August 2026 in “Journal of Functional Biomaterials” In this study, researchers developed a collagen and bacterial cellulose-based dressing loaded with bacitracin, which exhibited enhanced antibacterial activity, improved wound healing, and reduced inflammation in a murine infected-wound model, suggesting its potential for clinical use in treating infected wounds.
August 2025 in “Rare Metals” In this study, carbon dots derived from metformin and dopamine (MD‐CDs) effectively promoted healing in bacterial-infected wounds by inhibiting infection, expediting inflammation-to-healing transition, enhancing cell proliferation and migration, and fostering collagen deposition and hair follicle regeneration.
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June 2025 in “Advanced Functional Materials” This study reports that a pH-responsive nanosilver platform improved wound healing in mouse and rabbit models by targeting bacteria and supporting tissue repair more effectively than traditional silver nanoparticles.
May 2026 in “Nature Communications” In this study, a self-adaptive nanozyme embedded in a madecassoside-enriched hydrogel demonstrated strong antibacterial efficacy and accelerated healing in wounds infected with drug-resistant bacteria, as evidenced by improved repair and regeneration in MRSA-infected mice and preclinical pig models.
January 2025 in “Regenerative Biomaterials” In this study, a cerium-polypeptide hydrogel was found to effectively treat MRSA-infected wounds by promoting faster wound repair and reducing inflammation compared to a standard hydrogel.