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Updated: Jan 27, 2026

Antimicrobial Characterization of Advanced Materials for Bioengineering Applications
Published on: August 4, 2018
Analysis of modular bioengineered antimicrobial lanthipeptides at nanoliter scale
Steven Schmitt1, Manuel Montalbán-López2, David Peterhoff3
1Department of Biosystems Science and Engineering, ETH Zürich, Basel, Switzerland.
Scientists engineered novel antimicrobial peptides by combining natural building blocks. A new high-throughput assay identified variants with enhanced activity against pathogenic bacteria, aiding future antibiotic drug discovery.
Area of Science:
- Biochemistry
- Molecular Biology
- Medicinal Chemistry
Background:
- Antibiotic resistance is a growing global health threat, necessitating the development of new antimicrobial agents.
- Ribosomally synthesized and post-translationally modified antimicrobial peptides (RiPPs) represent a promising class of natural products with potent antibacterial activities.
- Lanthipeptides, a subgroup of RiPPs, are characterized by the presence of lanthionine rings, which are crucial for their structure and function.
Purpose of the Study:
- To engineer novel antimicrobial peptides with improved or altered activity profiles.
- To develop a high-throughput screening method for efficient characterization of engineered peptides.
- To establish design guidelines for future identification of peptide-based anti-infectives.
Main Methods:
- Large-scale engineering of RiPPs through combinatorial shuffling of peptide modules from 12 natural lanthipeptides.
- Utilizing a promiscuous post-translational modification machinery for processing engineered peptides.
- Development and application of nanoFleming, a miniaturized and parallelized high-throughput inhibition assay for experimental characterization.
Main Results:
- Generation of new-to-nature lanthipeptide variants with distinct biochemical properties.
- Identification of over 100 hit molecules exhibiting antimicrobial activity.
- Discovery of variants with enhanced activity against pathogenic bacteria and shifted activity profiles.
Conclusions:
- Combinatorial engineering of RiPPs, coupled with high-throughput screening, is an effective strategy for discovering novel antimicrobial agents.
- The developed nanoFleming assay facilitates rapid and efficient evaluation of antimicrobial peptide candidates.
- Extrapolated design guidelines will accelerate the identification and optimization of peptide-based anti-infectives to combat antibiotic resistance.
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