Wei Qinghua, An Yalong, Zhao Xudong, Li Mingyang, Zhang Juan
School of Mechanical Engineering, Northwestern Polytechnical University, Xi'an 710072, China; Innovation Center NPU Chongqing, Northwestern Polytechnical University, Chongqing 400000, China.
School of Mechanical Engineering, Northwestern Polytechnical University, Xi'an 710072, China.
Int J Biol Macromol. 2024 May;266(Pt 1):131281. doi: 10.1016/j.ijbiomac.2024.131281. Epub 2024 Apr 18.
As an emerging new manufacturing technology, Three-dimensional (3D) bioprinting provides the potential for the biomimetic construction of multifaceted and intricate architectures of functional integument, particularly functional biomimetic dermal structures inclusive of cutaneous appendages. Although the tissue-engineered skin with complete biological activity and physiological functions is still cannot be manufactured, it is believed that with the advances in matrix materials, molding process, and biotechnology, a new generation of physiologically active skin will be born in the future. In pursuit of furnishing readers and researchers involved in relevant research to have a systematic and comprehensive understanding of 3D printed tissue-engineered skin, this paper furnishes an exegesis on the prevailing research landscape, formidable obstacles, and forthcoming trajectories within the sphere of tissue-engineered skin, including: (1) the prevalent biomaterials (collagen, chitosan, agarose, alginate, etc.) routinely employed in tissue-engineered skin, and a discerning analysis and comparison of their respective merits, demerits, and inherent characteristics; (2) the underlying principles and distinguishing attributes of various current printing methodologies utilized in tissue-engineered skin fabrication; (3) the present research status and progression in the realm of tissue-engineered biomimetic skin; (4) meticulous scrutiny and summation of the extant research underpinning tissue-engineered skin inform the identification of prevailing challenges and issues.
作为一种新兴的制造技术,三维(3D)生物打印为功能性表皮的多面复杂结构的仿生构建提供了潜力,特别是包括皮肤附属器在内的功能性仿生真皮结构。尽管具有完整生物活性和生理功能的组织工程皮肤仍无法制造,但人们相信,随着基质材料、成型工艺和生物技术的进步,新一代具有生理活性的皮肤将在未来诞生。为了使参与相关研究的读者和研究人员对3D打印组织工程皮肤有系统全面的了解,本文对组织工程皮肤领域的当前研究状况、巨大障碍和未来发展轨迹进行了阐释,包括:(1)组织工程皮肤中常用的生物材料(胶原蛋白、壳聚糖、琼脂糖、藻酸盐等),并对其各自的优缺点和固有特性进行了有洞察力的分析和比较;(2)组织工程皮肤制造中使用的各种当前打印方法的基本原理和显著特点;(3)组织工程仿生皮肤领域的当前研究现状和进展;(4)对组织工程皮肤现有研究的细致审查和总结,以确定当前面临的挑战和问题。