Dual-Mechanism Antimicrobial Peptides from a Nature-Inspired Scaffold
Journal article, 2026

Antimicrobial peptides are promising alternatives to conventional antibiotics, yet systematic strategies to enhance their potency and elucidate their mechanisms of action remain limited. Here, we generated and evaluated a focused library of 20 peptides derived from the lead peptide L3. Across clinically relevant pathogens, including Escherichia coli, Klebsiella pneumoniae, Staphylococcus aureus, and Candida albicans, several variants showed enhanced antibacterial activity, reducing MIC values to as low as 32 μg/mL (G2-4). Additional candidates (G1-8, G2-1, G2-2, G2-10) achieved MICs of 64 μg/mL against E. coli. Studies in environmental Escherichia isolates revealed species-specific susceptibility patterns. Mechanistic investigations demonstrated minimal membrane-lytic activity at concentrations exceeding their MICs, indicating that membrane disruption is not their primary mode of action. In contrast, in vitro transcription/translation assays demonstrated potent inhibition of protein expression. These results demonstrate how targeted sequence refinement can substantially enhance antimicrobial potency while modulating interactions with bacterial membranes and the transcription/translation machinery.

Author

Luisa I. Beyer

University of Gothenburg

Johannes Thoma

University of Gothenburg

Silvana Lord Smits

University of Gothenburg

Annie Justh de Neczpal

University of Gothenburg

Hanna Mårtensson

University of Gothenburg

Molecular Bioscience

Julia Leandersson

University of Gothenburg

Maya Tabbaa

University of Gothenburg

Anne Farewell

University of Gothenburg

Asa Sjoling

University of Gothenburg

Alexandra Stubelius

Molecular Bioscience

Alesia A. Tietze

University of Gothenburg

Journal of Medicinal Chemistry

0022-2623 (ISSN) 1520-4804 (eISSN)

Vol. 69 15 18580-18591

Subject Categories (SSIF 2025)

Molecular Biology

Infectious Medicine

DOI

10.1021/acs.jmedchem.6c00952

PubMed

42503637

More information

Latest update

8/24/2026