State Key Laboratory of High Performance Ceramics and Superfine Microstructure, Shanghai Institute of Ceramics, Chinese Academy of Sciences, Shanghai, 200050, P. R. China.
Center of Materials Science and Optoelectronics Engineering, University of Chinese Academy of Sciences, Beijing, 100049, P. R. China.
Adv Healthc Mater. 2021 Aug;10(16):e2100523. doi: 10.1002/adhm.202100523. Epub 2021 May 8.
The reconstruction of dermal blood vessels is essential for skin regeneration process. However, the lack of vascular structure, insufficient angiogenesis induction, and ineffective graft-host anastomosis of the existing skin substitutes are major bottle-necks for permanent skin replacement in tissue engineering. In this study, the uniform strontium silicate (SS) microcylinders are successfully synthesized and integrated into the biomaterial ink to serve as stable cell-induced factors for angiogenesis, and then a functional skin substitute based on a vascularization-induced biomimetic multicellular system is prepared via a "cell-writing" bioprinting technology. With an unprecedented combination of vascularized skin-mimicking structure and vascularization-induced function, the SS-containing multicellular system exhibits outstanding angiogenic activity both in vitro and in vivo. As a result, the bioprinted skin substitutes significantly accelerate the healing of both acute and chronic wounds by promoting the graft-host integration and vascularized skin regeneration in three animal models. Therefore, the study provides a referable strategy to fabricate biomimetic multicellular constructs with angiogenesis-induced function for regeneration of vascularized complex and hierarchical tissues.
皮肤血管的重建对于皮肤再生过程至关重要。然而,现有的皮肤替代物存在血管结构缺乏、血管生成诱导不足以及移植物与宿主吻合不良等问题,这是组织工程中实现永久性皮肤替代的主要瓶颈。在本研究中,成功合成了均匀的硅酸锶(SS)微圆柱,并将其整合到生物材料墨水中,作为血管生成的稳定细胞诱导因子,然后通过“细胞书写”生物打印技术制备了基于血管化诱导仿生多细胞系统的功能性皮肤替代物。通过将血管化的皮肤模拟结构与血管化诱导功能前所未有地结合在一起,含有 SS 的多细胞系统在体外和体内均表现出出色的血管生成活性。结果,生物打印的皮肤替代物通过促进移植物与宿主的整合和血管化皮肤再生,在三种动物模型中显著加速了急性和慢性伤口的愈合。因此,该研究为制造具有血管生成诱导功能的仿生多细胞构建体提供了一种参考策略,用于再生血管化的复杂和分层组织。