Chen H J, Wu P, Wang X G, Han C M
Department of Burns, the Second Affiliated Hospital of Zhejiang University School of Medicine, Hangzhou 310009, China.
Zhonghua Shao Shang Za Zhi. 2018 Jun 20;34(6):422-426. doi: 10.3760/cma.j.issn.1009-2587.2018.06.026.
Deep skin wounds require skin grafts for coverage. Current treatments such as tissue engineered skin or skin substitutes can not meet the needs of clinical application due to the technical problems involving preservation, transportation, and a lengthy preparation process. In comparison with traditional methods such as freeze-drying, three-dimensional bioprinting can precisely dispense living cells, nucleic acid, growth factor, and phase-changing hydrogels according to the wound form, while maintaining high cell viability. Besides, it has excellent performance in high resolution, flexibility, reproducibility, and high throughput, showing great potential in the fabrication of tissue engineered skin. This review mainly introduces the common techniques of three-dimensional bioprinting, and their application in skin tissue engineering, focusing on the latest research progress, and summarizes the current challenges and future development of three-dimensional skin printing.
深度皮肤伤口需要进行皮肤移植来覆盖创面。目前的治疗方法,如组织工程皮肤或皮肤替代物,由于存在保存、运输和制备过程冗长等技术问题,无法满足临床应用的需求。与冻干等传统方法相比,三维生物打印能够根据伤口形状精确地分配活细胞、核酸、生长因子和相变水凝胶,同时保持较高的细胞活力。此外,它在高分辨率、灵活性、可重复性和高通量方面具有优异的性能,在组织工程皮肤的制造中显示出巨大潜力。本文综述主要介绍了三维生物打印的常用技术及其在皮肤组织工程中的应用,重点阐述了最新研究进展,并总结了三维皮肤打印目前面临的挑战和未来发展方向。