Engineering a bacterial polysaccharide-based metal-organic framework-enhanced bioactive 3D hydrogel for accelerated full-thickness wound healing

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dc.contributor.author Dan, Aniruddha
dc.contributor.author Panigrahi, Ankita
dc.contributor.author Singh, Hemant
dc.contributor.author Murali, Varsha
dc.contributor.author Meena, Manisha
dc.contributor.author Goyal, Prateek
dc.contributor.author Laxmanan, Karthikeyan
dc.contributor.author Misra, Superb K.
dc.contributor.author Varghese, Nibu
dc.contributor.author Babu, Sharlene Sara
dc.contributor.author Dalvi, Yogesh B.
dc.contributor.author Dhanka, Mukesh
dc.coverage.spatial United Kingdom
dc.date.accessioned 2025-06-12T06:23:41Z
dc.date.available 2025-06-12T06:23:41Z
dc.date.issued 2025-05
dc.identifier.citation Dan, Aniruddha; Panigrahi, Ankita; Singh, Hemant; Murali, Varsha; Meena, Manisha; Goyal, Prateek; Laxmanan, Karthikeyan; Misra, Superb K.; Varghese, Nibu; Babu, Sharlene Sara; Dalvi, Yogesh B. and Dhanka, Mukesh, "Engineering a bacterial polysaccharide-based metal-organic framework-enhanced bioactive 3D hydrogel for accelerated full-thickness wound healing", Biomaterials Science, DOI: 10.1039/D5BM00133A, May 2025.
dc.identifier.issn 2047-4830
dc.identifier.issn 2047-4849
dc.identifier.uri https://doi.org/10.1039/D5BM00133A
dc.identifier.uri https://repository.iitgn.ac.in/handle/123456789/11514
dc.description.abstract Hydrogels offer numerous advantages in wound healing, making them a promising alternative to traditional wound dressings. Their biocompatibility and high water content closely resemble natural biological tissues, creating a moist environment that accelerates cell proliferation and tissue repair. Hydrogels maintain optimal hydration levels, preventing wound desiccation and promoting faster healing. Furthermore, their ability to incorporate and deliver therapeutic agents such as antibiotics, anti-inflammatory drugs, or growth factors provides a multifunctional platform for enhanced wound care. Despite these advantages, current clinical wound-dressing materials often fall short in addressing the complexities of wound healing. Hydrogels, with their customizable properties and potential for integration with emerging technologies, represent a significant opportunity to overcome these limitations and improve clinical outcomes in wound management. Herein, we developed a multi-functional Cu-MOF and tannic acid-enriched polymeric hydrogel dressing composed of gellan-gum/zein for full-thickness wound repair. The physical interactions, including electrostatic interaction and hydrogen bonding between the hydrogel components, form a stable hydrogel matrix. The hydrogel exhibits antioxidant properties and antibacterial activity, and is hemocompatible and biocompatible against L929 fibroblast cells. Furthermore, the fabricated hydrogel dressing improvised a full-thickness wound-healing process in rats. Only 1.6% of the wound area was remaining in the case of GG-Z-TA/M1-treated full-thickness wounds in rats. Histopathology images suggest the Cu-MOF-loaded hydrogels aided in extensive re-epithelialization, neovascularization, and hair follicle formation to accelerate the wound-healing process.
dc.description.statementofresponsibility by Aniruddha Dan, Ankita Panigrahi, Hemant Singh, Varsha Murali, Manisha Meena, Prateek Goyal, Karthikeyan Laxmanan, Superb K. Misra, Nibu Varghese, Sharlene Sara Babu, Yogesh B. Dalvi and Mukesh Dhanka
dc.language.iso en_US
dc.publisher Royal Society of Chemistry
dc.title Engineering a bacterial polysaccharide-based metal-organic framework-enhanced bioactive 3D hydrogel for accelerated full-thickness wound healing
dc.type Article
dc.relation.journal Biomaterials Science


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