Biomedical Engineering, College of Engineering, Texas A&M University, College Station, Texas.
Materials Science and Engineering, College of Engineering, Texas A&M University, College Station, Texas.
Tissue Eng Part A. 2020 Mar;26(5-6):318-338. doi: 10.1089/ten.TEA.2019.0298.
3D bioprinting is an additive manufacturing technique that recapitulates the native architecture of tissues. This is accomplished through the precise deposition of cell-containing bioinks. The spatiotemporal control over bioink deposition permits for improved communication between cells and the extracellular matrix, facilitates fabrication of anatomically and physiologically relevant structures. The physiochemical properties of bioinks, before and after crosslinking, are crucial for bioprinting complex tissue structures. Specifically, the rheological properties of bioinks determines printability, structural fidelity, and cell viability during the printing process, whereas postcrosslinking of bioinks are critical for their mechanical integrity, physiological stability, cell survival, and cell functions. In this review, we critically evaluate bioink design criteria, specifically for extrusion-based 3D bioprinting techniques, to fabricate complex constructs. The effects of various processing parameters on the biophysical and biochemical characteristics of bioinks are discussed. Furthermore, emerging trends and future directions in the area of bioinks and bioprinting are also highlighted. Graphical abstract [Figure: see text] Impact statement Extrusion-based 3D bioprinting is an emerging additive manufacturing approach for fabricating cell-laden tissue engineered constructs. This review critically evaluates bioink design criteria to fabricate complex tissue constructs. Specifically, pre- and post-printing evaluation approaches are described, as well as new research directions in the field of bioink development and functional bioprinting are highlighted.
3D 生物打印是一种添加制造技术,可再现组织的天然结构。这是通过精确沉积含有细胞的生物墨水来实现的。对生物墨水沉积的时空控制允许细胞和细胞外基质之间更好地进行通信,促进具有解剖学和生理学相关性的结构的制造。生物墨水在交联前后的物理化学性质对于生物打印复杂的组织结构至关重要。具体而言,生物墨水的流变学性质决定了打印的可操作性、结构保真度和打印过程中的细胞活力,而生物墨水的交联后处理对于其机械完整性、生理稳定性、细胞存活和细胞功能至关重要。在这篇综述中,我们批判性地评估了生物墨水设计标准,特别是用于挤出式 3D 生物打印技术的标准,以制造复杂的结构。讨论了各种加工参数对生物墨水的生物物理和生物化学特性的影响。此外,还突出了生物墨水和生物打印领域的新兴趋势和未来方向。