3D bioprinting of heterogeneous tissue-engineered skin containing human dermal fibroblasts and keratinocytes

生物医学工程 人体皮肤 人造皮肤 3D生物打印 组织工程 化学 细胞生物学 角质形成细胞 体外 生物 医学 遗传学 生物化学
作者
Meng Li,Lei Sun,Zixian Liu,Zhizhong Shen,Yanyan Cao,Lu Han,Shengbo Sang,Jianming Wang
出处
期刊:Biomaterials Science [The Royal Society of Chemistry]
卷期号:11 (7): 2461-2477 被引量:29
标识
DOI:10.1039/d2bm02092k
摘要

Three-dimensional (3D) printed skin substitutes have great potential for wound healing. However, current 3D printed skin models are limited in simulating heterogeneity and complexity of skin tissue due to the lack of customized bioinks optimized for different skin layers. Herein, different gelatin methacrylate (GelMA)/nano-cellulose (BNC) bioink formulations were used to develop heterogeneous tissue-engineered skin (HTS) containing layers of fibroblast networks with larger pores, basal layers with smaller pores, and multilayered keratinocytes. The results revealed that the 10%GelMA/0.3%BNC bioink was better to model bioprinted dermis due to its high printability and cell-friendly sparse microenvironment. Additionally, the 10%GelMA/1.5%BNC bioink as the basal layer presented a dense network and sufficient material stiffness to support the establishment of keratinocyte confluent monolayers. The HTS not only had the ability to remodel the extracellular matrix but also supported epidermis reconstruction and stratification in vitro, with the epidermal thickness growing to 80 μm after 14 days. Furthermore, the full-thickness wound healing experiments demonstrated that the HTS promoted granulation tissue regeneration and improved wound healing quality. The generated skin of the HTS group had hair follicles and early-stage rete ridge structures, which were similar to normal skin in vivo. The HTS may deliver effective skin grafts for future clinical treatments.
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