Huang Rong, Lin Bin, Lei Zhanjun, Xu Lirong, Zhang Hao, Wang Wenxuan, Zhang Yuheng, Xiao Shuao, Long Yunze, Li Jing, Li Xueyong
Department of Burn and Plastic Surgery, Second Affiliated Hospital, Air Force Medical University, Xi'an 710038, China.
College of Physics, Qingdao University, Qingdao 266071, China.
ACS Biomater Sci Eng. 2023 Nov 13;9(11):6241-6255. doi: 10.1021/acsbiomaterials.3c00913. Epub 2023 Oct 12.
Novel full-thickness skin substitutes are of increasing interest due to the inherent limitations of current models lacking capillary networks. Herein, we developed a novel full-thickness skin tissue containing blood capillary networks through a layer-by-layer assembly approach using a handy electrospinning apparatus and evaluated its skin wound coverage potential . The average diameter and thickness of fabricated poly-ε-caprolactone-cellulose acetate scaffolds were easily tuned in the range of 474 ± 77-758 ± 113 nm and 9.43 ± 2.23-29.96 ± 5.78 μm by varying electrospinning distance and duration, as indicated by FE-SEM. Besides, keratinocytes exhibited homogeneous differentiation throughout the fibrous matrix prepared with electrospinning distance and duration of 9 cm and 1.5 min within five-layer (5L) epidermal tissues with thickness of 135-150 μm. Moreover, coculture of vascular endothelial cells, circulating fibrocytes, and fibroblasts within the 5L dermis displayed network formation , resulting in reduced inflammatory factor levels and enhanced integration with the host vasculature . Additionally, the skin equivalent grafts consisting of the epidermal layer, biomimetic basement membrane, and vascularized dermis layer with an elastic modulus of approximately 11.82 MPa exhibited accelerated wound closure effect indicative of re-epithelialization and neovascularization with long-term cell survival into the host, which was confirmed by wound-healing rate, bioluminescence imaging activity, and histological analysis. It is the first report of a full-thickness skin equivalent constructed using a battery-operated electrospinning apparatus, highlighting its tremendous potential in regenerative medicine.
由于目前缺乏毛细血管网络的模型存在固有局限性,新型全层皮肤替代物越来越受到关注。在此,我们通过使用便捷的电纺设备采用逐层组装方法开发了一种含有毛细血管网络的新型全层皮肤组织,并评估了其覆盖皮肤伤口的潜力。如场发射扫描电子显微镜所示,通过改变电纺距离和持续时间,制备的聚ε-己内酯-醋酸纤维素支架的平均直径和厚度可轻松调节至474±77 - 758±113纳米和9.43±2.23 - 29.96±5.78微米范围内。此外,在厚度为135 - 150微米的五层(5L)表皮组织中,角质形成细胞在电纺距离和持续时间分别为9厘米和1.5分钟制备的纤维基质中表现出均匀分化。此外,5L真皮内的血管内皮细胞、循环纤维细胞和成纤维细胞共培养显示出网络形成,导致炎症因子水平降低,并增强了与宿主血管系统的整合。此外,由表皮层、仿生基底膜和弹性模量约为11.82兆帕的血管化真皮层组成的皮肤等效移植物表现出加速伤口闭合的效果,表明有再上皮化和新血管形成,且细胞能长期存活于宿主体内,这通过伤口愈合率、生物发光成像活性和组织学分析得到证实。这是首次使用电池供电的电纺设备构建全层皮肤等效物的报告,突出了其在再生医学中的巨大潜力。