Biochemical and photochemical mechanisms that produce different UV-induced mutation spectra

Tomohiko Sugiyama1, Brianna Keinard2, Griffin Best2

  • 1Department of Biological Sciences; Molecular and Cellular Biology Graduate Program, Ohio University, Athens, OH, 45701, USA.

Mutation Research
|September 26, 2021
PubMed

Insights

Sunlight induces DNA mutations via multiple pathways, including polymerase action and direct photoreversal, with distinct mechanisms linked to specific cancer mutation signatures.

Area of Science:

  • Molecular Biology
  • Genetics
  • Photochemistry

Background:

  • UV radiation causes DNA damage, leading to mutations.
  • DNA polymerases (Pol) η and ζ mediate translesion synthesis (TLS) across UV-induced pyrimidine dimers, primarily causing C>T transitions.
  • A proposed mechanism involves UV-induced cytosine deamination followed by direct photoreversal.

Purpose of the Study:

  • To investigate multiple mechanisms of UV-induced mutagenesis using natural sunlight and monochromatic UVB.
  • To compare in vitro mutation spectra with known cancer mutation signatures.
  • To elucidate the roles of different DNA polymerases and DNA repair pathways in UV mutagenesis.

Main Methods:

  • In vitro experiments exposing DNA to natural sunlight and monochromatic UVB (300 nm).
  • Incubation periods in the dark between UV exposures to facilitate deamination.
  • Analysis of mutations generated by DNA polymerases (Pol) η, ζ, and ι.
  • Assessment of resistance to T4 pyrimidine dimer glycosylase treatment.

Main Results:

  • Natural sunlight and UVB induced both Pol η/ζ-dependent and photoreversal-dependent mutagenesis.
  • Post-irradiation dark incubation was crucial for both mechanisms, indicating a role for cytosine deamination.
  • Pol ι, combined with Pol ζ, generated mutations largely independent of dark incubation.
  • Sunlight also induced C>A transversions, likely via guanine oxidation.
  • Pol η/photoreversal spectra resembled cancer signature SBS7a, while Pol ι spectra showed T>A/C substitutions characteristic of SBS7d.

Conclusions:

  • Multiple biochemical pathways contribute to UV-induced mutagenesis.
  • Cytosine deamination is a key step in both Pol η/ζ-dependent and photoreversal-dependent mutagenesis.
  • Pol ι-dependent mutagenesis, independent of cis-syn pyrimidine dimers, contributes to distinct cancer mutation signatures.

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