Related Experiment Video
Updated: Aug 15, 2026

Methylated DNA Immunoprecipitation
Published on: January 2, 2009
DNA methylation and the association between genetic and epigenetic changes: relation to carcinogenesis
1Environmental Toxicology Program, National Institute of Environmental Health Sciences, Research Triangle Park, NC 27709, USA.
Abstract:
This paper examines the relationship between DNA mutagenic lesions, DNA methylation and the involvement of these changes in the process of carcinogenesis. Many types of DNA damage (oxidative lesions, alkylation of bases, abasic sites, photodimers, etc.) interfere with the ability of mammalian cell DNA to be methylated at CpG dinucleotides by DNA-methyltransferases (DNA-MTases). This can result in altered patterns in the distribution of 5-methylcytosine (5MeC) residues at CpG sites. Methylation of DNA is an epigenetic change that by definition is heritable, can result in changes in chromatin structure, and is often accompanied by modified patterns of gene expression. The presence of 5MeC in DNA, as well as oxidative stress induced by the free radical nitric oxide, can interefere with the repair of alkylation damage, thereby increasing the level of potentially mutagenic lesions. CpG sites in DNA represent mutational hotspots, with both the presence of 5MeC in DNA and the catalytic activity of DNA-MTases being intrinsically mutagenic. The process of carcinogenesis has frequently been associated with an increased expression of DNA-MTase activity, accompanied by either hypermethylation or hypomethylation of target cell (progenitor tumor cell) DNA. In addition, there is evidence that overexpression of DNA-MTase activity could result in increased cytosine methylation at non-CpG sites. A variety of chemicals can alter the extent of DNA methylation in mammalian cells. These include inhibitors of topoisomerase II, as well as inhibitors of DNA synthesis, microtubule formation, histone deacetylation, transmethylation, etc. Genetic and epigenetic changes in DNA have a profound influence on one another and could play a major role in the process of carcinogenesis, by modulating both the extent and the pattern of gene expression.
Insights
DNA damage and methylation changes are linked to cancer. DNA lesions interfere with methylation, creating mutational hotspots and altering gene expression, driving carcinogenesis.
Area of Science:
- Epigenetics
- Molecular Biology
- Cancer Research
Background:
- DNA damage from various sources (oxidative, alkylation, etc.) can disrupt normal DNA methylation patterns.
- DNA methylation, an epigenetic modification, influences gene expression and chromatin structure.
- CpG sites are known mutational hotspots, and 5-methylcytosine (5MeC) presence can be mutagenic.
Purpose of the Study:
- To investigate the interplay between DNA mutagenic lesions, DNA methylation, and carcinogenesis.
- To understand how DNA damage affects DNA methyltransferases (DNA-MTases) activity and 5-methylcytosine (5MeC) distribution.
- To explore the role of altered DNA methylation patterns in cancer development.
Main Methods:
- Review of existing literature on DNA damage, methylation, and cancer.
- Analysis of how DNA lesions impact DNA-MTase activity and CpG methylation.
- Examination of the link between 5MeC, oxidative stress, and DNA repair inhibition.
Main Results:
- DNA damage interferes with mammalian DNA methylation at CpG sites by DNA-MTases, altering 5MeC distribution.
- 5MeC and nitric oxide-induced oxidative stress impair alkylation damage repair, increasing mutagenic lesions.
- Carcinogenesis is associated with altered DNA-MTase activity, leading to DNA hyper- or hypomethylation and potentially non-CpG methylation.
Conclusions:
- Genetic and epigenetic alterations, including DNA damage and methylation changes, are crucial in carcinogenesis.
- Altered DNA methylation patterns, driven by DNA damage and modified DNA-MTase activity, significantly influence gene expression and cancer progression.
- Understanding these interactions is key to unraveling the mechanisms of cancer development.
Related Concept Videos
Epigenetic Regulation
Inheritance of Chromatin Structures
Epigenetic Regulation
Cancer Prevention
Some...
Epigenetic Regulation
X-chromosome...
Mutagenicity and Carcinogenicity

