The genomics of oxidative DNA damage, repair, and resulting mutagenesis
1St. Anna Children's Cancer Research Institute, Zimmermannplatz 10, 1090 Vienna, Austria.
Abstract:
Reactive oxygen species are a constant threat to DNA as they modify bases with the risk of disrupting genome function, inducing genome instability and mutation. Such risks are due to primary oxidative DNA damage and also mediated by the repair process. This leads to a delicate decision process for the cell as to whether to repair a damaged base at a specific genomic location or better leave it unrepaired. Persistent DNA damage can disrupt genome function, but on the other hand it can also contribute to gene regulation by serving as an epigenetic mark. When such processes are out of balance, pathophysiological conditions could get accelerated, because oxidative DNA damage and resulting mutagenic processes are tightly linked to ageing, inflammation, and the development of multiple age-related diseases, such as cancer and neurodegenerative disorders. Recent technological advancements and novel data analysis strategies have revealed that oxidative DNA damage, its repair, and related mutations distribute heterogeneously over the genome at multiple levels of resolution. The involved mechanisms act in the context of genome sequence, in interaction with genome function and chromatin. This review addresses what we currently know about the genome distribution of oxidative DNA damage, repair intermediates, and mutations. It will specifically focus on the various methodologies to measure oxidative DNA damage distribution and discuss the mechanistic conclusions derived from the different approaches. It will also address the consequences of oxidative DNA damage, specifically how it gives rise to mutations, genome instability, and how it can act as an epigenetic mark.
Insights
Reactive oxygen species cause DNA damage, leading to mutations and genome instability. Cells must balance repair with potential epigenetic roles, as this damage links to aging and diseases like cancer.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- Reactive oxygen species (ROS) pose a constant threat to DNA integrity, causing oxidative DNA damage.
- This damage can disrupt genome function, induce mutations, and contribute to aging and diseases like cancer.
Purpose of the Study:
- To review the current understanding of oxidative DNA damage, repair intermediates, and mutation distribution across the genome.
- To explore methodologies for measuring oxidative DNA damage distribution and discuss mechanistic insights.
- To examine the consequences of oxidative DNA damage, including its role in mutagenesis, genome instability, and epigenetics.
Main Methods:
- Review of existing literature and methodologies for measuring oxidative DNA damage distribution.
- Analysis of data on genome sequence, function, and chromatin interactions.
- Discussion of mechanistic conclusions derived from various experimental approaches.
Main Results:
- Oxidative DNA damage, repair, and mutations are heterogeneously distributed throughout the genome.
- Mechanisms involve genome sequence, function, and chromatin context.
- Persistent DNA damage can disrupt genome function or act as an epigenetic mark.
Conclusions:
- The distribution and repair of oxidative DNA damage are complex processes influenced by genomic context.
- Imbalances in oxidative DNA damage and repair are linked to aging and age-related diseases.
- Understanding these distributions is crucial for comprehending genome stability, mutation processes, and epigenetic regulation.
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