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Updated: Jun 19, 2026

The Lambda Select cII Mutation Detection System
Published on: April 26, 2018
Mutagenicity of N3-methyladenine: a multi-translesion polymerase affair
Paola Monti1, Ilaria Traverso, Laura Casolari
1Department of Epidemiology and Prevention, National Cancer Research Institute (IST), Genova, Italy.
Abstract:
We recently demonstrated that Polzeta and Rev1 contribute to alleviate the lethal effects of Me-lex, which selectively generates 3-methyladenine, by error prone lesion bypass. In order to determine the role of Poleta in the biological fate of Me-lex induced lesions, the RAD30 (Poleta) gene was deleted in the yIG397 parental strain and in its rev3 (Polzeta) derivative, and the strains transformed with plasmid DNA damaged in vitro by Me-lex. While deletion of RAD30 increased the toxicity of Me-lex, the impact on mutagenicity varied depending on the concentration of Me-lex induced DNA damage and the overall TLS capacity of the cells. For the first time the Me-lex induced mutation spectrum in rad30 strain was determined and compared with the spectrum previously determined in WT strain. Overall, the two mutation spectra were not significantly different. The effect on mutation frequency and the features of the Me-lex induced mutation spectra were suggestive of error prone (significant decrease of mutation frequency and significant decrease of AT>TA at a mutation hotspot in rad30 vs RAD30) but also error free (significant increase of AT>GC in rad30 vs RAD30) Poleta dependent bypass of lesions. In summary, our previous results with Polzeta and Rev1 mutants, the present results with Poleta, and the known physical and functional interactions among TLS proteins, lead us to propose that the bypass of Me-lex induced lesions is a multi-DNA polymerases process that is mostly effective when all three yeast TLS polymerases are present.
Insights
DNA repair involves multiple polymerases. Yeast cells lacking Polzeta, Rev1, or Polleta show increased sensitivity to Me-lex DNA damage, suggesting a collaborative repair process.
Area of Science:
- Molecular Biology
- Genetics
- Biochemistry
Background:
- Me-lex generates 3-methyladenine DNA lesions.
- Polzeta and Rev1 were previously shown to bypass Me-lex lesions.
- The role of Polleta in Me-lex lesion bypass was unknown.
Purpose of the Study:
- To determine the role of Polleta in the biological fate of Me-lex induced lesions.
- To investigate the impact of RAD30 (Polleta) deletion on Me-lex toxicity and mutagenicity.
- To analyze the Me-lex induced mutation spectrum in a rad30 strain.
Main Methods:
- Deletion of the RAD30 (Polleta) gene in yeast strains.
- Transformation of strains with Me-lex damaged plasmid DNA.
- Analysis of Me-lex toxicity and mutation spectra.
Main Results:
- RAD30 deletion increased Me-lex toxicity.
- Mutagenicity impact varied with DNA damage concentration and cellular TLS capacity.
- Me-lex induced mutation spectra in rad30 strains were similar to WT strains.
- Polleta-dependent lesion bypass showed both error-prone and error-free characteristics.
Conclusions:
- Bypass of Me-lex lesions is a multi-DNA polymerase process.
- Optimal bypass requires the presence of Polzeta, Rev1, and Polleta.
- Yeast TLS polymerases collaborate to repair Me-lex induced DNA damage.
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