A Single L- to D-Substitution in Piscidin-2s Creates an N -Terminal Aromatic Anchor That Enhances Membrane Interaction and Antibacterial Activity
K. R. Souza, L. O. Nunes, T. L. Santos, G. P. Araújo, E. S. Salnikov, W. G. Lima, V. H. O. Munhoz, M. E. Lima, C. Aisenbrey, J. M. Resende, B. Bechinger, R. M. VerlyAbstract
Stereochemical modification represents a powerful strategy for optimizing the therapeutic potential of antimicrobial peptides. Herein, we present a comprehensive structural and biophysical characterization of ecPis-2s and its epimerized analog, d-ecPis-2s, featuring a single d-F substitution. Although both peptides possess identical net charges and global hydrophobicity, our results reveal that the d-substitution acts as a conformational switch altering membrane interaction dynamics and antimicrobial efficacy. CD and solution NMR spectroscopy demonstrate that d-ecPis-2s maintains a similar overall helical character but adopts a distinctive N-terminal structural bend. Structural refinements and topology studies based on solid-state NMR elucidated that d-configuration at position 2 promotes a deeper sequestration of the N-terminal aromatic triad (F1−F3) into the hydrophobic membrane core. This aromatic anchor drives the peptide backbone and consecutively the aromatic side chains into the lipid bilayer, enhancing membrane tension, pore-forming kinetics and lipid packing disruption, which correlates directly with increased antimicrobial activity.