One-step fabrication of cell sheet-laden hydrogel for accelerated wound healing

真皮 材料科学 伤口愈合 生物医学工程 再生(生物学) 细胞外基质 组织工程 自愈水凝胶 皮肤修复 人体皮肤 纳米技术 生物物理学 化学 解剖 外科 高分子化学 细胞生物学 生物 医学 生物化学 遗传学
作者
Huijuan Wang,Deshun Sun,Weiming Lin,Chao Fang,Kui Cheng,Zhengzhou Pan,Daping Wang,Zhangfa Song,Xiaojun Long
出处
期刊:Bioactive Materials [Elsevier]
卷期号:28: 420-431 被引量:15
标识
DOI:10.1016/j.bioactmat.2023.06.005
摘要

Full-thickness skin wounds are have continued to be reconstructive challenges in dermal and skin appendage regeneration, and skin substitutes are promising tools for addressing these reconstructive procedures. Herein, the one-step fabrication of a cell sheet integrated with a biomimetic hydrogel as a tissue engineered skin for skin wound healing generated in one step is introduced. Briefly, cell sheets with rich extracellular matrix, high cell density, and good cell connections were integrated with biomimetic hydrogel to fabricate gel + human skin fibroblasts (HSFs) sheets and gel + human umbilical vein endothelial cells (HUVECs) sheets in one step for assembly as a cell sheet-laden hydrogel (CSH). The designed biomimetic hydrogel formed with UV crosslinking and ionic crosslinking exhibited unique properties due to the photo-generated aldehyde groups, which were suitable for integrating into the cell sheet, and ionic crosslinking reduced the adhesive force toward the substrate. These properties allowed the gel + cell sheet film to be easily released from the substrate. The cells in the harvested cell sheet maintained excellent viability, proliferation, and definite migration abilities inside the hydrogel. Moreover, the CSH was implanted into a full-thickness skin defects to construct a required dermal matrix and cell microenvironment. The wound closure rate reached 60.00 ± 6.26% on the 2nd day, accelerating mature granulation and dermis formation with skin appendages after 14 days. This project can provide distinct guidance and strategies for the complete repair and regeneration of full-thickness skin defects, and provides a material with great potential for tissue regeneration in clinical applications.
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