Epigenome engineering in cancer: fairytale or a realistic path to the clinic?
Fahimeh Falahi1, Agustin Sgro1, Pilar Blancafort1
1Cancer Epigenetics Group, Harry Perkins Institute of Medical Research, School of Anatomy, Physiology and Human Biology, The University of Western Australia , Perth, WA , Australia.
Abstract:
Epigenetic modifications such as histone post-transcriptional modifications, DNA methylation, and non-protein-coding RNAs organize the DNA in the nucleus of eukaryotic cells and are critical for the spatio-temporal regulation of gene expression. These epigenetic modifications are reversible and precisely regulated by epigenetic enzymes. In addition to genetic mutations, epigenetic modifications are highly disrupted in cancer relative to normal tissues. Many epigenetic alterations (epi-mutations) are associated with aberrations in the expression and/or activity of epigenetic enzymes. Thus, epigenetic regulators have emerged as prime targets for cancer therapy. Currently, several inhibitors of epigenetic enzymes (epi-drugs) have been approved for use in the clinic to treat cancer patients with hematological malignancies. However, one potential disadvantage of epi-drugs is their lack of locus-selective specificity, which may result in the over-expression of undesirable parts of the genome. The emerging and rapidly growing field of epigenome engineering has opened new grounds for improving epigenetic therapy in view of reducing the genome-wide "off-target" effects of the treatment. In the current review, we will first describe the language of epigenetic modifications and their involvement in cancer. Next, we will overview the current strategies for engineering of artificial DNA-binding domains in order to manipulate and ultimately normalize the aberrant landscape of the cancer epigenome (epigenome engineering). Lastly, the potential clinical applications of these emerging genome-engineering approaches will be discussed.
Insights
Epigenetic modifications regulate gene expression but are disrupted in cancer. Epigenome engineering offers a promising approach to precisely target cancer epigenetics, potentially reducing side effects of current therapies.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Biology
Background:
- Epigenetic modifications (histone post-transcriptional modifications, DNA methylation, non-coding RNAs) control gene expression in eukaryotes.
- Epigenetic regulators are crucial for normal cellular function but are frequently disrupted in cancer, leading to aberrant gene expression.
- Current epigenetic drugs (epi-drugs) show promise but lack locus specificity, potentially causing genome-wide off-target effects.
Purpose of the Study:
- To review the role of epigenetic modifications in cancer.
- To overview strategies for epigenome engineering using artificial DNA-binding domains.
- To discuss the clinical potential of epigenome engineering for cancer therapy.
Main Methods:
- Review of current literature on epigenetic modifications and cancer.
- Description of epigenome engineering strategies, including artificial DNA-binding domains.
- Discussion of clinical applications and future directions.
Main Results:
- Epigenetic alterations (epi-mutations) are common in cancer and linked to epigenetic enzyme dysregulation.
- Epigenome engineering aims to precisely manipulate the cancer epigenome, correcting aberrant epigenetic landscapes.
- Artificial DNA-binding domains offer a route to targeted epigenetic modification.
Conclusions:
- Epigenetic regulators are key therapeutic targets in cancer.
- Epigenome engineering presents a novel strategy to overcome the limitations of current epi-drugs.
- Targeted epigenome manipulation holds significant potential for future cancer treatments with reduced off-target effects.
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