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Published on: June 19, 2018
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.
Abstract:
Microsatellite tandem repeats are frequent sites of strand slippage mutagenesis in the human genome. Microsatellite mutations often occur as insertion/deletion of a repeat motif (unit-based indels), and increase in frequency with increasing repeat length after a threshold is reached. We recently demonstrated that DNA polymerase κ (Pol κ) produces fewer unit-based indel errors within dinucleotide microsatellites than does polymerase δ. Here, we examined human Pol κ's error profile within microsatellite alleles of varying sequence composition and length, using an in vitro HSV-tk gap-filling assay. We observed that Pol κ displays relatively accurate synthesis for unit-based indels, using di- and tetranucleotide repeat templates longer than the threshold length. We observed an abrupt increase in the unit-based indel frequency when the total microsatellite length exceeds 28 nucleotides, suggesting that extended Pol κ protein-DNA interactions enhance fidelity of the enzyme when synthesizing these microsatellite alleles. In contrast, Pol κ is error-prone within the HSV-tk coding sequence, producing frequent single-base errors in a manner that is highly biased with regard to sequence context. Single-nucleotide errors are also created by Pol κ within di- and tetranucleotide repeats, independently of the microsatellite allele length and at a frequency per nucleotide similar to the frequency of single base errors within the coding sequence. These single-base errors represent the mutational signature of Pol κ, and we propose them a mechanism independent of homology-stabilized slippage. Pol κ's dual fidelity nature provides a unique research tool to explore the distinct mechanisms of slippage-mediated mutagenesis.
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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