A computationally optimized peptide (KI17) derived from Talisia esculenta with potent action against multidrug-resistant pathogens
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Antimicrobial peptides (AMPs) offer a promising solution against multidrug-resistant pathogens. However, their
clinical application remains challenging due to limitations, including toxicity, proteolytic instability, and limited
bioavailability. Here, we present KI17, a rationally designed AMP derived from GL18, a peptide fragment from
Talisia esculenta. KI17 was optimized for enhanced charge, hydrophobicity, and α-helical propensity using in
silico and physicochemical strategies. Molecular dynamics simulations, circular dichroism and nuclear magnetic
resonance structural analyses revealed that KI17 adopts a flexible conformation in solution, but stabilizes into an
amphipathic α-helix (Val2-Arg11) in membrane-mimetic environments. KI17 displayed potent, broad-spectrum
antibacterial activity, with minimum inhibitory concentration (MIC) values ranging from 8 to 16 μmol L− 1,
maintained efficacy under physiological salt conditions, and exhibited synergistic effects when combined with
ciprofloxacin. Bacterial killing kinetics and Sytox Green uptake assays revealed rapid bacterial killing, consistent
with immediate membrane permeabilization, confirming a membranolytic mechanism of action. Notably, KI17
disrupted biofilms of Staphylococcus aureus and Acinetobacter baumannii while demonstrating a half-maximal
hemolytic concentration (HC50) of 247 μmol L− 1 and a half-maximal inhibitory concentration (IC50) of 120
μmol L− 1 (erythrocyte hemolysis and BV-2 cells), as well as no adverse effects in Tenebrio molitor larvae at 10 ×
MIC. These findings position the KI17 peptide as a structurally stable, membrane-targeting AMP with high
selectivity for bacterial cells, thus overcoming common clinical limitations of such peptides, including salt
tolerance and biofilm resistance. This study underscores the power of bioinformatics-guided design to accelerate
the translation of AMPs into therapeutic candidates.
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PEREIRA, Ana Paula Ramos et al. A computationally optimized peptide (KI17) derived from Talisia esculenta with potent action against multidrug-resistant pathogens. Biochimica et Biophysica Acta: general subjects, Amsterdam, v. 1870, n. 6, e130946, 2026. DOI: 10.1016/j.bbagen.2026.130946. Disponível em: https://www.sciencedirect.com/science/article/pii/S0304416526000462. Acesso em: 17 set. 2026.