Ji Yuan, Yang Qingzhen, Huang Guoyou, Shen Mingguang, Jian Zhen, Thoraval Marie-Jean, Lian Qin, Zhang Xiaohui, Xu Feng
MOE Key Laboratory of Biomedical Information Engineering, School of Life Science and Technology, Xi'an Jiaotong University, Xi'an 710049, P.R. China.
Bioinspired Engineering and Biomechanics Center (BEBC), Xi'an Jiaotong University, Xi'an 710049, P.R. China.
ACS Biomater Sci Eng. 2019 Aug 12;5(8):4112-4121. doi: 10.1021/acsbiomaterials.9b00400. Epub 2019 Jul 5.
Bioprinting has emerged as a powerful biofabrication technology with widespread applications in biomedical fields because of its superiority in high-throughput, high-precision, 3D structure fabrication. For bioprinting, two of the most important parameters are the printing precision (i.e., droplets resolution) and structural fidelity (i.e., conformity of the printed objects to the design). The major factors that hinder resolution and fidelity are gravity and impact force between printed droplets and substrate. However, existing solutions to these two issues, including decreasing droplet volume and introducing sacrificial materials, cause other problems, such as complexity or poor biocompatibility. Here, we reported a variant 3D bioprinting technique, termed as upward bioprinting, in which the nozzle of bioprinter is overturned and the ejection direction is opposite to gravitational force. Employing this technique, we fabricated discrete droplets, continuous lines, and 3D multilayer constructs using alginate and gelatin methacrylate (GelMA). The characterizations show that the upward bioprinting could improve the resolution and also fidelity as compared with the conventional downward bioprinting. Meanwhile, this method enables cell printing without affecting the viability. In addition, this method can be easily implemented without upgrading any hardware. Such an upward bioprinting technique could be an alternative to scale down microtissues and to fabricate 3D complex bioconstructs. We envision that the upward bioprinting, as a general method, could be extended to other bioprinting processes or applied to 3D bioprinting in outer space.
生物打印作为一种强大的生物制造技术,因其在高通量、高精度三维结构制造方面的优势,在生物医学领域有着广泛的应用。对于生物打印而言,两个最重要的参数是打印精度(即液滴分辨率)和结构保真度(即打印物体与设计的符合程度)。阻碍分辨率和保真度的主要因素是重力以及打印液滴与基底之间的冲击力。然而,针对这两个问题的现有解决方案,包括减小液滴体积和引入牺牲材料,会引发其他问题,比如复杂性或生物相容性差。在此,我们报道了一种变体三维生物打印技术,称为向上生物打印,其中生物打印机的喷嘴被翻转,喷射方向与重力方向相反。采用这种技术,我们使用藻酸盐和甲基丙烯酸明胶(GelMA)制造了离散液滴、连续线条和三维多层结构。表征结果表明,与传统的向下生物打印相比,向上生物打印可以提高分辨率和保真度。同时,这种方法能够进行细胞打印而不影响细胞活力。此外,这种方法无需升级任何硬件即可轻松实现。这样一种向上生物打印技术可以作为缩小微组织规模和制造三维复杂生物结构的一种替代方法。我们设想,向上生物打印作为一种通用方法,可以扩展到其他生物打印过程或应用于外层空间的三维生物打印。