Repository of Research and Investigative Information

Repository of Research and Investigative Information

Shahid Sadoughi University of Medical Sciences

3D Printing of Alginate/Chitosan-Based Scaffold Empowered by Tyrosol-Loaded Niosome for Wound Healing Applications: In Vitro and In Vivo Performances

(2024) 3D Printing of Alginate/Chitosan-Based Scaffold Empowered by Tyrosol-Loaded Niosome for Wound Healing Applications: In Vitro and In Vivo Performances. Acs Applied Bio Materials. pp. 1449-1468. ISSN 2576-6422

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Abstract

This study introduces a tyrosol-loaded niosome integrated into a chitosan-alginate scaffold (Nio-Tyro@CS-AL), employing advanced electrospinning and 3D printing techniques for wound healing applications. The niosomes, measuring 185.40 +/- 6.40 nm with a polydispersity index of 0.168 +/- 0.012, encapsulated tyrosol with an efficiency of 77.54 +/- 1.25. The scaffold's microsized porous structure (600-900 mu m) enhances water absorption, promoting cell adhesion, migration, and proliferation. Mechanical property assessments revealed the scaffold's enhanced resilience, with niosomes increasing the compressive strength, modulus, and strain to failure, indicative of its suitability for wound healing. Controlled tyrosol release was demonstrated in vitro, essential for therapeutic efficacy. The scaffold exhibited significant antibacterial activity against Pseudomonas aeruginosa and Staphylococcus aureus, with substantial biofilm inhibition and downregulation of bacterial genes (ndvb and icab). A wound healing assay highlighted a notable increase in MMP-2 and MMP-9 mRNA expression and the wound closure area (69.35 +/- 2.21) in HFF cells treated with Nio-Tyro@CS-AL. In vivo studies in mice confirmed the scaffold's biocompatibility, showing no significant inflammatory response, hypertrophic scarring, or foreign body reaction. Histological evaluations revealed increased fibroblast and macrophage activity, enhanced re-epithelialization, and angiogenesis in wounds treated with Nio-Tyro@CS-AL, indicating effective tissue integration and repair. Overall, the Nio-Tyro@CS-AL scaffold presents a significant advancement in wound-healing materials, combining antibacterial properties with enhanced tissue regeneration, and holds promising potential for clinical applications in wound management.

Item Type: Article
Keywords: wound dressing 3D printing antibacterialand antibiofilm activity tyrosol chitosan-alginatescaffold chitosan nanoparticles enhanced antibacterial antimicrobial activity antioxidant activity essential oils alginate formulation inhibition hydrogel biofilms Science & Technology - Other Topics Materials Science
Page Range: pp. 1449-1468
Journal or Publication Title: Acs Applied Bio Materials
Journal Index: WoS
Volume: 7
Number: 3
Identification Number: https://doi.org/10.1021/acsabm.3c00814
ISSN: 2576-6422
Depositing User: ms soheila Bazm
URI: http://eprints.ssu.ac.ir/id/eprint/33227

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