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Structure of DNA polymerase beta with a benzo[c]phenanthrene diol epoxide-adducted template exhibits mutagenic
Vinod K Batra1, David D Shock, Rajendra Prasad
1Laboratory of Structural Biology, National Institute of Environmental Health Sciences, National Institutes of Health, Department of Health and Human Services, Research Triangle Park, NC 27709, USA.
Abstract:
We have determined the crystal structure of the human base excision repair enzyme DNA polymerase beta (Pol beta) in complex with a 1-nt gapped DNA substrate containing a template N2-guanine adduct of the tumorigenic (-)-benzo[c]phenanthrene 4R,3S-diol 2S,1R-epoxide in the gap. Nucleotide insertion opposite this adduct favors incorrect purine nucleotides over the correct dCMP and hence can be mutagenic. The structure reveals that the phenanthrene ring system is stacked with the base pair immediately 3' to the modified guanine, thereby occluding the normal binding site for the correct incoming nucleoside triphosphate. The modified guanine base is displaced downstream and prevents the polymerase from achieving the catalytically competent closed conformation. The incoming nucleotide binding pocket is distorted, and the adducted deoxyguanosine is in a syn conformation, exposing its Hoogsteen edge, which can hydrogen-bond with dATP or dGTP. In a reconstituted base excision repair system, repair of a deaminated cytosine (i.e., uracil) opposite the adducted guanine was dramatically decreased at the Pol beta insertion step, but not blocked. The efficiency of gap-filling dCMP insertion opposite the adduct was diminished by >6 orders of magnitude compared with an unadducted templating guanine. In contrast, significant misinsertion of purine nucleotides (but not dTMP) opposite the adducted guanine was observed. Pol beta also misinserts a purine nucleotide opposite the adduct with ungapped DNA and exhibits limited bypass DNA synthesis. These results indicate that Pol beta-dependent base excision repair of uracil opposite, or replication through, this bulky DNA adduct can be mutagenic.
Insights
The crystal structure of DNA polymerase beta (Pol beta) reveals how bulky DNA adducts cause mutagenic nucleotide misinsertion during DNA repair. This structural insight explains the enzyme's error-prone bypass of damaged DNA.
Area of Science:
- Biochemistry
- Structural Biology
- Molecular Biology
Background:
- Base excision repair (BER) is crucial for maintaining genomic stability.
- DNA polymerase beta (Pol beta) plays a key role in the gap-filling step of BER.
- Chemical carcinogens, such as benzo[c]phenanthrene diol epoxide, form bulky DNA adducts that can lead to mutations.
Purpose of the Study:
- To determine the crystal structure of human Pol beta in complex with a DNA substrate containing a bulky N2-guanine adduct.
- To elucidate the structural mechanisms underlying Pol beta's nucleotide insertion fidelity opposite the DNA adduct.
- To understand the implications of Pol beta's activity for mutagenesis during DNA repair.
Main Methods:
- X-ray crystallography to determine the structure of Pol beta-DNA complex.
- Biochemical assays to assess nucleotide insertion and DNA repair efficiency.
- Reconstitution of base excision repair pathway.
Main Results:
- The crystal structure reveals the bulky adduct distorts the active site, preventing proper binding of the correct nucleotide.
- Pol beta exhibits a strong preference for inserting incorrect purine nucleotides (dATP, dGTP) opposite the adduct.
- The efficiency of correct dCMP insertion is reduced by over six orders of magnitude.
- Pol beta shows limited bypass synthesis and misinsertion even with ungapped DNA.
Conclusions:
- The structural and biochemical data explain the mutagenic bypass of the N2-guanine adduct by Pol beta.
- Pol beta's error-prone insertion opposite bulky adducts contributes to mutagenesis during DNA repair.
- Understanding these mechanisms is vital for assessing the carcinogenic potential of environmental agents.
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