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Updated: Aug 21, 2026

In Vitro Selection of Engineered Transcriptional Repressors for Targeted Epigenetic Silencing
Published on: May 5, 2023
Epigenetic silencing mediated by CpG island methylation: potential as a therapeutic target and as a biomarker
Jens M Teodoridis1, Gordon Strathdee, Robert Brown
1Centre for Oncology and Applied Pharmacology, CRUK Beatson Laboratories, Glasgow University, Garscube Estate, Switchback Road, Glasgow G61 1BD, UK.
Abstract:
Many genes become transcriptionally silenced during the development of cancer. As well as affecting disease progression, gene silencing has the potential to influence drug resistance and clinical outcome following therapy. In addition to silencing due to gene mutations, covalent epigenetic modifications such as DNA hypermethylation and histone post-translational modifications are associated with transcriptional inactivation of many genes and are an important early event during carcinogenesis and tumour development. Aberrant methylation of CpG islands in promoters is associated with transcriptional inactivation of genes involved in all aspects of tumour development. Genes involved in key DNA damage response pathways, such as cell cycle control, apoptosis signalling and DNA repair, can frequently become methylated and epigenetically silenced in tumours. This may lead to differences in intrinsic sensitivity of tumours to chemotherapy, depending on the specific function of the gene inactivated. Furthermore, it is proposed that chemotherapy itself can exert a selective pressure on epigenetically silenced drug sensitivity genes present in subpopulations of cells, leading to acquired chemoresistance. Since the DNA sequence of epigenetically inactivated genes are not mutated but rather subject to reversible modifications via DNA methyltransferases (DNMTs) or histone modification, it is possible to reverse silencing using small molecule inhibitors. Such compounds show anti-tumour activity and can increase the sensitivity of drug resistant preclinical tumour models. Clinical trials of epigenetic therapies are now underway. Epigenetic profiling, using DNA methylation and histone analysis, will provide guidance on optimisation of these therapies with conventional chemotherapy and will help identify patient populations who may particularly benefit from such approaches.
Insights
Gene silencing through epigenetic changes, like DNA methylation, drives cancer development and drug resistance. Reversing these epigenetic modifications with small molecules offers a promising therapeutic strategy for cancer treatment.
Area of Science:
- Oncology
- Epigenetics
- Molecular Biology
Background:
- Gene silencing is a hallmark of cancer development, impacting disease progression and therapeutic outcomes.
- Epigenetic modifications, including DNA hypermethylation and histone alterations, cause transcriptional inactivation of genes crucial for tumor suppression.
- Silenced genes in DNA damage response pathways can influence a tumor's intrinsic sensitivity to chemotherapy.
Purpose of the Study:
- To investigate the role of epigenetic gene silencing in cancer development and drug resistance.
- To explore the potential of reversing epigenetic silencing as a therapeutic strategy.
- To highlight the importance of epigenetic profiling for personalized cancer therapy.
Main Methods:
- Analysis of gene silencing mechanisms, focusing on DNA methylation and histone modifications.
- Evaluation of small molecule inhibitors targeting epigenetic modifications in preclinical cancer models.
- Review of current clinical trials for epigenetic therapies.
Main Results:
- Epigenetic silencing of key genes, particularly in DNA damage response pathways, is prevalent in tumors.
- Reversible epigenetic modifications offer a target for therapeutic intervention.
- Epigenetic therapies demonstrate anti-tumor activity and can overcome chemoresistance in preclinical models.
Conclusions:
- Epigenetic gene silencing is a significant driver of cancer and chemoresistance.
- Targeting epigenetic modifications with small molecule inhibitors is a viable therapeutic approach.
- Epigenetic profiling will be crucial for optimizing combination therapies and identifying patient subgroups for epigenetic treatments.
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