Laboratory of Nano-Regenerative Medicine, Centro de Investigación Biomédica e Innovación, Faculty of Medicine, Universidad de los Andes, Santiago 7620001, Chile.
Cells for Cells, Santiago 7620001, Chile.
Biomacromolecules. 2023 Jan 9;24(1):150-165. doi: 10.1021/acs.biomac.2c01019. Epub 2022 Dec 21.
The increasing demand for tissue replacement has encouraged scientists worldwide to focus on developing new biofabrication technologies. Multimaterials/cells printed with stringent resolutions are necessary to address the high complexity of tissues. Advanced inkjet 3D printing can use multimaterials and attain high resolution and complexity of printed structures. However, a decisive yet limiting aspect of translational 3D bioprinting is selecting the befitting material to be used as bioink; there is a complete lack of cytoactive bioinks with adequate rheological, mechanical, and reactive properties. This work strives to achieve the right balance between resolution and cell support through methacrylamide functionalization of a psychrophilic gelatin and new fluorosurfactants used to engineer a photo-cross-linkable and immunoevasive bioink. The syntonized parameters following optimal formulation conditions allow proficient printability in a PolyJet 3D printer comparable in resolution to a commercial synthetic ink (∼150 μm). The bioink formulation achieved the desired viability (∼80%) and proliferation of co-printed cells while demonstrating immune tolerance of printed structures. The practical usage of existing high-resolution 3D printing systems using a novel bioink is shown here, allowing 3D bioprinted structures with potentially unprecedented complexity.
对组织替代物的需求不断增加,促使全球科学家专注于开发新的生物制造技术。为了满足组织的高复杂性,需要使用具有严格分辨率的多材料/细胞打印。先进的喷墨 3D 打印可以使用多种材料,并实现打印结构的高分辨率和复杂性。然而,转化 3D 生物打印的一个决定性但又有限的方面是选择合适的材料作为生物墨水;具有足够流变学、机械和反应性能的细胞活性生物墨水完全缺乏。这项工作努力通过对嗜冷明胶进行甲基丙烯酰胺功能化以及使用新的氟表面活性剂来设计可光交联和免疫逃避的生物墨水,在分辨率和细胞支持之间实现适当的平衡。在最佳配方条件下,合成的参数允许在 PolyJet 3D 打印机中进行高效打印,其分辨率可与商业合成墨水相媲美(约 150μm)。生物墨水配方实现了共打印细胞的理想存活率(约 80%)和增殖,同时表现出对打印结构的免疫耐受。这里展示了使用新型生物墨水对现有高分辨率 3D 打印系统的实际应用,允许打印具有潜在前所未有复杂性的 3D 生物打印结构。