An AP endonuclease 1-DNA polymerase beta complex: theoretical prediction of interacting surfaces

Alexej Abyzov1, Alper Uzun, Phyllis R Strauss

  • 1Department of Biology, Northeastern University, Boston, Massachusetts, United States of America.

Insights

DNA repair involves AP endonuclease (APEX1) and DNA polymerase beta (pol-beta). This study predicts their interaction sites, suggesting pol-beta binds APEX1 on the 3

Area of Science:

  • Molecular Biology
  • Biochemistry
  • Structural Biology

Background:

  • Abasic (AP) sites are DNA lesions repaired by base excision repair (BER).
  • AP endonuclease (APEX1) initiates repair by cleaving DNA 5' to the AP site.
  • DNA polymerase beta (pol-beta) typically performs subsequent nucleotide insertion and gap filling.

Purpose of the Study:

  • To theoretically predict the detailed interacting surfaces between APEX1 and pol-beta.
  • To identify specific residues and binding energies governing their interaction.
  • To elucidate the in vivo relevance of predicted APEX1-pol-beta complexes.

Main Methods:

  • Computational modeling using published co-crystal structures of APEX1 and pol-beta.
  • Protein docking simulations to identify potential interaction interfaces.
  • Molecular dynamics (MD) simulations to assess interface stability and binding energies.
  • Correlated mutation analysis of APEX1 and pol-beta orthologs.

Main Results:

  • Several potential complexes were identified, with pol-beta located either 3' or 5' to APEX1.
  • MD simulations predicted stable complexes with binding energies around -10.0 kcal/mol for 3'-located pol-beta.
  • Correlated mutations supported the functional relevance of predicted interface residues.
  • The most likely in vivo interaction involves pol-beta binding APEX1 on the 3' side.

Conclusions:

  • A stable complex is predicted between APEX1 and pol-beta, with pol-beta positioned 3' to the cleaved AP site.
  • This interaction likely involves pol-beta in either open or closed conformation.
  • The computational approach is valuable for studying protein interactions in DNA repair pathways.

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