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Published on: February 13, 2019
Mismatched base-pair simulations for ASFV Pol X/DNA complexes help interpret frequent G*G misincorporation
Benedetta A Sampoli Benítez1, Karunesh Arora, Lisa Balistreri
1Department of Natural Sciences and Mathematics, Marymount Manhattan College, 221 East 71st Street, New York, NY 10021, USA.
Abstract:
DNA polymerase X (pol X) from the African swine fever virus is a 174-amino-acid repair polymerase that likely participates in a viral base excision repair mechanism, characterized by low fidelity. Surprisingly, pol X's insertion rate of the G*G mispair is comparable to that of the four Watson-Crick base pairs. This behavior is in contrast with another X-family polymerase, DNA polymerase beta (pol beta), which inserts G*G mismatches poorly, and has higher DNA repair fidelity. Using molecular dynamics simulations, we previously provided support for an induced-fit mechanism for pol X in the presence of the correct incoming nucleotide. Here, we perform molecular dynamics simulations of pol X/DNA complexes with different incoming incorrect nucleotides in various orientations [C*C, A*G, and G*G (anti) and A*G and G*G (syn)] and compare the results to available kinetic data and prior modeling. Intriguingly, the simulations reveal that the G*G mispair with the incoming nucleotide in the syn configuration undergoes large-scale conformational changes similar to that observed in the presence of correct base pair (G*C). The base pairing in the G*G mispair is achieved via Hoogsteen hydrogen bonding with an overall geometry that is well poised for catalysis. Simulations for other mismatched base pairs show that an intermediate closed state is achieved for the A*G and G*G mispair with the incoming dGTP in anti conformation, while the protein remains near the open conformation for the C*C and the A*G syn mismatches. In addition, catalytic site geometry and base pairing at the nascent template-incoming nucleotide interaction reveal distortions and misalignments that range from moderate for A*G anti to worst for the C*C complex. These results agree well with kinetic data for pol X and provide a structural/dynamic basis to explain, at atomic level, the fidelity of this polymerase compared with other members of the X family. In particular, the more open and pliant active site of pol X, compared to pol beta, allows pol X to accommodate bulkier mismatches such as guanine opposite guanine, while the more structured and organized pol beta active site imposes higher discrimination, which results in higher fidelity. The possibility of syn conformers resonates with other low-fidelity enzymes such as Dpo4 (from the Y family), which readily accommodate oxidative lesions.
Insights
African swine fever virus DNA polymerase X (pol X) readily incorporates G*G mismatches due to its flexible active site, unlike the more discriminating pol beta. This explains pol X's low fidelity in viral DNA repair.
Area of Science:
- Molecular Biology
- Biochemistry
- Structural Biology
Background:
- African swine fever virus DNA polymerase X (pol X) is a low-fidelity repair polymerase.
- Its ability to insert G*G mispairs is comparable to correct base pairs, contrasting with the higher fidelity DNA polymerase beta (pol beta).
Purpose of the Study:
- To investigate the structural and dynamic basis for pol X's low fidelity using molecular dynamics simulations.
- To compare the accommodation of various mismatched nucleotides by pol X with existing kinetic data.
Main Methods:
- Molecular dynamics simulations of pol X/DNA complexes with different incoming incorrect nucleotides (C*C, A*G, G*G in anti and syn conformations).
- Comparison of simulation results with experimental kinetic data and prior modeling studies.
Main Results:
- The G*G mispair in the syn configuration induced large conformational changes in pol X, similar to correct base pairing.
- Pol X's active site accommodates bulkier mismatches like G*G via Hoogsteen hydrogen bonding and a pliant structure.
- Simulations revealed varying degrees of distortion for different mismatches, correlating with kinetic data and explaining pol X's lower fidelity compared to pol beta.
Conclusions:
- The open and flexible active site of pol X allows it to accommodate significant mismatches, contributing to its low fidelity.
- This contrasts with the more structured active site of pol beta, which enforces higher discrimination and fidelity.
- The findings provide an atomic-level understanding of pol X's fidelity and its implications for viral DNA repair mechanisms.
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