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Identifying the Effects of BRCA1 Mutations on Homologous Recombination using Cells that Express Endogenous Wild-type BRCA1
Published on: February 17, 2011
Current and upcoming approaches to exploit the reversibility of epigenetic mutations in breast cancer
Abstract:
DNA methylation and histone modifications are important epigenetic modifications associated with gene (dys)regulation. The epigenetic modifications are balanced by epigenetic enzymes, so-called writers and erasers, such as DNA (de)methylases and histone (de)acetylases. Aberrant epigenetic alterations have been associated with various diseases, including breast cancer. Since aberrant epigenetic modifications are potentially reversible, they might represent targets for breast cancer therapy. Indeed, several drugs have been designed to inhibit epigenetic enzymes (epi-drugs), thereby reversing epigenetic modifications. US Food and Drug Administration approval has been obtained for some epi-drugs for hematological malignancies. However, these drugs have had very modest anti-tumor efficacy in phase I and II clinical trials in breast cancer patients as monotherapy. Therefore, current clinical trials focus on the combination of epi-drugs with other therapies to enhance or restore the sensitivity to such therapies. This approach has yielded some promising results in early phase II trials. The disadvantage of epi-drugs, however, is genome-wide effects, which may cause unwanted upregulation of, for example, pro-metastatic genes. Development of gene-targeted epigenetic modifications (epigenetic editing) in breast cancer can provide a novel approach to prevent such unwanted events. In this context, identification of crucial epigenetic modifications regulating key genes in breast cancer is of critical importance. In this review, we first describe aberrant DNA methylation and histone modifications as two important classes of epigenetic mutations in breast cancer. Then we focus on the preclinical and clinical epigenetic-based therapies currently being explored for breast cancer. Finally, we describe epigenetic editing as a promising new approach for possible applications towards more targeted breast cancer treatment.
Insights
Epigenetic modifications influence gene regulation and are implicated in breast cancer. Epigenetic drugs show promise, but targeted epigenetic editing offers a novel approach for more precise breast cancer treatment.
Area of Science:
- Epigenetics and Molecular Biology
- Cancer Research
Background:
- Epigenetic modifications, including DNA methylation and histone modifications, regulate gene expression and are crucial in diseases like breast cancer.
- Aberrant epigenetic alterations are reversible and represent potential therapeutic targets for breast cancer.
- Current epigenetic drugs (epi-drugs) show limited efficacy as monotherapy in breast cancer, prompting combination strategies.
Purpose of the Study:
- To review aberrant DNA methylation and histone modifications in breast cancer.
- To explore preclinical and clinical epigenetic-based therapies for breast cancer.
- To introduce epigenetic editing as a novel, targeted therapeutic strategy.
Main Methods:
- Literature review of epigenetic modifications in breast cancer.
- Analysis of current epigenetic-based therapies and clinical trials.
- Discussion of epigenetic editing as a future therapeutic modality.
Main Results:
- Epigenetic alterations are key drivers in breast cancer development and progression.
- Epi-drugs have shown modest efficacy alone but promising results in combination therapies.
- Genome-wide effects of current epi-drugs can lead to undesirable gene upregulation.
Conclusions:
- Epigenetic modifications are significant in breast cancer and offer therapeutic opportunities.
- Combination therapies involving epi-drugs show potential but require careful management of side effects.
- Epigenetic editing presents a promising avenue for targeted breast cancer treatment, minimizing off-target effects.
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