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December 14, 2025Advanced Science6 citationsOpen Access

Mechanism‐Driven Screening of Membrane‐Targeting and Pore‐Forming Antimicrobial Peptides

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JLJiaxuan LiCYChenguang YangRDRuihan Dong

Key Points

  • To discover antimicrobial peptides (AMPs) through a mechanism-driven screening approach that considers their action mechanisms.
  • Utilized machine learning-based computational models for peptide screening.
  • Analyzed metaproteomes from poison frogs, African clawed frogs, and human skin.
  • Conducted liposome leakage assays to test membrane disruption by peptides.
  • Identified seven antimicrobial peptides with minimal hemolysis and cytotoxicity.
  • Three peptides displayed broad-spectrum activity against Gram-positive and Gram-negative bacteria.
  • Confirmed pore formation by peptides through electrophysiological measurements.

Abstract

Abstract The rise of antibiotic resistance has created an urgent need for the discovery of new antimicrobial peptides (AMPs), prompting various screening strategies. However, the mechanisms of action of AMPs are often overlooked during screening and optimization. Here, a mechanism‐driven screening approach is introduced using machine learning‐based computational models to identify peptide sequences that target bacterial membranes and form pores. From the metaproteomes of poison frogs, African clawed frogs, and human skin, seven peptides are identified and validated, each exhibiting antimicrobial activity with minimal hemolysis and cytotoxicity. These peptides demonstrated membrane disruption in liposome leakage assays, with three showing broad‐spectrum activity against Gram‐positive and Gram‐negative bacteria. Single‐molecule experiments confirmed peptide oligomerization on membranes, while electrophysiological measurements verified pore formation by the three broad‐spectrum AMPs, suggesting a correlation between pore‐forming ability and broad‐spectrum antimicrobial activity. This approach offers a promising mechanism‐driven strategy for discovering new antimicrobial agents to combat antibiotic resistance.

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Cite This Study

Li et al. (2025) studied this question.

synapsesocial.com/papers/6941aaa70f5af7fd17df4b2dhttps://doi.org/10.1002/advs.202516470
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