Aug 2026· Journal of materials chemistry. B· Vol 14, pp. 10928-10937· 0 citations
Medicine
TL;DR
PAHPF127 is established as a stable, antimicrobial, and pro-regenerative material for wound care as well as biocompatibility and regenerative capacity.
Abstract
This study presents a thermosensitive Pluronic F127 (PF127) hydrogel system for sustained delivery of cold atmospheric plasma (CAP)-generated reactive oxygen and nitrogen species (RONS). Gas-liquid interfacial reactions during plasma treatment enable substantial aqueous RONS loading, yielding the plasma-activated PF127 hydrogel (PAHPF127) with potent antibacterial efficacy. Complete inactivation of 1 × 106 CFU Staphylococcus aureus and Escherichia coli was achieved at 37 °C, with bactericidal activity retained beyond 8 h at physiological temperature and 7 days at 4 °C. PAHPF127 further demonstrated biocompatibility and regenerative capacity, promoting HaCaT migration and 89% in vitro wound closure within 48 h. In a Staphylococcus aureus-infected rat wound model, PAHPF127 accelerated wound contraction, suppressed bacterial colonization, and enhanced re-epithelialization with collagen deposition. These findings establish PAHPF127 as a stable, antimicrobial, and pro-regenerative material for wound care.
This multifunctional hydrogel provides a promising strategy for diabetic wound management by integrating antibacterial potential and tissue regeneration by integrating antibacterial potential and tissue regeneration.
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In this study, a multifunctional composite hydrogel was developed by combining Sodium Alginate (Alg) with synthesized Poly(propylene glycol) phosphazene (PGP) for infected wound healing. Structural characterizations confirmed successful matrix formation, yielding a tunable macroporous network with excellent swelling ca...
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