Functional Effects of ARV-1502 Analogs Against Bacterial Hsp70 and Implications for Antimicrobial Activity

Alexandra Brakel1,2, Lisa Kolano1,2, Carl N Kraus3

  • 1Faculty of Chemistry and Mineralogy, Institute of Bioanalytical Chemistry, Universität Leipzig, Leipzig, Germany.

Frontiers in Chemistry
|February 28, 2022
PubMed

Insights

Researchers modified antimicrobial peptide ARV-1502 to improve binding to bacterial heat shock protein DnaK. Analogs showed varied effects on DnaK activity and enhanced antimicrobial properties against Staphylococcus aureus.

Area of Science:

  • Biochemistry
  • Molecular Biology
  • Medicinal Chemistry

Background:

  • Antimicrobial peptides (AMPs) are crucial in innate immunity.
  • The bacterial chaperone DnaK is a validated therapeutic target.
  • ARV-1502 is a proline-rich AMP analog designed to target DnaK.

Purpose of the Study:

  • To design and synthesize ARV-1502 analogs with enhanced DnaK binding.
  • To investigate the impact of these analogs on DnaK chaperone system activity.
  • To evaluate the antimicrobial efficacy of modified peptides against Gram-negative and Gram-positive bacteria.

Main Methods:

  • Design of 182 ARV-1502 analogs by modifying residues.
  • Solid-phase peptide synthesis and purification.
  • Assays for DnaK binding (fluorescence polarization), chaperone activity (refolding, ATPase), and antimicrobial activity (MIC determination).

Main Results:

  • 15 analogs exhibited improved DnaK binding, characterized by increased hydrophobicity.
  • Hydrophobic analogs inhibited protein refolding by up to 64% but had minor effects on ATPase activity.
  • Aspartate-substituted analogs significantly altered ATPase activity differently in E. coli and S. aureus, with notable antimicrobial improvements against S. aureus (MIC reduced to 16 µg/mL).

Conclusions:

  • ARV-1502 analogs can be optimized for DnaK binding and chaperone inhibition.
  • Modifications influence chaperone activity and antimicrobial spectrum.
  • This study identifies key substitutions for developing novel DnaK-targeting antimicrobial agents.

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