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Oct4GiP Reporter Assay to Study Genes that Regulate Mouse Embryonic Stem Cell Maintenance and Self-renewal
Published on: May 30, 2012
Sox2 controls neural stem cell self-renewal through a Fos-centered gene regulatory network
Miriam Pagin1, Mattias Pernebrink2,3, Simone Giubbolini1
1Department of Biotechnology and Biosciences, University of Milano-Bicocca, Milan, Italy.
Abstract:
The Sox2 transcription factor is necessary for the long-term self-renewal of neural stem cells (NSCs). Its mechanism of action is still poorly defined. To identify molecules regulated by Sox2, and acting in mouse NSC maintenance, we transduced, into Sox2-deleted NSC, genes whose expression is strongly downregulated following Sox2 loss (Fos, Jun, Egr2), individually or in combination. Fos alone rescued long-term proliferation, as shown by in vitro cell growth and clonal analysis. Furthermore, pharmacological inhibition by T-5224 of FOS/JUN AP1 complex binding to its targets decreased cell proliferation and expression of the putative target Suppressor of cytokine signaling 3 (Socs3). Additionally, Fos requirement for efficient long-term proliferation was demonstrated by the reduction of NSC clones capable of long-term expansion following CRISPR/Cas9-mediated Fos inactivation. Previous work showed that the Socs3 gene is strongly downregulated following Sox2 deletion, and its re-expression by lentiviral transduction rescues long-term NSC proliferation. Fos appears to be an upstream regulator of Socs3, possibly together with Jun and Egr2; indeed, Sox2 re-expression in Sox2-deleted NSC progressively activates both Fos and Socs3 expression; in turn, Fos transduction activates Socs3 expression. Based on available SOX2 ChIPseq and ChIA-PET data, we propose a model whereby Sox2 is a direct activator of both Socs3 and Fos, as well as possibly Jun and Egr2; furthermore, we provide direct evidence for FOS and JUN binding on Socs3 promoter, suggesting direct transcriptional regulation. These results provide the basis for developing a model of a network of interactions, regulating critical effectors of NSC proliferation and long-term maintenance.
Insights
Sox2 is crucial for neural stem cell (NSC) self-renewal. The transcription factor Fos, regulated by Sox2, is essential for NSC proliferation and maintains Suppressor of cytokine signaling 3 (Socs3) expression.
Area of Science:
- Stem cell biology
- Molecular neuroscience
- Gene regulation
Background:
- Sox2 transcription factor is vital for neural stem cell (NSC) long-term self-renewal.
- The precise molecular mechanisms underlying Sox2's function in NSC maintenance remain unclear.
Purpose of the Study:
- To identify molecules regulated by Sox2 that are involved in mouse NSC maintenance.
- To elucidate the regulatory network controlling NSC proliferation and self-renewal.
Main Methods:
- Transduction of Sox2-deleted NSCs with downregulated genes (Fos, Jun, Egr2).
- Pharmacological inhibition of FOS/JUN AP1 complex using T-5224.
- CRISPR/Cas9-mediated Fos inactivation.
- Analysis of gene expression (Socs3) and cell proliferation assays.
- Utilizing SOX2 ChIP-seq and ChIA-PET data.
Main Results:
- Fos expression alone rescued long-term NSC proliferation.
- Inhibition of FOS/JUN AP1 complex decreased proliferation and Socs3 expression.
- Fos inactivation reduced the number of self-renewing NSC clones.
- Sox2 directly activates Fos and Socs3 expression; Fos and Jun bind to the Socs3 promoter.
Conclusions:
- Fos acts as an upstream regulator of Socs3, potentially with Jun and Egr2, in NSC maintenance.
- Sox2 directly regulates both Socs3 and Fos, contributing to a regulatory network for NSC proliferation.
- These findings establish a model for the network interactions governing NSC self-renewal.
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