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Updated: Jul 5, 2026

Single-Molecule Dwell-Time Analysis of Restriction Endonuclease-Mediated DNA Cleavage
Published on: February 7, 2021
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.
Abstract:
Abasic (AP) sites in DNA arise through both endogenous and exogenous mechanisms. Since AP sites can prevent replication and transcription, the cell contains systems for their identification and repair. AP endonuclease (APEX1) cleaves the phosphodiester backbone 5' to the AP site. The cleavage, a key step in the base excision repair pathway, is followed by nucleotide insertion and removal of the downstream deoxyribose moiety, performed most often by DNA polymerase beta (pol-beta). While yeast two-hybrid studies and electrophoretic mobility shift assays provide evidence for interaction of APEX1 and pol-beta, the specifics remain obscure. We describe a theoretical study designed to predict detailed interacting surfaces between APEX1 and pol-beta based on published co-crystal structures of each enzyme bound to DNA. Several potentially interacting complexes were identified by sliding the protein molecules along DNA: two with pol-beta located downstream of APEX1 (3' to the damaged site) and three with pol-beta located upstream of APEX1 (5' to the damaged site). Molecular dynamics (MD) simulations, ensuring geometrical complementarity of interfaces, enabled us to predict interacting residues and calculate binding energies, which in two cases were sufficient (approximately -10.0 kcal/mol) to form a stable complex and in one case a weakly interacting complex. Analysis of interface behavior during MD simulation and visual inspection of interfaces allowed us to conclude that complexes with pol-beta at the 3'-side of APEX1 are those most likely to occur in vivo. Additional multiple sequence analyses of APEX1 and pol-beta in related organisms identified a set of correlated mutations of specific residues at the predicted interfaces. Based on these results, we propose that pol-beta in the open or closed conformation interacts and makes a stable interface with APEX1 bound to a cleaved abasic site on the 3' side. The method described here can be used for analysis in any DNA-metabolizing pathway where weak interactions are the principal mode of cross-talk among participants and co-crystal structures of the individual components are available.
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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