Stepwise Translocation of Dpo4 Polymerase during Error-Free Bypass of an oxoG Lesion
Open Access
- 3 January 2006
- journal article
- research article
- Published by Public Library of Science (PLoS) in PLoS Biology
- Vol. 4 (1) , e11
- https://doi.org/10.1371/journal.pbio.0040011
Abstract
7,8-dihydro-8-oxoguanine (oxoG), the predominant lesion formed following oxidative damage of DNA by reactive oxygen species, is processed differently by replicative and bypass polymerases. Our kinetic primer extension studies demonstrate that the bypass polymerase Dpo4 preferentially inserts C opposite oxoG, and also preferentially extends from the oxoG•C base pair, thus achieving error-free bypass of this lesion. We have determined the crystal structures of preinsertion binary, insertion ternary, and postinsertion binary complexes of oxoG-modified template-primer DNA and Dpo4. These structures provide insights into the translocation mechanics of the bypass polymerase during a complete cycle of nucleotide incorporation. Specifically, during noncovalent dCTP insertion opposite oxoG (or G), the little-finger domain–DNA phosphate contacts translocate by one nucleotide step, while the thumb domain–DNA phosphate contacts remain fixed. By contrast, during the nucleotidyl transfer reaction that covalently incorporates C opposite oxoG, the thumb-domain–phosphate contacts are translocated by one nucleotide step, while the little-finger contacts with phosphate groups remain fixed. These stepwise conformational transitions accompanying nucleoside triphosphate binding and covalent nucleobase incorporation during a full replication cycle of Dpo4-catalyzed bypass of the oxoG lesion are distinct from the translocation events in replicative polymerases.Keywords
This publication has 47 references indexed in Scilit:
- A closed conformation for the Pol λ catalytic cycleNature Structural & Molecular Biology, 2004
- Nucleotide insertion opposite a cis-syn thymine dimer by a replicative DNA polymerase from bacteriophage T7Nature Structural & Molecular Biology, 2004
- Switching from high-fidelity replicases to low-fidelity lesion-bypass polymerasesCurrent Opinion in Genetics & Development, 2004
- Mechanism of DNA Polymerization Catalyzed by Sulfolobus solfataricus P2 DNA Polymerase IVBiochemistry, 2004
- Oxidative damage to DNA: formation, measurement and biochemical featuresMutation Research - Fundamental and Molecular Mechanisms of Mutagenesis, 2003
- Yeast DNA Polymerase η Utilizes an Induced-Fit Mechanism of Nucleotide IncorporationCell, 2001
- Crystal Structure of a DinB Lesion Bypass DNA Polymerase Catalytic Fragment Reveals a Classic Polymerase Catalytic DomainMolecular Cell, 2001
- Structure of the Catalytic Core of S. cerevisiae DNA Polymerase ηMolecular Cell, 2001
- Refinement of Macromolecular Structures by the Maximum-Likelihood MethodActa Crystallographica Section D-Biological Crystallography, 1997
- CONFORMATIONAL COUPLING IN DNA POLYMERASE FIDELITYAnnual Review of Biochemistry, 1993