4.7 Article

Chitosan/Alginate Hydrogel Dressing Loaded FGF/VE-Cadherin to Accelerate Full-Thickness Skin Regeneration and More Normal Skin Repairs

Journal

Publisher

MDPI
DOI: 10.3390/ijms23031249

Keywords

hydrogel dressing; full-thickness skin regeneration; 3D cell culture; FGF; VE-cadherin

Funding

  1. National Natural Science Foundation of China [31870955]
  2. National Key Research and Development of China [2020YFC1107300-03]

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This study developed a series of complex hydrogel dressings through hydrogen bonds and covalent bonds between chitosan and alginate. The hydrogels exhibited adjustable physical properties and suitable pore sizes for cell adhesion. Chitosan endowed the hydrogels with hemostatic, antibacterial properties, and great cytocompatibility, addressing two main challenges in the wound healing process. Histological analysis and confocal images confirmed that the hydrogel dressings significantly accelerated the regeneration of damaged skin with proper epithelial thickness, new blood vessels, and hair follicles.
The process of full-thickness skin regeneration is complex and has many parameters involved, which makes it difficult to use a single dressing to meet the various requirements of the complete regeneration at the same time. Therefore, developing hydrogel dressings with multifunction, including tunable rheological properties and aperture, hemostatic, antibacterial and super cytocompatibility, is a desirable candidate in wound healing. In this study, a series of complex hydrogels were developed via the hydrogen bond and covalent bond between chitosan (CS) and alginate (SA). These hydrogels exhibited suitable pore size and tunable rheological properties for cell adhesion. Chitosan endowed hemostatic, antibacterial properties and great cytocompatibility and thus solved two primary problems in the early stage of the wound healing process. Moreover, the sustained cytocompatibility of the hydrogels was further investigated after adding FGF and VE-cadherin via the co-culture of L929 and EC for 12 days. The confocal 3D fluorescent images showed that the cells were spherical and tended to form multicellular spheroids, which distributed in about 40-60 mu m thick hydrogels. Furthermore, the hydrogel dressings significantly accelerate defected skin turn to normal skin with proper epithelial thickness and new blood vessels and hair follicles through the histological analysis of in vivo wound healing. The findings mentioned above demonstrated that the CS/SA hydrogels with growth factors have great potential as multifunctional hydrogel dressings for full-thickness skin regeneration incorporated with hemostatic, antibacterial, sustained cytocompatibility for 3D cell culture and normal skin repairing.

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