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Published on: September 7, 2017
Active DNA demethylation by DNA repair: Facts and uncertainties
David Schuermann1, Alain R Weber1, Primo Schär1
1Department of Biomedicine, University of Basel, Mattenstrasse 28, CH-4058 Basel, Switzerland.
Abstract:
Pathways that control and modulate DNA methylation patterning in mammalian cells were poorly understood for a long time, although their importance in establishing and maintaining cell type-specific gene expression was well recognized. The discovery of proteins capable of converting 5-methylcytosine (5mC) to putative substrates for DNA repair introduced a novel and exciting conceptual framework for the investigation and ultimate discovery of molecular mechanisms of DNA demethylation. Against the prevailing notion that DNA methylation is a static epigenetic mark, it turned out to be dynamic and distinct mechanisms appear to have evolved to effect global and locus-specific DNA demethylation. There is compelling evidence that DNA repair, in particular base excision repair, contributes significantly to the turnover of 5mC in cells. By actively demethylating DNA, DNA repair supports the developmental establishment as well as the maintenance of DNA methylation landscapes and gene expression patterns. Yet, while the biochemical pathways are relatively well-established and reviewed, the biological context, function and regulation of DNA repair-mediated active DNA demethylation remains uncertain. In this review, we will thus summarize and critically discuss the evidence that associates active DNA demethylation by DNA repair with specific functional contexts including the DNA methylation erasure in the early embryo, the control of pluripotency and cellular differentiation, the maintenance of cell identity, and the nuclear reprogramming.
Insights
DNA methylation is dynamic, not static. DNA repair pathways actively demethylate DNA, influencing gene expression, cell identity, and reprogramming, particularly in early development and differentiation.
Area of Science:
- Epigenetics
- Molecular Biology
- Genetics
Background:
- DNA methylation is crucial for cell-specific gene expression but its dynamic regulation was unclear.
- The discovery of proteins converting 5-methylcytosine (5mC) revealed active DNA demethylation pathways.
- DNA methylation was previously considered a static epigenetic mark.
Purpose of the Study:
- To review and discuss the role of DNA repair in active DNA demethylation.
- To explore the biological context, function, and regulation of DNA repair-mediated demethylation.
- To summarize evidence linking DNA repair to DNA methylation erasure, pluripotency, differentiation, cell identity, and reprogramming.
Main Methods:
- Literature review and critical discussion of existing evidence.
- Focus on biochemical pathways and their biological implications.
- Synthesis of findings related to DNA repair-mediated active DNA demethylation.
Main Results:
- DNA repair, especially base excision repair, significantly contributes to 5mC turnover.
- Active DNA demethylation by DNA repair is essential for establishing and maintaining DNA methylation patterns.
- Evidence links DNA repair-mediated demethylation to key biological processes.
Conclusions:
- DNA methylation is a dynamic process regulated by active demethylation mechanisms.
- DNA repair pathways play a critical role in active DNA demethylation.
- Understanding DNA repair-mediated demethylation is vital for comprehending development, differentiation, and reprogramming.
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