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February 19, 2026Applied Biological Chemistry2 citationsOpen Access

A covalently crosslinked alginate hydrogel platform with alginate oligosaccharide for tunable mechanics and enhanced antibacterial function

YKYoung-Jun KimHPHyeyeon ParkYKYeonjong Koo

Key Points

  • The aim is to develop a covalently crosslinked alginate hydrogel to improve wound dressing performance by enhancing mechanical properties and antibacterial effects.
  • Developed covalent hydrogels using EDC/NHS chemistry with amino acid crosslinkers.
  • Incorporated alginate oligosaccharides at different concentrations.
  • Conducted microstructural analysis of hydrogels to assess pore networks and mechanical properties.
  • Covalent hydrogels showed reduced swelling and a compressive modulus of 2-5 kPa, closely matching skin elasticity.
  • AOS incorporation decreased re-swelling while preserving water retention capacity.
  • Antimicrobial peptide immobilization led to dose-dependent antibacterial activity, with AOS nearly doubling growth inhibition at lower peptide levels.

Abstract

Abstract The performance of wound dressings is closely linked to their ability to provide appropriate mechanical support, moisture retention, and antibacterial protection. Here, we report a covalently crosslinked alginate hydrogel dressing designed to overcome ion leaching associated with conventional Ca 2 ⁺-crosslinked alginate and to enhance functional molecule efficacy through alginate oligosaccharide (AOS) incorporation. Covalent hydrogels were prepared using EDC/NHS chemistry with amino acid–based crosslinkers, and AOS was conjugated at varying concentrations. Compared with ionically crosslinked gels, covalent hydrogels exhibited reduced swelling and a compressive modulus of 2–5 kPa with ~ 40% hysteresis, approaching the lower range of skin elasticity. Although increasing AOS content further decreased re-swelling after drying, water-retention capacity was largely preserved. An antimicrobial peptide was covalently immobilized onto the hydrogel surface, imparting dose-dependent antibacterial activity. Notably, AOS incorporation significantly enhanced antibacterial efficacy, nearly doubling growth inhibition at lower peptide concentrations. Microstructural analysis revealed dense pore networks in ionically crosslinked gels, whereas AOS conjugation did not induce substantial structural changes in covalent hydrogels. This study demonstrates that AOS-conjugated, covalently crosslinked alginate hydrogels provide tunable mechanical properties and amplified antibacterial performance, offering a versatile platform for next-generation functional wound dressings. Graphical abstract

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Cite This Study

Kim et al. (2026) studied this question.

synapsesocial.com/papers/6996a7d3ecb39a600b3edd4chttps://doi.org/10.1186/s13765-026-01086-1
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