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.

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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