Shen Zhizhong, Cao Yanyan, Li Meng, Yan Yayun, Cheng Rong, Zhao Yajing, Shao Quan, Wang Jianming, Sang Shengbo
MicroNano System Research Center, Key Lab of Advanced Transducers and Intelligent Control System of the Ministry of Education & College of Information and Computer, Taiyuan University of Technology, Taiyuan 030024, China.
MicroNano System Research Center, Key Lab of Advanced Transducers and Intelligent Control System of the Ministry of Education & College of Information and Computer, Taiyuan University of Technology, Taiyuan 030024, China; College of Information Science and Engineering, Hebei North University, Zhangjiakou 075000, China.
Mater Sci Eng C Mater Biol Appl. 2021 Oct;129:112360. doi: 10.1016/j.msec.2021.112360. Epub 2021 Aug 9.
Tissue-engineered skin, as a promising skin substitute, can be used for in vitro skin research and skin repair. However, most of research on tissue-engineered skin tend to ignore the rete ridges (RRs) microstructure, which enhances the adhesion between dermis and epidermis and provides a growth environment for epidermal stem cells. Here, we prepared and characterized photocurable gelatin methacrylated (GelMA) and poly(ethylene glycol) diacrylate (PEGDA) co-network hydrogels with different concentrations. Using a UV curing 3D printer, resin molds were designed and fabricated to create three-dimensional micropatterns and replicated onto GelMA-PEGDA scaffolds. Human keratinocytes (HaCaTs) and human skin fibroblasts (HSFs) were co-cultured on the hydrogel scaffold to prepare tissue-engineered skin. The results showed that 10%GelMA-2%PEGDA hydrogel provides the sufficient mechanical properties and biocompatibility to prepare a human skin model with RRs microstructure, that is, it presents excellent structural support, suitable degradation rate, good bioactivity and is suitable for long-term culturing. Digital microscope image analyses showed the micropattern was well-transferred onto the scaffold surface. Both in vitro and in vivo experiments confirmed the formation of the epidermal layer with undulating microstructure. In wound healing experiments, hydrogel can significantly accelerate wound healing. This study provides a simple and powerful way to mimic the structures of human skin and can make a contribution to skin tissue engineering and wound healing.
组织工程皮肤作为一种很有前景的皮肤替代物,可用于体外皮肤研究和皮肤修复。然而,大多数关于组织工程皮肤的研究往往忽略了 rete 嵴(RRs)的微观结构,该结构可增强真皮与表皮之间的粘附力,并为表皮干细胞提供生长环境。在此,我们制备并表征了不同浓度的光固化甲基丙烯酸明胶(GelMA)和聚乙二醇二丙烯酸酯(PEGDA)共网络水凝胶。使用紫外光固化 3D 打印机,设计并制造了树脂模具以创建三维微图案,并复制到 GelMA-PEGDA 支架上。将人角质形成细胞(HaCaTs)和人皮肤成纤维细胞(HSFs)在水凝胶支架上共培养以制备组织工程皮肤。结果表明,10%GelMA-2%PEGDA 水凝胶具有足够的机械性能和生物相容性,可制备具有 RRs 微观结构的人体皮肤模型,即它具有出色的结构支撑、合适的降解速率、良好的生物活性且适合长期培养。数字显微镜图像分析表明微图案已很好地转移到支架表面。体外和体内实验均证实形成了具有起伏微观结构的表皮层。在伤口愈合实验中,水凝胶可显著加速伤口愈合。本研究提供了一种简单而有效的方法来模拟人体皮肤结构,并可为皮肤组织工程和伤口愈合做出贡献。