Willson Kelsey, Atala Anthony, Yoo James J
Wake Forest Institute for Regenerative Medicine, Wake Forest School of Medicine, Winston Salem, NC 27157, USA.
Biomolecules. 2021 Oct 28;11(11):1593. doi: 10.3390/biom11111593.
The development of appropriate bioinks is a complex task, dependent on the mechanical and biochemical requirements of the final construct and the type of printer used for fabrication. The two most common tissue printers are micro-extrusion and digital light projection printers. Here we briefly discuss the required characteristics of a bioink for each of these printing processes. However, physical printing is only a short window in the lifespan of a printed construct-the system must support and facilitate cellular development after it is printed. To that end, we provide a broad overview of some of the biological molecules currently used as bioinks. Each molecule has advantages for specific tissues/cells, and potential disadvantages are discussed, along with examples of their current use in the field. Notably, it is stressed that active researchers are trending towards the use of composite bioinks. Utilizing the strengths from multiple materials is highlighted as a key component of bioink development.
开发合适的生物墨水是一项复杂的任务,这取决于最终构建体的机械和生化要求以及用于制造的打印机类型。两种最常见的组织打印机是微挤压打印机和数字光投影打印机。在此,我们简要讨论用于每种打印工艺的生物墨水所需的特性。然而,物理打印只是打印构建体生命周期中的一个短暂阶段——该系统必须在打印后支持并促进细胞发育。为此,我们对目前用作生物墨水的一些生物分子进行了广泛概述。每种分子对特定组织/细胞都有优势,并讨论了其潜在缺点以及它们目前在该领域的应用实例。值得注意的是,强调了活跃的研究人员倾向于使用复合生物墨水。利用多种材料的优势被视为生物墨水开发的关键组成部分。