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Visualizing and Quantifying Endonuclease-Based Site-Specific DNA Damage
Published on: August 21, 2021
DNA mismatch repair and its many roles in eukaryotic cells
Dekang Liu1, Guido Keijzers1, Lene Juel Rasmussen1
1Department of Cellular and Molecular Medicine, Center for Healthy Aging, University of Copenhagen, Copenhagen, Denmark.
Abstract:
DNA mismatch repair (MMR) is an important DNA repair pathway that plays critical roles in DNA replication fidelity, mutation avoidance and genome stability, all of which contribute significantly to the viability of cells and organisms. MMR is widely-used as a diagnostic biomarker for human cancers in the clinic, and as a biomarker of cancer susceptibility in animal model systems. Prokaryotic MMR is well-characterized at the molecular and mechanistic level; however, MMR is considerably more complex in eukaryotic cells than in prokaryotic cells, and in recent years, it has become evident that MMR plays novel roles in eukaryotic cells, several of which are not yet well-defined or understood. Many MMR-deficient human cancer cells lack mutations in known human MMR genes, which strongly suggests that essential eukaryotic MMR components/cofactors remain unidentified and uncharacterized. Furthermore, the mechanism by which the eukaryotic MMR machinery discriminates between the parental (template) and the daughter (nascent) DNA strand is incompletely understood and how cells choose between the EXO1-dependent and the EXO1-independent subpathways of MMR is not known. This review summarizes recent literature on eukaryotic MMR, with emphasis on the diverse cellular roles of eukaryotic MMR proteins, the mechanism of strand discrimination and cross-talk/interactions between and co-regulation of MMR and other DNA repair pathways in eukaryotic cells. The main conclusion of the review is that MMR proteins contribute to genome stability through their ability to recognize and promote an appropriate cellular response to aberrant DNA structures, especially when they arise during DNA replication. Although the molecular mechanism of MMR in the eukaryotic cell is still not completely understood, increased used of single-molecule analyses in the future may yield new insight into these unsolved questions.
Insights
DNA mismatch repair (MMR) maintains genome stability and prevents mutations. Eukaryotic MMR is complex, with unidentified components and unclear mechanisms, highlighting its crucial roles in cancer and cell viability.
Area of Science:
- Molecular Biology
- Genetics
- Cancer Research
Background:
- DNA mismatch repair (MMR) is vital for DNA replication fidelity, mutation avoidance, and genome stability in cells and organisms.
- MMR serves as a diagnostic biomarker for human cancers and a biomarker for cancer susceptibility in animal models.
- Eukaryotic MMR is more complex than prokaryotic MMR, with emerging evidence of novel, yet undefined, cellular roles.
Purpose of the Study:
- To review recent literature on eukaryotic DNA mismatch repair (MMR).
- To emphasize the diverse cellular roles of eukaryotic MMR proteins.
- To elucidate the mechanism of strand discrimination and interactions with other DNA repair pathways.
Main Methods:
- Literature review of recent scientific publications on eukaryotic MMR.
- Analysis of studies focusing on MMR protein functions, strand discrimination mechanisms, and pathway cross-talk.
- Consideration of single-molecule analyses for future research directions.
Main Results:
- Many MMR-deficient human cancers lack mutations in known MMR genes, suggesting unidentified eukaryotic MMR components.
- The mechanism of parental/daughter DNA strand discrimination in eukaryotic MMR remains incompletely understood.
- The choice between EXO1-dependent and EXO1-independent MMR subpathways is not yet known.
Conclusions:
- Eukaryotic MMR proteins contribute to genome stability by responding to aberrant DNA structures during replication.
- Unidentified eukaryotic MMR components and cofactor functions are critical.
- Further research, particularly using single-molecule analyses, is needed to fully understand eukaryotic MMR mechanisms.
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