DNA polymerase kappa microsatellite synthesis: two distinct mechanisms of slippage-mediated errors

Beverly A Baptiste1, Kristin A Eckert

  • 1Department of Pathology, Gittlen Cancer Research Foundation, Pennsylvania State University College of Medicine, Hershey, PA, USA.

Insights

Human DNA polymerase κ (Pol κ) shows high accuracy for microsatellite indel errors above a specific length threshold. However, it frequently introduces single-nucleotide errors, revealing its distinct mutational signature.

Area of Science:

  • Genetics
  • Molecular Biology
  • Genomic Instability

Background:

  • Microsatellite tandem repeats are prone to strand slippage mutagenesis.
  • Microsatellite mutations, particularly unit-based indels, increase with repeat length.
  • DNA polymerase κ (Pol κ) exhibits differential fidelity compared to polymerase δ.

Purpose of the Study:

  • To investigate the error profile of human Pol κ in microsatellites of varying sequence composition and length.
  • To understand Pol κ's fidelity mechanisms in relation to microsatellite length and sequence context.
  • To characterize the mutational signature of Pol κ.

Main Methods:

  • In vitro HSV-tk gap-filling assay.
  • Analysis of Pol κ's error profile using di- and tetranucleotide repeat templates.
  • Examination of indel and single-nucleotide error frequencies across different microsatellite lengths.

Main Results:

  • Pol κ demonstrates high accuracy for unit-based indel errors in microsatellites longer than a threshold length (28 nucleotides).
  • An abrupt increase in unit-based indel frequency was observed when microsatellite length exceeded 28 nucleotides.
  • Pol κ is error-prone in coding sequences and microsatellites, producing frequent, sequence-context-biased single-nucleotide errors.

Conclusions:

  • Extended Pol κ-DNA interactions enhance fidelity for microsatellite synthesis.
  • Single-nucleotide errors, independent of slippage, represent Pol κ's mutational signature.
  • Pol κ's dual fidelity offers a tool to study slippage-mediated mutagenesis.

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