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Self-assembling nanofibrous bacteriophage microgels as sprayable antimicrobials targeting multidrug-resistant bacteria

Food Science and Technology

Self-assembling nanofibrous bacteriophage microgels as sprayable antimicrobials targeting multidrug-resistant bacteria

L. Tian, L. He, et al.

Discover groundbreaking research by Lei Tian and colleagues at McMaster University on self-assembling nanofibrous bacteriophage microgels. These innovative, sprayable antimicrobials target multidrug-resistant bacteria, achieving impressive 6-log reduction in harmful E. coli on food products. Perfect for combating modern microbial challenges!

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~3 min • Beginner • English
Abstract
Nanofilamentous bacteriophages (bacterial viruses) are biofunctional, self-propagating, and monodisperse natural building blocks for virus-built materials. Minifying phage-built materials to microscale offers the promise of expanding the range function for these biomaterials to sprays and colloidal bioassays/biosensors. Here, we crosslink half a million self-organized phages as the sole structural component to construct each soft microgel. Through an in-house developed, biologics-friendly, high-throughput template method, over 35,000 phage-built microgels are produced from every square centimetre of a peelable microporous film template, constituting a 13-billion phage community. The phage-exclusive microgels exhibit a self-organized, highly-aligned nanofibrous texture and tunable auto-fluorescence. Further preservation of antimicrobial activity was achieved by making hybrid protein-phage microgels. When loaded with potent virulent phages, these microgels effectively reduce heavy loads of multidrug-resistant Escherichia coli O157:H7 on food products, leading to up to 6 logs reduction in 9 hours and rendering food contaminant free.
Publisher
Nature Communications
Published On
Dec 05, 2022
Authors
Lei Tian, Leon He, Kyle Jackson, Ahmed Saif, Shadman Khan, Zeqi Wan, Tohid F. Didar, Zeinab Hosseinidoust
Tags
nanofibrous
bacteriophage
microgels
antimicrobials
multidrug-resistant bacteria
E. coli
phage therapy
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