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Published on: August 12, 2015
Targeted silencing of the oncogenic transcription factor SOX2 in breast cancer
Sabine Stolzenburg1, Marianne G Rots, Adriana S Beltran
1Epigenetic Editing, Department of Pathology and Medical Biology, University Medical Center Groningen, University of Groningen, Hanzeplein 1, 9713 GZ Groningen, The Netherlands.
Abstract:
The transcription factor (TF) SOX2 is essential for the maintenance of pluripotency and self-renewal in embryonic stem cells. In addition to its normal stem cell function, SOX2 over-expression is associated with cancer development. The ability to selectively target this and other oncogenic TFs in cells, however, remains a significant challenge due to the 'undruggable' characteristics of these molecules. Here, we employ a zinc finger (ZF)-based artificial TF (ATF) approach to selectively suppress SOX2 gene expression in cancer cells. We engineered four different proteins each composed of 6ZF arrays designed to bind 18 bp sites in the SOX2 promoter and enhancer region, which controls SOX2 methylation. The 6ZF domains were linked to the Kruppel Associated Box (SKD) repressor domain. Three engineered proteins were able to bind their endogenous target sites and effectively suppress SOX2 expression (up to 95% repression efficiencies) in breast cancer cells. Targeted down-regulation of SOX2 expression resulted in decreased tumor cell proliferation and colony formation in these cells. Furthermore, induced expression of an ATF in a mouse model inhibited breast cancer cell growth. Collectively, these findings demonstrate the effectiveness and therapeutic potential of engineered ATFs to mediate potent and long-lasting down-regulation of oncogenic TF expression in cancer cells.
Insights
Researchers developed artificial transcription factors (ATFs) to target SOX2, an oncogenic protein. This approach successfully suppressed SOX2 expression in cancer cells, inhibiting tumor growth and showing therapeutic potential.
Area of Science:
- Molecular Biology
- Cancer Research
- Gene Regulation
Background:
- SOX2 (Sry-related HMG-box gene 2) is crucial for embryonic stem cell pluripotency.
- SOX2 overexpression is linked to cancer development, posing a therapeutic challenge due to its 'undruggable' nature.
Purpose of the Study:
- To engineer and validate artificial transcription factors (ATFs) for selective SOX2 gene suppression in cancer cells.
- To assess the therapeutic efficacy of SOX2 down-regulation in preclinical cancer models.
Main Methods:
- Engineered zinc finger (ZF)-based ATFs comprising 6ZF arrays linked to a repressor domain (SKD).
- Designed ATFs to target specific binding sites in the SOX2 promoter and enhancer regions.
- Tested ATF efficacy in breast cancer cells and a mouse model.
Main Results:
- Three engineered ATFs successfully bound endogenous target sites and repressed SOX2 expression by up to 95%.
- Targeted SOX2 down-regulation reduced breast cancer cell proliferation and colony formation.
- In vivo studies showed that ATF induction inhibited breast cancer cell growth in mice.
Conclusions:
- Engineered ATFs offer a potent strategy for targeted, long-lasting down-regulation of oncogenic transcription factors like SOX2.
- This approach demonstrates significant therapeutic potential for treating cancers driven by SOX2 overexpression.
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