Injectable self-healing dynamic aldehyde-gellan gum-based hydrogel nanocomposite with enhanced antibacterial and antioxidant wound dressing to alleviate chronic skin wound

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dc.contributor.author Dan, Aniruddha
dc.contributor.author Singh, Hemant
dc.contributor.author Shah, Tishira K.
dc.contributor.author Sheikh, Wajid Mohammad
dc.contributor.author Shafi, Majid
dc.contributor.author Laxmanan, Karthikeyan
dc.contributor.author Jan, Jasmeena
dc.contributor.author Hassan, Shabir
dc.contributor.author Bashir, Showkeen Muzamil
dc.contributor.author Dhanka, Mukesh
dc.coverage.spatial United States of America
dc.date.accessioned 2025-06-12T06:23:41Z
dc.date.available 2025-06-12T06:23:41Z
dc.date.issued 2025-08
dc.identifier.citation Dan, Aniruddha; Singh, Hemant; Shah, Tishira K.; Sheikh, Wajid Mohammad; Shafi, Majid; Laxmanan, Karthikeyan; Jan, Jasmeena; Hassan, Shabir; Bashir, Showkeen Muzamil and Dhanka, Mukesh, "Injectable self-healing dynamic aldehyde-gellan gum-based hydrogel nanocomposite with enhanced antibacterial and antioxidant wound dressing to alleviate chronic skin wound", Journal of Drug Delivery Science and Technology, DOI: 10.1016/j.jddst.2025.107075, vol. 110, Aug. 2025.
dc.identifier.issn 1773-2247
dc.identifier.issn 2588-8943
dc.identifier.uri https://doi.org/10.1016/j.jddst.2025.107075
dc.identifier.uri https://repository.iitgn.ac.in/handle/123456789/11513
dc.description.abstract The difficult-to-heal wounds present a significant challenge for current treatment modalities due to factors such as impaired tissue microenvironments, disrupted inflammatory balance, impaired cellular proliferation, and opportunistic bacterial infections. Drawing inspiration from the biocompatibility of biological macromolecules, we fabricated injectable nanocomposite hydrogels using oxidized gellan gum, gelatin, and polyethyleneimine (PEI). The hydrogels demonstrated remarkable shear-thinning properties due to the reversible imine bonds. The incorporation of quercetin-loaded zein nanoparticles (QZnps) further enhanced the bioactivity of the hydrogels, including improved cell proliferation, antibacterial efficacy, and controlled release of quercetin in vitro. In vivo studies demonstrated that these engineered nanocomposite hydrogels significantly accelerated wound contraction rates in full-thickness wounds in rats. This was achieved through enhanced collagen deposition, optimized re-epithelialization, tissue remodeling, and the restoration of inflammatory balance. These dynamic QZnps-loaded nanocomposite hydrogels offer a promising approach for the treatment of chronic full-thickness wounds, obviating the need for additional antibiotics, traditional drugs, or exogenous cytokines. This versatile hydrogel system holds great potential for the effective management of chronic full-thickness wound healing.
dc.description.statementofresponsibility by Aniruddha Dan, Hemant Singh, Tishira K. Shah, Wajid Mohammad Sheikh, Majid Shafi, Karthikeyan Laxmanan, Jasmeena Jan, Shabir Hassan, Showkeen Muzamil Bashir and Mukesh Dhanka
dc.format.extent vol. 110
dc.language.iso en_US
dc.publisher Elsevier
dc.subject Oxidized gellan gum
dc.subject Injectable
dc.subject Wound healing
dc.subject Quercetin
dc.subject Zein nanoparticle
dc.title Injectable self-healing dynamic aldehyde-gellan gum-based hydrogel nanocomposite with enhanced antibacterial and antioxidant wound dressing to alleviate chronic skin wound
dc.type Article
dc.relation.journal Journal of Drug Delivery Science and Technology


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