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Histone modifying and chromatin remodelling enzymes in cancer and dysplastic syndromes
1MRC Molecular Haematology Unit, Weatherall Institute of Molecular Medicine, John Radcliffe Hospital, Oxford OX3 9DS, UK. richard.gibbons@imm.ox.ac.uk
Abstract:
Inactivation of tumour suppressor genes is central to the development of cancer. Although this inactivation was once considered to be secondary to intragenic mutations, it is now clear that silencing of these genes often occurs by epigenetic means. Hypermethylation of CpG islands associated with the tumour suppressor genes was the first manifestation of this phenomenon to be described. It is apparent, however, that this is one of a host of chromatin modifications which characterize gene silencing. Although we know little about what determines which loci are affected, our understanding of the nature of the epigenetic marks and how they are established has blossomed. There is no compelling evidence that cancer ever develops by purely epigenetic means, but it is apparent that perturbations in the apparatus which establish the epigenome may contribute to the development of cancer. This review will focus on the role of two classes of chromatin remodelling enzymes, those that alter histones by the addition or removal of acetyl and methyl groups and those of the SWI/SNF family of proteins that change the topology of the nucleosome and its DNA strand via the hydrolysis of ATP, and we shall examine the consequence of mutations in, or mis-expression of, these factors. In some cases, mutations in these factors appear to play a direct role in cancer development. However, their general role as important intermediaries involved in regulating gene expression makes them attractive therapeutic targets. In exciting developments, it has been shown that inhibition of these factors leads to the reversal of tumour suppressor gene silencing and the inhibition of cancer cell growth.
Insights
Epigenetic silencing of tumor suppressor genes, through chromatin modifications, contributes to cancer development. Inhibiting chromatin remodeling enzymes can reverse this silencing and inhibit cancer cell growth.
Area of Science:
- Oncology
- Epigenetics
- Molecular Biology
Background:
- Tumor suppressor gene inactivation is crucial in cancer development.
- Epigenetic mechanisms, particularly DNA methylation and chromatin modifications, are key to gene silencing.
- Perturbations in epigenome regulation can contribute to cancer initiation and progression.
Purpose of the Study:
- To review the role of chromatin remodeling enzymes in epigenetic gene silencing.
- To examine the consequences of mutations or mis-expression of these enzymes in cancer.
- To highlight the therapeutic potential of targeting these enzymes.
Main Methods:
- Focus on histone-modifying enzymes (acetylation, methylation) and SWI/SNF family proteins.
- Review of literature on epigenetic marks and their establishment.
- Analysis of mutations and mis-expression of chromatin remodelers in cancer.
Main Results:
- Chromatin modifications, including DNA methylation, are central to tumor suppressor gene silencing.
- Mutations or mis-expression of chromatin remodeling enzymes can directly contribute to cancer development.
- Inhibition of these enzymes has shown promise in reversing gene silencing and inhibiting cancer cell growth.
Conclusions:
- Epigenetic dysregulation plays a significant role in cancer, though not typically as the sole cause.
- Chromatin remodeling enzymes are critical regulators of gene expression and are implicated in cancer.
- Targeting these enzymes represents a promising therapeutic strategy for cancer treatment.
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