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.

Mutation Research
|October 31, 2009
PubMed

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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