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Updated: Aug 11, 2025

Studying Triple Negative Breast Cancer Using Orthotopic Breast Cancer Model
Published on: March 20, 2020
PIC recruitment by synthetic reader-actuators to polycomb-silenced genes blocks triple-negative breast cancer
Natecia L Williams1, Lauren Hong2, Maya Jaffe2
1Wallace H. Coulter Department of Biomedical Engineering, Emory University, Atlanta, GA 30312 USA.
Abstract:
Scientists have used small molecule inhibitors and genetic knockdown of gene-silencing polycomb repressive complexes (PRC1/2) to determine if restoring the expression of tumor suppressor genes can block proliferation and invasion of cancer cells. A major limitation of this approach is that inhibitors can not restore key transcriptional activators that are mutated in many cancers, such as p53 and members of the BRAF SWI/SNF complex. Furthermore, small molecule inhibitors can alter the activity of, rather than inhibit, the polycomb enzyme EZH2. While chromatin has been shown to play a major role in gene regulation in cancer, poor clinical results for polycomb chromatin-targeting therapies for diseases like triple-negative breast cancer (TNBC) could discourage further development of this emerging avenue for treatment. To overcome the limitations of inhibiting polycomb to study epigenetic regulation, we developed an engineered chromatin protein to manipulate transcription. The synthetic reader-actuator (SRA) is a fusion protein that directly binds a target chromatin modification and regulates gene expression. Here, we report the activity of an SRA built from polycomb chromodomain and VP64 modules that bind H3K27me3 and subunits of the Mediator complex, respectively. In SRA-expressing BT-549 cells, we identified 122 upregulated differentially expressed genes (UpDEGs, ≥ 2-fold activation, adjusted p < 0.05). On-target epigenetic regulation was determined by identifying UpDEGs at H3K27me3-enriched, closed chromatin. SRA activity induced activation of genes involved in cell death, cell cycle arrest, and the inhibition of migration and invasion. SRA-expressing BT-549 cells showed reduced spheroid size in Matrigel over time, loss of invasion, and activation of apoptosis. These results show that Mediator-recruiting regulators broadly targeted to silenced chromatin activate silenced tumor suppressor genes and stimulate anti-cancer phenotypes. Therefore further development of gene-activating epigenetic therapies might benefit TNBC patients.
Insights
Scientists developed a synthetic reader-actuator (SRA) to activate silenced tumor suppressor genes. This epigenetic therapy approach shows promise for treating triple-negative breast cancer by inhibiting cancer cell proliferation and invasion.
Area of Science:
- Epigenetics
- Cancer Biology
- Molecular Therapeutics
Background:
- Polycomb repressive complexes (PRC1/2) regulate gene expression in cancer, but inhibiting them has limitations.
- Small molecule inhibitors can have off-target effects and fail to restore mutated transcriptional activators.
- Poor clinical outcomes for chromatin-targeting therapies in triple-negative breast cancer (TNBC) necessitate novel approaches.
Approach:
- Developed a synthetic reader-actuator (SRA), an engineered fusion protein, to directly manipulate transcription.
- The SRA targets H3K27me3 modifications and recruits Mediator complex subunits to activate gene expression.
- Utilized SRA in BT-549 cells to identify upregulated differentially expressed genes (UpDEGs) and assess epigenetic regulation.
Key Points:
- Identified 122 upregulated genes (UpDEGs) upon SRA expression, with on-target regulation at H3K27me3-enriched chromatin.
- SRA activity induced genes involved in cell death, cell cycle arrest, and inhibition of migration/invasion.
- SRA-expressing cells exhibited reduced spheroid size, loss of invasion, and increased apoptosis.
Conclusions:
- Mediator-recruiting regulators targeted to silenced chromatin can activate tumor suppressor genes.
- This gene-activating epigenetic therapy stimulates anti-cancer phenotypes.
- Further development of SRA-based therapies could benefit TNBC patients.

