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Non-Covalent Interaction Induced Supramolecular Precipitate with Hetero-Motif Polyionic Junction for Durable Antimicrobial Activity and Infected Wound Healing. | LitMetric

Non-Covalent Interaction Induced Supramolecular Precipitate with Hetero-Motif Polyionic Junction for Durable Antimicrobial Activity and Infected Wound Healing.

Adv Healthc Mater

Fujian-Taiwan Science and Technology Cooperation Base of Biomedical Materials and Tissue Engineering, Engineering Research Center of Industrial Biocatalysis, Fujian Provincial Key Laboratory of Advanced Materials Oriented Chemical Engineering, College of Chemistry and Materials Science, Fujian Normal University, Fuzhou, Fujian, 350007, China.

Published: March 2025

The advent of the COVID-19 pandemic has underscored the pressing demand for antimicrobial materials that offer both durability and efficacy. Herein, the successful design and fabrication of a "water-insoluble" supramolecular precipitate is reported through the "bottom-up" assembly of polyanion sodium alginate (SA) with the antimicrobial motifs A2G and Cu. This innovative hetero-motif polyionic junction leverages a network of hydrogen bonds aligning with electrostatic interactions, and hydrophobic effects to mitigate the rapid release of active components, providing exceptional long-term antimicrobial efficacy against Staphylococcus aureus (S. aureus), Escherichia coli (E. coli), and Candida albicans (C. albicans). Specifically, it retains an impressive 99.9% efficacy against S. aureus even after enduring 10 successive wash cycles. The hydroxyl groups in A2G-Cu-SA confer exceptional adhesion to a wide array of substrates. This robust adherence is complemented by its enduring antibacterial properties, with the material maintaining a 99.9% efficacy rate after being submerged in water for an extended period of 100 days. In vivo and in vitro studies substantiate the biocompatibility of A2G-Cu-SA, while its clinical potential is evidenced by the enhanced healing of S. aureus-infected wounds upon titanium sheet coating. This innovation meets the current need for effective antimicrobials and contributes to sustainable medical advancements.

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Source
http://dx.doi.org/10.1002/adhm.202404791DOI Listing

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