Dual-Crosslinked Sesbania Gum-Derived Antibacterial Hydrogel Enriched with Multiple Active Sites for Efficient Skin Tissue Engineering

Abstract Sesbania gum (SG) represents a promising polysaccharide feedstock for hydrogels applied in skin tissue engineering, yet its practical utilization is limited by weak mechanical performance, severe molecular self-aggregation and insufficient chemical modifiability. Herein, a SG-derived antibacterial hydrogel (SGEC) with a well-defined three-dimensional porous network was fabricated via a dual-crosslinking route relying on epichlorohydrin covalent crosslinking and subsequent Cu2+ metal coordination. Benefiting from this dual-crosslinking design, SGEC possesses adjustable porous architectures and prominent broad-spectrum bactericidal capacity, capable of eradicating pathogenic bacteria at concentrations over 106 CFU/mL, including Escherichia coli, Staphylococcus aureus, Bacillus cereus and Bacillus anthracis. In vivo infected wound assays further verified that SGEC efficiently suppresses wound bacterial colonization, speeds up tissue repair and facilitates complete epidermal regeneration. This work overcomes the inherent drawbacks of neat SG hydrogels and delivers a viable strategy for advancing polysaccharide hydrogels toward clinical biomedical wound treatment.

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Publication Details

Journal
Biomacromolecules
Published
2026-09-30
DOI
https://doi.org/10.1021/acs.biomac.6c01911
Primary Topic
Wound Healing and Treatments
Type
article
Field-Weighted Citation Impact
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Dual-Crosslinked Sesbania Gum-Derived Antibacterial Hydrogel Enriched with Multiple Active Sites for Efficient Skin Tissue Engineering

Alideertu Dong, Shi Lan, Tingrui Yuan, Xianliang Sheng et al.
Biomacromolecules
Wound Healing and Treatments
article

Dual-Crosslinked Sesbania Gum-Derived Antibacterial Hydrogel Enriched with Multiple Active Sites for Efficient Skin Tissue Engineering

Alideertu Dong, Shi Lan, Tingrui Yuan, Xianliang Sheng, Jing Yan
article en

Abstract

Abstract Sesbania gum (SG) represents a promising polysaccharide feedstock for hydrogels applied in skin tissue engineering, yet its practical utilization is limited by weak mechanical performance, severe molecular self-aggregation and insufficient chemical modifiability. Herein, a SG-derived antibacterial hydrogel (SGEC) with a well-defined three-dimensional porous network was fabricated via a dual-crosslinking route relying on epichlorohydrin covalent crosslinking and subsequent Cu2+ metal coordination. Benefiting from this dual-crosslinking design, SGEC possesses adjustable porous architectures and prominent broad-spectrum bactericidal capacity, capable of eradicating pathogenic bacteria at concentrations over 106 CFU/mL, including Escherichia coli, Staphylococcus aureus, Bacillus cereus and Bacillus anthracis. In vivo infected wound assays further verified that SGEC efficiently suppresses wound bacterial colonization, speeds up tissue repair and facilitates complete epidermal regeneration. This work overcomes the inherent drawbacks of neat SG hydrogels and delivers a viable strategy for advancing polysaccharide hydrogels toward clinical biomedical wound treatment.

Biomacromolecules
Inner Mongolia Agricultural University (CN), Inner Mongolia University (CN)
Openalex Percentile: Top 15%
Wound Healing and Treatments
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Dual-Crosslinked Sesbania Gum-Derived Antibacterial Hydrogel Enriched with Multiple Active Sites for Efficient Skin Tissue Engineering — Alideertu Dong, Shi Lan, et al. · Biomacromolecules (2026) | TGRS Research Map | TGRS