Effect of Leu/Val Mutation on the Energetics of Antimicrobial Peptide:Micelle Binding

Suvankar Ghosh1, Sunanda Chatterjee2, Priyadarshi Satpati1

  • 1Department of Biosciences and Bioengineering, Indian Institute of Technology Guwahati, Guwahati 781039, Assam, India.

Insights

This study reveals how leucine-rich antimicrobial peptides (AMPs) bind to membranes, explaining their higher activity and toxicity compared to valine analogues. Molecular dynamics simulations show specific mutations fine-tune peptide-membrane interactions and selectivity.

Area of Science:

  • Biophysics
  • Computational Chemistry
  • Antimicrobial Peptides

Background:

  • Synthetic leucine-rich antimicrobial peptides (AMPs) show higher activity and cytotoxicity than their valine analogues.
  • The thermodynamic basis for differential peptide-membrane interactions and selectivity remains unclear.
  • Understanding these energetics is crucial for designing potent and selective therapeutic AMPs.

Purpose of the Study:

  • To quantitatively estimate the binding affinity of leucine-rich vs. valine-rich peptides to membrane mimics.
  • To elucidate the energetics underlying peptide selectivity by SDS (bacterial) and DPC (eukaryotic) micelles.
  • To correlate molecular interactions with experimental observations of AMP activity and toxicity.

Main Methods:

  • Molecular dynamics free energy simulations were employed.
  • Simulations assessed peptide discrimination by SDS and DPC micelles based on Leu/Val mutations.
  • Thermodynamic stability of peptide:micelle complexes was quantitatively analyzed.

Main Results:

  • Leucine-containing peptides (LL-14) consistently showed preferential binding to both SDS and DPC micelles over valine analogues.
  • N-terminal Leu → Val mutation (L1V) yielded the highest peptide selectivity by modulating electrostatic interactions differently in SDS and DPC.
  • DPC micelles exhibited significantly higher selectivity (25 kcal/mol) for LL-14 over VV-14 compared to SDS micelles (19 kcal/mol), driven by greater hydrophobic interaction loss in DPC upon mutation.

Conclusions:

  • The study establishes a direct link between the energetics of peptide-micelle interactions and experimental observations of AMP activity and toxicity.
  • Specific Leu/Val mutation positions critically influence peptide selectivity, with N-terminal mutations offering fine-tuning of electrostatic interactions.
  • Differential hydrophobic and electrostatic interactions govern the distinct selectivity mechanisms of SDS and DPC micelles for leucine-rich AMPs.