The peroxidation-derived DNA adduct, 6-oxo-M1dG, is a strong block to replication by human DNA polymerase η

Robyn Richie-Jannetta1, Pradeep Pallan2, Philip J Kingsley1

  • 1A. B. Hancock, Jr, Memorial Laboratory for Cancer Research, Departments of Biochemistry, Chemistry and Pharmacology, Vanderbilt-Ingram Cancer Center, Vanderbilt Institute of Chemical Biology, Vanderbilt University School of Medicine, Nashville, Tennessee, USA.

Insights

The DNA adduct 6-oxo-M1dG blocks replication by human polymerase eta (hPol η). Structural analysis reveals it hinders DNA synthesis by preventing proper positioning of nucleotides for phosphodiester bond formation.

Area of Science:

  • Molecular Biology
  • DNA Repair and Replication
  • Structural Biology

Background:

  • The DNA adduct 6-oxo-M1dG is formed through oxidation of the M1dG adduct.
  • The impact of 6-oxo-M1dG on DNA replication by human Y-family polymerase eta (hPol η) remains largely unknown.

Purpose of the Study:

  • To investigate the ability of hPol η to bypass the 6-oxo-M1dG DNA adduct.
  • To elucidate the structural mechanisms underlying hPol η's interaction with and bypass of 6-oxo-M1dG.

Main Methods:

  • Steady-state kinetics to analyze nucleotide insertion.
  • Liquid chromatography-tandem mass spectrometry for DNA extension product analysis.
  • X-ray crystallography to determine the structure of hPol η-DNA complexes at insertion and extension stages.

Main Results:

  • hPol η preferentially inserts dAMP or dGMP opposite 6-oxo-M1dG, with slight preference for dGMP.
  • Extension of primers with 3'-terminal dGMP or dAMP across from 6-oxo-M1dG was more efficient than with dCMP or dTMP.
  • Structural analysis revealed 6-oxo-M1dG does not interact with the active site but stacks with adjacent bases, and it misaligns the 3'-hydroxyl group, blocking phosphodiester bond formation.

Conclusions:

  • The DNA adduct 6-oxo-M1dG acts as a significant block to DNA replication by hPol η.
  • Structural insights explain the blocking ability of 6-oxo-M1dG, highlighting its interference with nucleotide incorporation and extension.

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