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Novel tissue-engineered skin equivalent from recombinant human collagen hydrogel and fibroblasts facilitated full-thickness skin defect repair in a mouse model
- Source :
- Materials Science and Engineering: C. 130:112469
- Publication Year :
- 2021
- Publisher :
- Elsevier BV, 2021.
-
Abstract
- Tissue-engineered skin equivalent (TESE) is an optimized alternative for the treatment of skin defects. Designing and fabricating biomaterials with desired properties to load cells is critical for the approach. In this study, we aim to develop a novel TESE with recombinant human collagen (rHC) hydrogel and fibroblasts to improve full-thickness skin defect repair. First, the bioactive effect of rHC on fibroblast proliferation, migration and phenotype was assayed. The results showed that rHC had good biocompatibility and could stimulate fibroblasts migration and secrete various growth factors. Then, rHC was cross-linked with transglutaminase (TG) to prepare rHC hydrogel. Rheometer tests indicated that 10% rHC/TG hydrogel could reach a oscillate stress of 251 Pa and remained stable. Fibroblasts were seeded into rHC/TG hydrogel to prepare TESE. Confocal microscope and scanning electronic microscope observation showed that seeded fibroblasts survived well in the hydrogel. Finally, the therapeutic effect of the newly prepared TESE was tested in a mouse full-thickness skin defect model. The results demonstrated that TESE could significantly improve skin defect repair in vivo. Conclusively, TESE prepared from rHC and fibroblasts in this study exhibits great potential for clinical application in the future.
- Subjects :
- Materials science
Biocompatibility
Tissue transglutaminase
Confocal
Biocompatible Materials
Bioengineering
law.invention
Biomaterials
Mice
In vivo
law
medicine
Animals
Humans
Skin equivalent
Fibroblast
Skin
Tissue Engineering
biology
Hydrogels
Fibroblasts
medicine.anatomical_structure
Mechanics of Materials
Recombinant DNA
biology.protein
Collagen
Electron microscope
Biomedical engineering
Subjects
Details
- ISSN :
- 09284931
- Volume :
- 130
- Database :
- OpenAIRE
- Journal :
- Materials Science and Engineering: C
- Accession number :
- edsair.doi.dedup.....916ddd5413897de7294d83bc65d49a61