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Updated: Sep 19, 2025

Native Cell Membrane Nanoparticles System for Membrane Protein-Protein Interaction Analysis
Published on: July 16, 2020
Transformation from Hydrophilic Yet Membrane-Inactive Linear Chain Polymers to Membrane-Active Nanoantibiotics
Yunjiang Jiang1, Wan Zheng1, Keith Tran2
1Department of Cell Physiology & Molecular Biophysics, School of Medicine, Texas Tech University Health Sciences Center, Lubbock, Texas 79430, United States.
Abstract:
Although amphipathic membrane-active antimicrobials (MAAs) have the potential to thwart antimicrobial resistance (AMR), their clinical translation is challenging because the same hydrophobic interactions that disrupt bacterial membranes would also impartially debilitate mammalian cells. Herein, we demonstrate that assembly of hydrophilic linear chain polymers into star-shaped nanostructures creates locally concentrated multivalent interactions to pinch microbial membranes, which, together with the negative-curvature lipids rich in microbial membranes eventually induce a topological transition of the membranes to form pores beyond a critical multivalency (e.g., 6-arms). Our work illustrates a facile blueprint of building MAAs from hydrophilic and biocompatible polymers to selectively kill bacteria, including clinical AMR strains with low toxicity.
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