Structural Adaptation of the Single-Stranded DNA-Binding Protein C-Terminal to DNA Metabolizing Partners Guides Inhibitor Design

Author:

Tököli Attila1,Bodnár Brigitta12,Bogár Ferenc2ORCID,Paragi Gábor134ORCID,Hetényi Anasztázia1,Bartus Éva12,Wéber Edit12,Hegedüs Zsófia1,Szabó Zoltán1ORCID,Kecskeméti Gábor1ORCID,Szakonyi Gerda5,Martinek Tamás A.12

Affiliation:

1. Department of Medical Chemistry, University of Szeged, H6720 Szeged, Hungary

2. ELKH-SZTE Biomimetic Systems Research Group, Eötvös Loránd Research Network (ELKH), H6720 Szeged, Hungary

3. Institute of Physics, University of Pécs, H7624 Pécs, Hungary

4. Department of Theoretical Physics, University of Szeged, H6720 Szeged, Hungary

5. Institute of Pharmaceutical Analysis, University of Szeged, H6720 Szeged, Hungary

Abstract

Single-stranded DNA-binding protein (SSB) is a bacterial interaction hub and an appealing target for antimicrobial therapy. Understanding the structural adaptation of the disordered SSB C-terminus (SSB-Ct) to DNA metabolizing enzymes (e.g., ExoI and RecO) is essential for designing high-affinity SSB mimetic inhibitors. Molecular dynamics simulations revealed the transient interactions of SSB-Ct with two hot spots on ExoI and RecO. The residual flexibility of the peptide–protein complexes allows adaptive molecular recognition. Scanning with non-canonical amino acids revealed that modifications at both termini of SSB-Ct could increase the affinity, supporting the two-hot-spot binding model. Combining unnatural amino acid substitutions on both segments of the peptide resulted in enthalpy-enhanced affinity, accompanied by enthalpy–entropy compensation, as determined by isothermal calorimetry. NMR data and molecular modeling confirmed the reduced flexibility of the improved affinity complexes. Our results highlight that the SSB-Ct mimetics bind to the DNA metabolizing targets through the hot spots, interacting with both of segments of the ligands.

Funder

National Research, Development and Innovation Office of Hungary

Publisher

MDPI AG

Subject

Pharmaceutical Science

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