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Yeast As a Chassis for Developing Functional Assays to Study Human P53
Published on: August 4, 2019
Oxidation Chemistry of DNA and p53 Tumor Suppressor Gene
Di Jiang1, James F Rusling1,2,3,4
1Department of Chemistry University of Connecticut Storrs CT 06269 United States.
Abstract:
The chemistry of DNA and its repair selectivity control the influence of genomic oxidative stress on the development of serious disorders such as cancer and heart diseases. DNA is oxidized by endogenous reactive oxygen species (ROS) in vivo or in vitro as a result of high energy radiation, non-radiative metabolic processes, and other consequences of oxidative stress. Some oxidations of DNA and tumor suppressor gene p53 are thought to be mutagenic when not repaired. For example, site-specific oxidations of p53 tumor suppressor gene may lead to cancer-related mutations at the oxidation site codon. This review summarizes the research on the primary products of the most easily oxidized nucleobase guanine (G) when different oxidation methods are used. Guanine is by far the most oxidized DNA base. The primary initial oxidation product of guanine for most, but not all, pathways is 8-oxoguanine (8-oxoG). With an oxidation potential much lower than G, 8-oxoG is readily susceptible to further oxidation, and the products often depend on the oxidants. Specific products may control the types of subsequent mutations, but mediated by gene repair success. Site-specific oxidations of p53 tumor suppressor gene have been reported at known mutation hot spots, and the codon sites also depend on the type of oxidants. Modern methodologies using LC-MS/MS for codon specific detection and identification of oxidation sites are summarized. Future work aimed at understanding DNA oxidation in nucleosomes and interactions between DNA damage and repair is needed to provide a better picture of how cancer-related mutations arise.
Insights
Genomic oxidative stress damages DNA, particularly guanine, forming 8-oxoguanine. Unrepaired DNA oxidation, especially in the p53 gene, can lead to mutations driving cancer and heart disease development.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- Genomic oxidative stress, caused by reactive oxygen species (ROS), influences serious disorders like cancer and heart disease.
- Oxidation of DNA and tumor suppressor gene p53 can be mutagenic if not repaired, potentially causing cancer-related mutations.
Purpose of the Study:
- To review the primary oxidation products of guanine, the most easily oxidized DNA base.
- To summarize research on site-specific oxidations of the p53 tumor suppressor gene and their link to mutations.
- To highlight modern methodologies for detecting DNA oxidation sites.
Main Methods:
- Literature review focusing on DNA oxidation chemistry and repair.
- Analysis of research on guanine oxidation products, particularly 8-oxoguanine (8-oxoG).
- Summary of studies using liquid chromatography-tandem mass spectrometry (LC-MS/MS) for site-specific oxidation detection.
Main Results:
- Guanine is the most frequently oxidized DNA base, with 8-oxoguanine being a primary initial product.
- Further oxidation of 8-oxoG yields various products dependent on the oxidant, influencing subsequent mutations.
- Site-specific p53 gene oxidations occur at mutation hotspots, with locations varying by oxidant type.
Conclusions:
- Understanding DNA oxidation products and repair is crucial for comprehending cancer-related mutations.
- Further research into DNA oxidation within nucleosomes and damage-repair interactions is needed.
- Targeted detection methods like LC-MS/MS are advancing the study of DNA damage and mutation origins.
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