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Updated: May 5, 2026

Genetic Studies of Human DNA Repair Proteins Using Yeast as a Model System
Published on: March 18, 2010
Defects in base excision repair sensitize cells to manganese in S. cerevisiae
Adrienne P Stephenson1, Tryphon K Mazu, Jana S Miles
1Florida A&M University, College of Pharmacy & Pharmaceutical Sciences, 1520 Martin Luther King Boulevard, Dyson Building Room 221, Tallahassee, FL 32307, USA.
Abstract:
Manganese (Mn) is essential for normal physiologic functioning; therefore, deficiencies and excess intake of manganese can result in disease. In humans, prolonged exposure to manganese causes neurotoxicity characterized by Parkinson-like symptoms. Mn(2+) has been shown to mediate DNA damage possibly through the generation of reactive oxygen species. In a recent publication, we showed that Mn induced oxidative DNA damage and caused lesions in thymines. This study further investigates the mechanisms by which cells process Mn(2+)-mediated DNA damage using the yeast S. cerevisiae. The strains most sensitive to Mn(2+) were those defective in base excision repair, glutathione synthesis, and superoxide dismutase mutants. Mn(2+) caused a dose-dependent increase in the accumulation of mutations using the CAN1 and lys2-10A mutator assays. The spectrum of CAN1 mutants indicates that exposure to Mn results in accumulation of base substitutions and frameshift mutations. The sensitivity of cells to Mn(2+) as well as its mutagenic effect was reduced by N-acetylcysteine, glutathione, and Mg(2+). These data suggest that Mn(2+) causes oxidative DNA damage that requires base excision repair for processing and that Mn interferes with polymerase fidelity. The status of base excision repair may provide a biomarker for the sensitivity of individuals to manganese.
Insights
Manganese (Mn) exposure causes DNA damage and mutations, particularly in cells with impaired DNA repair. Antioxidants and magnesium reduce Mn(2+) toxicity and mutagenic effects.
Area of Science:
- Biochemistry
- Genetics
- Toxicology
Background:
- Manganese (Mn) is an essential element, but excess intake leads to neurotoxicity, resembling Parkinson's disease.
- Mn(2+) can induce DNA damage, potentially via reactive oxygen species, causing lesions in thymines.
Purpose of the Study:
- To investigate the cellular mechanisms of manganese(II) (Mn(2+))-mediated DNA damage processing.
- To identify cellular pathways and genetic factors influencing sensitivity to Mn(2+).
Main Methods:
- Utilized yeast (S. cerevisiae) as a model organism.
- Employed CAN1 and lys2-10A mutator assays to assess Mn(2+)-induced mutations.
- Tested the protective effects of N-acetylcysteine, glutathione, and Mg(2+).
Main Results:
- Strains deficient in base excision repair, glutathione synthesis, or superoxide dismutase were most sensitive to Mn(2+).
- Mn(2+) caused a dose-dependent increase in base substitutions and frameshift mutations.
- N-acetylcysteine, glutathione, and Mg(2+) significantly reduced Mn(2+) sensitivity and mutagenicity.
Conclusions:
- Mn(2+) induces oxidative DNA damage processed by base excision repair.
- Mn(2+) may interfere with DNA polymerase fidelity, leading to mutations.
- Base excision repair status could serve as a biomarker for manganese sensitivity.
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