Antimicrobial Peptide‐Peptoid Macrocycles from the Polymyxin B2 Chemical Space

E Etienne Bonvin (Department of Chemistry Biochemistry and Pharmaceutical Sciences University of Bern Freiestrasse 3 Bern CH‐3012 Switzerland) M Markus Orsi (Department of Chemistry Biochemistry and Pharmaceutical Sciences University of Bern Freiestrasse 3 Bern CH‐3012 Switzerland) T Thierry Paschoud (Department of Chemistry Biochemistry and Pharmaceutical Sciences University of Bern Freiestrasse 3 Bern CH‐3012 Switzerland) A Ashvin Gopalasingam (Department of Chemistry Biochemistry and Pharmaceutical Sciences University of Bern Freiestrasse 3 Bern CH‐3012 Switzerland) J Jérémie Reusser (Department of Chemistry Biochemistry and Pharmaceutical Sciences University of Bern Freiestrasse 3 Bern CH‐3012 Switzerland) T Thilo Köhler (Department of Microbiology and Molecular Medicine University of Geneva Geneva CH‐1211 Switzerland) C Christian van Delden (Department of Microbiology and Molecular Medicine University of Geneva Geneva CH‐1211 Switzerland) J Jean‐Louis Reymond (Department of Chemistry Biochemistry and Pharmaceutical Sciences University of Bern Freiestrasse 3 Bern CH‐3012 Switzerland)

Abstract

AbstractMacrocycles have emerged as important new modalities in drug discovery. In the context of addressing the global threat of antimicrobial resistance, here we used a genetic algorithm as a computational tool to evolve peptide‐peptoid macrocycles to resemble polymyxin B2 (PMB2), a macrocyclic lipopeptide natural product used as last resort antibiotic. Synthesis and testing of 41 PMB2 analogs revealed several peptide‐peptoid macrocycles showing strong, although salt sensitive, activity against Escherichia coli and multidrug‐resistant strains of Pseudomonas aeruginosa, high serum stability, and lower toxicity to kidney cells compared to PMB2. These macrocycles resembled PMB2 in terms of outer membrane permeabilization, inner membrane depolarization, lipopolysaccharide binding, and loss of activity when linearized, but, unlike PMB2, induced aggregation of intracellular contents, an effect was reported for other antimicrobial peptoids. These experiments exemplify a combined computational and experimental approach which might be generally useful to explore the chemical space of macrocyclic peptide natural products.

Article Details

Volume / Issue Vol. 64, Issue 23
Published June 02, 2025
ISSN 1433-7851
Publisher Wiley

Journal Info

Angewandte Chemie International Edition

Wiley

ISSN: 1433-7851 Physical Sciences

Authors (8)

E

Etienne Bonvin

Department of Chemistry Biochemistry and Pharmaceutical Sciences University of Bern Freiestrasse 3 Bern CH‐3012 Switzerland

M

Markus Orsi

Department of Chemistry Biochemistry and Pharmaceutical Sciences University of Bern Freiestrasse 3 Bern CH‐3012 Switzerland

T

Thierry Paschoud

Department of Chemistry Biochemistry and Pharmaceutical Sciences University of Bern Freiestrasse 3 Bern CH‐3012 Switzerland

A

Ashvin Gopalasingam

Department of Chemistry Biochemistry and Pharmaceutical Sciences University of Bern Freiestrasse 3 Bern CH‐3012 Switzerland

J

Jérémie Reusser

Department of Chemistry Biochemistry and Pharmaceutical Sciences University of Bern Freiestrasse 3 Bern CH‐3012 Switzerland

T

Thilo Köhler

Department of Microbiology and Molecular Medicine University of Geneva Geneva CH‐1211 Switzerland

C

Christian van Delden

Department of Microbiology and Molecular Medicine University of Geneva Geneva CH‐1211 Switzerland

J

Jean‐Louis Reymond

Department of Chemistry Biochemistry and Pharmaceutical Sciences University of Bern Freiestrasse 3 Bern CH‐3012 Switzerland