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.

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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