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Updated: Mar 11, 2026

In Vitro Selection of Engineered Transcriptional Repressors for Targeted Epigenetic Silencing
Published on: May 5, 2023
Transcriptional Selectivity of Epigenetic Therapy in Cancer
Takahiro Sato1, Matteo Cesaroni2, Woonbok Chung2
1Fels Institute for Cancer Research and Molecular Biology, Temple University, Philadelphia, Pennsylvania. tuf25541@temple.edu.
Abstract:
A central challenge in the development of epigenetic cancer therapy is the ability to direct selectivity in modulating gene expression for disease-selective efficacy. To address this issue, we characterized by RNA-seq, DNA methylation, and ChIP-seq analyses the epigenetic response of a set of colon, breast, and leukemia cancer cell lines to small-molecule inhibitors against DNA methyltransferases (DAC), histone deacetylases (Depsi), histone demethylases (KDM1A inhibitor S2101), and histone methylases (EHMT2 inhibitor UNC0638 and EZH2 inhibitor GSK343). We also characterized the effects of DAC as combined with the other compounds. Averaged over the cancer cell models used, we found that DAC affected 8.6% of the transcriptome and that 95.4% of the genes affected were upregulated. DAC preferentially regulated genes that were silenced in cancer and that were methylated at their promoters. In contrast, Depsi affected the expression of 30.4% of the transcriptome but showed little selectivity for gene upregulation or silenced genes. S2101, UNC0638, and GSK343 affected only 2% of the transcriptome, with UNC0638 and GSK343 preferentially targeting genes marked with H3K9me2 or H3K27me3, respectively. When combined with histone methylase inhibitors, the extent of gene upregulation by DAC was extended while still maintaining selectivity for DNA-methylated genes and silenced genes. However, the genes upregulated by combination treatment exhibited limited overlap, indicating the possibility of targeting distinct sets of genes based on different epigenetic therapy combinations. Overall, our results demonstrated that DNA methyltransferase inhibitors preferentially target cancer-relevant genes and can be combined with inhibitors targeting histone methylation for synergistic effects while still maintaining selectivity. Cancer Res; 77(2); 470-81. ©2016 AACR.
Insights
DNA methyltransferase inhibitors (DAC) selectively upregulate silenced cancer genes. Combining DAC with histone methylase inhibitors enhances this effect, offering targeted epigenetic cancer therapy options.
Area of Science:
- Epigenetics
- Cancer Biology
- Pharmacology
Background:
- Developing selective epigenetic cancer therapies is challenging.
- Targeting gene expression is key for disease-specific efficacy.
Purpose of the Study:
- To characterize the epigenetic response of cancer cell lines to various small-molecule inhibitors.
- To evaluate the selectivity and synergistic potential of combining DNA methyltransferase inhibitors with histone-modifying agents.
Main Methods:
- RNA-sequencing (RNA-seq)
- DNA methylation analysis
- Chromatin immunoprecipitation sequencing (ChIP-seq)
- Treatment of colon, breast, and leukemia cancer cell lines with inhibitors (DAC, Depsi, S2101, UNC0638, GSK343) and combinations.
Main Results:
- DNA methyltransferase inhibitors (DAC) upregulated 95.4% of affected genes, preferentially targeting silenced, promoter-methylated genes.
- Histone deacetylase inhibitors (Depsi) affected a larger portion of the transcriptome but lacked selectivity.
- Histone methylase inhibitors (UNC0638, GSK343) had minimal impact individually but showed specific targeting.
- Combination therapy with DAC and histone methylase inhibitors extended gene upregulation while maintaining selectivity for methylated and silenced genes.
Conclusions:
- DNA methyltransferase inhibitors demonstrate selectivity for cancer-relevant genes.
- Combination therapy with histone methylase inhibitors offers synergistic effects and maintains selectivity.
- Distinct gene sets can be targeted by varying epigenetic therapy combinations.
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