understood. To address this, a Cdx2-inducible mouse embryonic stem (ES) cell line was utilized as a model system. Induction of Cdx2 expression resulted in a decrease in Oct4/Nanog expression, an increase in TE markers, and differentiation into trophoblast-like stem (TS-like) cells within 48 to 120 h. Consistent with the down-regulation of Oct4 and Nanog transcripts, a time-dependent increase in CDX2 binding and a decrease in RNA polymerase II (RNAPII) and OCT4 binding was observed within 48 h (P<0.05). To test whether transcriptionally active epigenetic marks were erased during differentiation, histone H3K9/14 acetylation and two of its epigenetic modifiers were evaluated. Accordingly, a significant decrease in histone H3K9/14 acetylation and loss of p300 and HDAC1 binding at the Oct4 and Nanog regulatory elements was observed by 48 h. Accompanying these changes, there was a significant increase in total histone H3 and a loss of chromatin accessibility at both the Oct4 and Nanog regulatory elements (P<0.05), indicative of chromatin remodeling. Lastly, DNA methylation analysis revealed that methylation did not occur at Oct4 and Nanog until 96 to 120 h after induction of CDX2. In conclusion, our results show that silencing of Oct4 and Nanog is facilitated by sequential changes in transcription factor binding, histone acetylation, chromatin remodeling, and DNA methylation at core regulatory elements.
Insights
CDX2 silences Oct4 and Nanog in trophectoderm development through sequential epigenetic changes. This involves altered transcription factor binding, histone modifications, chromatin remodeling, and DNA methylation for cell fate determination.
Area of Science:
- Developmental Biology
- Epigenetics
- Stem Cell Biology
Background:
- CDX2 is crucial for trophectoderm (TE) differentiation in mouse blastocysts.
- The precise molecular mechanisms of CDX2-mediated silencing of Oct4 and Nanog remain unclear.
Purpose of the Study:
- To investigate the transcriptional and chromatin-based events underlying CDX2-induced Oct4 and Nanog repression.
- To elucidate the role of epigenetic modifications in TE lineage specification.
Main Methods:
- Utilized a Cdx2-inducible mouse embryonic stem (ES) cell line.
- Monitored gene expression (Oct4, Nanog, TE markers), transcription factor binding (CDX2, OCT4, RNAPII), histone modifications (acetylation, p300, HDAC1), chromatin accessibility, and DNA methylation over time.
Main Results:
- CDX2 induction decreased Oct4/Nanog expression and increased TE markers, leading to trophoblast stem-like cell differentiation.
- Observed decreased Oct4/Nanog binding, reduced histone H3K9/14 acetylation, loss of p300/HDAC1, increased histone H3, and reduced chromatin accessibility at regulatory elements.
- DNA methylation of Oct4 and Nanog occurred late (96-120h) after CDX2 induction.
Conclusions:
- Oct4 and Nanog silencing during TE differentiation is a multi-step epigenetic process.
- Sequential events include altered transcription factor binding, histone acetylation changes, chromatin remodeling, and finally DNA methylation.
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