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Profiling of Estrogen-regulated MicroRNAs in Breast Cancer Cells
Published on: February 21, 2014
The synthetic histone-binding regulator protein PcTF activates interferon genes in breast cancer cells
Kimberly C Olney1, David B Nyer2, Daniel A Vargas2
1School of Life Sciences, Arizona State University, 427 E Tyler Mall, Tempe, 85287-4501, AZ, USA.
Background:
Mounting evidence from genome-wide studies of cancer shows that chromatin-mediated epigenetic silencing at large cohorts of genes is strongly linked to a poor prognosis. This mechanism is thought to prevent cell differentiation and enable evasion of the immune system. Drugging the cancer epigenome with small molecule inhibitors to release silenced genes from the repressed state has emerged as a powerful approach for cancer research and drug development. Targets of these inhibitors include chromatin-modifying enzymes that can acquire drug-resistant mutations. In order to directly target a generally conserved feature, elevated trimethyl-lysine 27 on histone H3 (H3K27me3), we developed the Polycomb-based Transcription Factor (PcTF), a fusion activator that targets methyl-histone marks via its N-terminal H3K27me3-binding motif, and co-regulates sets of silenced genes.
Results:
Here, we report transcriptome profiling analyses of PcTF-treated breast cancer model cell lines. We identified a set of 19 PcTF-upregulated genes, or PUGs, that were consistent across three distinct breast cancer cell lines. These genes are associated with the interferon response pathway.
Conclusions:
Our results demonstrate for the first time a chromatin-mediated interferon-related transcriptional response driven by an engineered fusion protein that physically links repressive histone marks with active transcription.
Insights
Engineered Polycomb-based Transcription Factor (PcTF) activates silenced genes in breast cancer cells. This epigenetic therapy induces an interferon response, offering a novel strategy for cancer treatment.
Area of Science:
- Cancer Epigenetics
- Molecular Biology
- Immunology
Background:
- Epigenetic silencing of genes in cancer is linked to poor prognosis and immune evasion.
- Targeting cancer epigenome with small molecule inhibitors is a promising therapeutic approach.
- Histone H3 trimethyl-lysine 27 (H3K27me3) is a key epigenetic mark associated with gene silencing.
Purpose of the Study:
- To develop a novel fusion protein, PcTF, to target H3K27me3 marks and reactivate silenced genes.
- To investigate the therapeutic potential of PcTF in breast cancer models.
Main Methods:
- Development of PcTF, a fusion activator targeting H3K27me3.
- Transcriptome profiling of PcTF-treated breast cancer cell lines.
- Identification of PcTF-upregulated genes (PUGs).
Main Results:
- PcTF treatment consistently upregulated 19 genes (PUGs) across three breast cancer cell lines.
- These PUGs are significantly associated with the interferon response pathway.
- Demonstrated a direct link between targeting repressive histone marks and active transcription.
Conclusions:
- PcTF induces a chromatin-mediated, interferon-related transcriptional response.
- This engineered fusion protein represents a novel strategy for epigenetic cancer therapy.
- Highlights the potential of targeting epigenetic marks for cancer treatment and immune system modulation.
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