Structural Analysis and Activity Correlation of Amphiphilic Cyclic Antimicrobial Peptides Derived from the [W4R4] Scaffold

Molecules. 2023 Dec 12;28(24):8049. doi: 10.3390/molecules28248049.

Abstract

In our ongoing quest to design effective antimicrobial peptides (AMPs), this study aimed to elucidate the mechanisms governing cyclic amphiphilic AMPs and their interactions with membranes. The objective was to discern the nature of these interactions and understand how peptide sequence and structure influence antimicrobial activity. We introduced modifications into the established cyclic AMP peptide, [W4R4], incorporating an extra aromatic hydrophobic residue (W), a positively charged residue (R), or the unique 2,5-diketopiperazine (DKP). This study systematically explored the structure-activity relationships (SARs) of a series of cyclic peptides derived from the [W4R4] scaffold, including the first synthesis and evaluation of [W4R4(DKP)]. Structural, dynamic, hydrophobic, and membrane-binding properties of four cyclic peptides ([W4R4], [W5R4], [W4R5], [W4R4(DKP)]) were explored using molecular dynamics simulations within a DOPC/DOPG lipid bilayer that mimics the bacterial membrane. The results revealed distinct SARs linking antimicrobial activity to parameters such as conformational plasticity, immersion depth in the bilayer, and population of the membrane binding mode. Notably, [W4R5] exhibited an optimal "activity/binding to the bacterial membrane" pattern. This multidisciplinary approach efficiently decoded finely regulated SAR profiles, laying a foundation for the rational design of novel antimicrobial peptides.

Keywords: antimicrobial activity; membrane; molecular dynamics; peptide; structure-activity relationship.

MeSH terms

  • Amino Acid Sequence
  • Anti-Infective Agents* / pharmacology
  • Antimicrobial Cationic Peptides / chemistry
  • Bacteria / metabolism
  • Lipid Bilayers / chemistry
  • Peptides, Cyclic* / chemistry
  • Peptides, Cyclic* / pharmacology

Substances

  • Peptides, Cyclic
  • Antimicrobial Cationic Peptides
  • Anti-Infective Agents
  • Lipid Bilayers

Grants and funding

The biological activities reported in this study were supported by funds from Chapman University School of Pharmacy (KP). Molecular modeling work was supported by the Ministry of Science and Higher Education of the Russian Federation (Agreement No. 075-15-2020-773).