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Regulation of translesion DNA synthesis in mammalian cells
Xiaolu Ma1, Tie-Shan Tang2, Caixia Guo3
1College of Biomedical Engineering, Taiyuan University of Technology, Taiyuan, China.
Abstract:
The genomes of all living cells are under endogenous and exogenous attacks every day, causing diverse genomic lesions. Most of the lesions can be timely repaired by multiple DNA repair pathways. However, some may persist during S-phase, block DNA replication, and challenge genome integrity. Eukaryotic cells have evolved DNA damage tolerance (DDT) to mitigate the lethal effects of arrested DNA replication without prior removal of the offending DNA damage. As one important mode of DDT, translesion DNA synthesis (TLS) utilizes multiple low-fidelity DNA polymerases to incorporate nucleotides opposite DNA lesions to maintain genome integrity. Three different mechanisms have been proposed to regulate the polymerase switching between high-fidelity DNA polymerases in the replicative machinery and one or more specialized enzymes. Additionally, it is known that proliferating cell nuclear antigen (PCNA) mono-ubiquitination is essential for optimal TLS. Given its error-prone property, TLS is closely associated with spontaneous and drug-induced mutations in cells, which can potentially lead to tumorigenesis and chemotherapy resistance. Therefore, TLS process must be tightly modulated to avoid unwanted mutagenesis. In this review, we will focus on polymerase switching and PCNA mono-ubiquitination, the two key events in TLS pathway in mammalian cells, and summarize current understandings of regulation of TLS process at the levels of protein-protein interactions, post-translational modifications as well as transcription and noncoding RNAs. Environ. Mol. Mutagen. 61:680-692, 2020. © 2020 Wiley Periodicals, Inc.
Insights
DNA damage tolerance (DDT) uses translesion DNA synthesis (TLS) to replicate DNA past lesions. This review covers polymerase switching and PCNA ubiquitination, key regulators of TLS in mammalian cells.
Area of Science:
- Molecular Biology
- Genetics
- Cell Biology
Background:
- Genomic DNA faces daily damage from endogenous and exogenous sources.
- DNA repair pathways handle most lesions, but some persist, halting DNA replication.
- DNA damage tolerance (DDT) pathways mitigate replication arrest without prior lesion removal.
Purpose of the Study:
- To review the regulation of translesion DNA synthesis (TLS), a key DDT mechanism.
- To focus on polymerase switching and PCNA mono-ubiquitination in mammalian TLS.
- To summarize current knowledge on TLS regulation via protein interactions, PTMs, and noncoding RNAs.
Main Methods:
- Literature review of DNA repair and tolerance mechanisms.
- Focus on translesion DNA synthesis (TLS) pathways.
- Analysis of regulatory mechanisms including polymerase switching and PCNA ubiquitination.
Main Results:
- TLS employs specialized polymerases to synthesize DNA across lesions.
- Polymerase switching regulates the exchange between replicative and TLS polymerases.
- PCNA mono-ubiquitination is crucial for efficient TLS.
- TLS is linked to mutagenesis, potentially causing cancer and drug resistance.
Conclusions:
- TLS is a critical but error-prone process that must be tightly regulated.
- Understanding TLS regulation is key to preventing unwanted mutagenesis.
- Further research into protein interactions, PTMs, and noncoding RNAs will elucidate TLS control.
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