Modulation of oxidative mutagenesis and carcinogenesis by polymorphic forms of human DNA repair enzymes

Takehiko Nohmi1, Su-Ryang Kim, Masami Yamada

  • 1Division of Genetics and Mutagenesis, National Institute of Health Sciences, 1-18-1 Kamiyoga, Setagaya-ku, Tokyo 158-8501, Japan. nohmi@nihs.go.jp

Mutation Research
|August 6, 2005
PubMed

Insights

Oxidative stress damages DNA, but repair enzymes like MutM, MutY, and MutT protect genetic stability. Human counterparts OGG1, MUTYH, and MTH1, along with their polymorphic forms, are crucial for genomic integrity and cancer risk.

Area of Science:

  • Genetics
  • Molecular Biology
  • Biochemistry

Background:

  • Oxidative stress is a major threat to DNA integrity, leading to mutations.
  • DNA repair systems have evolved to counteract mutagenic damage.
  • 8-hydroxy-guanine (8-OH-G) is a common oxidative DNA lesion.

Purpose of the Study:

  • To review polymorphic forms of human DNA repair proteins OGG1, MUTYH, and MTH1.
  • To discuss the significance of these polymorphisms in maintaining genomic integrity.
  • To summarize polymorphic forms of human DNA polymerase eta involved in oxidative stress response.

Main Methods:

  • Review of existing literature on DNA repair enzymes and their polymorphisms.
  • Analysis of the functional roles of MutM, MutY, and MutT homologs in DNA repair.
  • Examination of the impact of polymorphisms on DNA repair efficiency and mutagenesis.

Main Results:

  • Inactivation of bacterial repair enzymes MutM and MutY increases G:C to T:A mutations.
  • MutT deficiency significantly enhances T:A to G:C transversions.
  • Human homologs OGG1, MUTYH, and MTH1 are critical for protecting genomic DNA from oxidative damage.
  • Polymorphic variants of OGG1, MUTYH, and MTH1 may influence cancer susceptibility.

Conclusions:

  • Human DNA repair proteins OGG1, MUTYH, and MTH1 are essential for combating oxidative DNA damage.
  • Genetic variations in these repair proteins can impact genomic stability and potentially cancer risk.
  • Further research into DNA polymerase eta polymorphisms is warranted for understanding oxidative stress-induced mutagenesis.

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