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Updated: Aug 28, 2026

Steady-state, Pre-steady-state, and Single-turnover Kinetic Measurement for DNA Glycosylase Activity
Published on: August 19, 2013
DNA Damage Recognition by Bacterial and Human Adenine-DNA Glycosylases: Insights from Non-Canonical Substrates
Ulan Sarsenbayeva1,2, Didier Gasparutto3, Nicolas Geacintov4
1Faculty of Biology and Biotechnology, Al-Farabi Kazakh National University, Almaty 050040, Kazakhstan.
Abstract:
The Escherichia coli adenine-DNA glycosylase (MutY) and its human homologue, MUTYH, protect cells against oxygen-free radical-induced mutagenesis by excising regular adenine impaired with 8-oxo-7,8-dihydro-guanine (8oxoG) in the base excision repair (BER) pathway. However, removal of adenine by MutY and MUTYH from an A·8oxoG pair generated via misincorporation of an oxidized nucleotide during DNA synthesis might induce A·T→C·G transversions. Here, to examine MutY and MUTYH in vitro activities, we used short synthetic DNA duplexes in which the target adenine residue was positioned opposite a variety of DNA base modifications. MUTYH does not excise mismatched adenine in non-canonical DNA substrates, whereas MutY excises adenine mispaired with 1,3-d(GpNpG) cisplatin intra-strand crosslink. In addition, we characterized four MUTYH variants associated with cancer risk, which exhibit the following order of DNA glycosylase deficiency: WT ≥ G169D > G202E ≈ Y165C >> D222N. Human adenine-DNA glycosylase MUTYH and its mutant variants, contrary to bacterial MutY, are not prone to aberrant removal of regular adenine residues opposite modified residues in DNA duplexes. We hypothesize that E. coli MutY is prone to aberrant repair under certain conditions and that this may prevent incorporation of adenine opposite blocking lesions in the template strand.
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