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Immunostaining for DNA Modifications: Computational Analysis of Confocal Images
Published on: September 7, 2017
DNA hypermethylation in lung cancer is targeted at differentiation-associated genes
E Helman1, K Naxerova, I S Kohane
1Harvard-MIT Division of Health Sciences and Technology, Bioinformatics & Integrative Genomics, Cambridge, MA 02115, USA.
Abstract:
Aberrant DNA hypermethylation of tumor suppressor genes is thought to be an early event in tumorigenesis. Many studies have reported the methylation status of individual genes with known involvement in cancer, but an unbiased assessment of the biological function of the collective of hypermethylated genes has not been conducted so far. Based on the observation that a variety of human cancers recapitulate developmental gene expression patterns (that is activate genes normally expressed in early development and suppress late developmental genes), we hypothesized that the silencing of differentiation-associated genes in cancer could be attributed in part to DNA hypermethylation. To this end, we investigated the developmental expression patterns of genes with hypermethylated CpG islands in primary human lung carcinomas and lung cancer cell lines. We found that DNA hypermethylation primarily affects genes that are expressed in late stages of murine lung development. Gene ontology characterization of these genes shows that they are almost exclusively involved in morphogenetic differentiation processes. Our results indicate that DNA hypermethylation in cancer functions as a selective silencing mechanism of genes that are required for the maintenance of a differentiated state. The process of cellular de-differentiation that is evident on both the microscopic and transcriptional level in cancer might at least partly be mediated by these epigenetic events. Our observations provide a mechanistic explanation for induction of differentiation upon treatment with DNA methyltransferase inhibitors.
Insights
DNA hypermethylation in cancer silences differentiation genes. This epigenetic event contributes to cellular de-differentiation, explaining how cancer cells lose specialized functions and potentially respond to demethylating treatments.
Area of Science:
- Molecular Biology
- Cancer Research
- Epigenetics
Background:
- Aberrant DNA hypermethylation of tumor suppressor genes is a known early event in tumorigenesis.
- Previous studies focused on individual genes, lacking an unbiased assessment of hypermethylated gene functions.
- Cancer cells often exhibit altered gene expression, mimicking early developmental patterns.
Purpose of the Study:
- To investigate the biological function of hypermethylated genes in cancer.
- To test the hypothesis that DNA hypermethylation silences differentiation-associated genes in cancer.
- To examine the role of DNA hypermethylation in cellular de-differentiation during tumorigenesis.
Main Methods:
- Analysis of DNA methylation patterns in human lung carcinomas and cell lines.
- Investigation of developmental expression patterns of hypermethylated genes.
- Gene ontology characterization of hypermethylated genes.
Main Results:
- DNA hypermethylation predominantly affects genes expressed late in murine lung development.
- Hypermethylated genes are primarily involved in morphogenetic differentiation processes.
- DNA hypermethylation selectively silences genes essential for maintaining a differentiated state.
Conclusions:
- DNA hypermethylation in cancer acts as a mechanism to silence differentiation-associated genes.
- Epigenetic silencing of these genes contributes to cellular de-differentiation observed in cancer.
- These findings offer a mechanistic explanation for differentiation induction by DNA methyltransferase inhibitors.
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