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Updated: Mar 2, 2026

Steady-state, Pre-steady-state, and Single-turnover Kinetic Measurement for DNA Glycosylase Activity
Published on: August 19, 2013
Molecular dynamics simulation of the opposite-base preference and interactions in the active site of
Alexander V Popov1, Anton V Endutkin1,2, Yuri N Vorobjev3,4
1SB RAS Institute of Chemical Biology and Fundamental Medicine, 8 Lavrentieva Ave., Novosibirsk, 630090, Russia.
Background:
Formamidopyrimidine-DNA glycosylase (Fpg) removes abundant pre-mutagenic 8-oxoguanine (oxoG) bases from DNA through nucleophilic attack of its N-terminal proline at C1' of the damaged nucleotide. Since oxoG efficiently pairs with both C and A, Fpg must excise oxoG from pairs with C but not with A, otherwise a mutation occurs. The crystal structures of several Fpg-DNA complexes have been solved, yet no structure with A opposite the lesion is available.
Results:
Here we use molecular dynamic simulation to model interactions in the pre-catalytic complex of Lactococcus lactis Fpg with DNA containing oxoG opposite C or A, the latter in either syn or anti conformation. The catalytic dyad, Pro1-Glu2, was modeled in all four possible protonation states. Only one transition was observed in the experimental reaction rate pH dependence plots, and Glu2 kept the same set of interactions regardless of its protonation state, suggesting that it does not limit the reaction rate. The adenine base opposite oxoG was highly distorting for the adjacent nucleotides: in the more stable syn models it formed non-canonical bonds with out-of-register nucleotides in both the damaged and the complementary strand, whereas in the anti models the adenine either formed non-canonical bonds or was expelled into the major groove. The side chains of Arg109 and Phe111 that Fpg inserts into DNA to maintain its kinked conformation tended to withdraw from their positions if A was opposite to the lesion. The region showing the largest differences in the dynamics between oxoG:C and oxoG:A substrates was unexpectedly remote from the active site, located near the linker joining the two domains of Fpg. This region was also highly conserved among 124 analyzed Fpg sequences. Three sites trapping water molecules through multiple bonds were identified on the protein-DNA interface, apparently helping to maintain enzyme-induced DNA distortion and participating in oxoG recognition.
Conclusion:
Overall, the discrimination against A opposite to the lesion seems to be due to incorrect DNA distortion around the lesion-containing base pair and, possibly, to gross movement of protein domains connected by the linker.
Insights
Formamidopyrimidine-DNA glycosylase (Fpg) distinguishes between correct (oxoG:C) and incorrect (oxoG:A) base pairs. Molecular dynamics reveal DNA distortion and protein domain movements explain Fpg's discrimination mechanism.
Area of Science:
- Biochemistry
- Molecular Biology
- Structural Biology
Background:
- Formamidopyrimidine-DNA glycosylase (Fpg) repairs 8-oxoguanine (oxoG), a mutagenic DNA lesion.
- Fpg must discriminate between oxoG paired with cytosine (C) and adenine (A) to prevent mutations.
- Existing crystal structures do not show Fpg with oxoG opposite adenine.
Purpose of the Study:
- To model and understand the molecular interactions of Fpg with DNA containing oxoG opposite C or A.
- To investigate the mechanism of Fpg's base selectivity using molecular dynamics simulations.
- To elucidate the structural basis for Fpg's discrimination against adenine opposite 8-oxoguanine.
Main Methods:
- Molecular dynamics (MD) simulations of Lactococcus lactis Fpg-DNA complexes.
- Modeling of pre-catalytic complexes with oxoG opposite C or A (syn and anti conformations).
- Analysis of catalytic dyad protonation states and protein-DNA interface interactions.
Main Results:
- Adenine opposite oxoG caused significant DNA distortion, forming non-canonical bonds and altering base stacking.
- Key Fpg residues (Arg109, Phe111) involved in DNA kinking tended to withdraw when opposite adenine.
- A conserved region remote from the active site showed dynamic differences between oxoG:C and oxoG:A complexes, suggesting its role in discrimination.
- Water molecules at the protein-DNA interface likely stabilize enzyme-induced DNA distortion.
Conclusions:
- Discrimination against adenine opposite oxoG arises from incorrect DNA distortion around the lesion.
- Gross movements in protein domains connected by a linker may also contribute to Fpg's selectivity.
- The study provides insights into the structural and dynamic mechanisms underlying DNA repair enzyme specificity.
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