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September 16, 2025ACS Applied Materials & Interfaces8 citations

Quaternary Ammonium Chitosan Hydrogel Platform with Zinc-Enhanced Bioactivity toward Scar-Free Wound Healing

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LNLei NieXDXiaoyue DingMLMan Li

Key Points

  • The hydrogel showed a remarkable antibacterial activity with inhibition rates above 76% for key bacteria.
  • In vivo results revealed a significant wound area reduction to 2.33 mm2 in treated groups compared to 16.89 mm2 in controls.
  • The hydrogel's formulation integrates polysaccharides and nanoparticles to enhance collagen deposition and limit scar formation.
  • Reduced expression of fibrosis markers indicates that the hydrogel effectively supports scar-free wound healing.

Abstract

Scar-free wound regeneration remains a challenge, as it requires controlled collagen and extracellular matrix deposition to prevent excessive fibrosis. To overcome this issue, wound dressings that incorporate hydrogels and possess superior biochemical and mechanical properties integrated with bioactive compounds have been explored. In this paper, the composite hydrogel has been developed using O-chitosan quaternary ammonium salt (O-HACC) and 3-maleimidopropionic acid-modified pullulan polysaccharide (PL-MA), with incorporated polydopamine-loaded asiaticoside Zif-8 nanoparticles. The hydrogel demonstrated efficient antibacterial activity, with inhibition rates of 76.6 ± 1.6% against Staphylococcus aureus and 69.9 ± 7.3% againstEscherichia coli, favourable self-healing (within 1 min), and adhesive properties on various substrates, including skin, glass, plastic, and metal. The in vivo experiments showed accelerated healing, with the wound area reduced to 2.33 ± 0.18 mm2 by day 12 in the AA@HP11-treated group compared with 16.89 ± 0.57 mm2 in the control group (p < 0.001). The in vivo experiments also demonstrated the reduced expression of α-SMA and TGF-β1, indicating limited fibrosis. Additionally, HE and Masson stainings indicated that zinc particle-embedded hydrogel enhanced wound repair, with increased collagen deposition by day 6, followed by a subsequent decrease by day 12, suggesting a lower risk of scar formation. These findings suggest that the fabricated hydrogel may contribute to improved wound healing outcomes and reduced fibrosis, highlighting its potential for future scar reduction therapies.

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Cite This Study

Nie et al. (2025) studied this question.

synapsesocial.com/papers/68d44f8331b076d99fa57033https://doi.org/10.1021/acsami.5c13677
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