Institute of Polymer Science and Engineering , National Taiwan University , No. 1, Sec. 4, Roosevelt Road , Taipei 10617 , Taiwan, R.O.C .
Institute of Cellular and System Medicine , National Health Research Institutes , Zhunan 35053 , Taiwan, R.O.C .
ACS Appl Mater Interfaces. 2019 Sep 11;11(36):32746-32757. doi: 10.1021/acsami.9b10784. Epub 2019 Aug 29.
Three-dimensional (3D) bioprinting is a technology to print materials (bioink) with cells into customized tissues for regeneration or organoids for drug screening applications. Herein, a series of biodegradable polyurethane (PU)-gelatin hydrogel with tunable mechanical properties and degradation rates were developed as the bioink. The PU-gelatin hydrogel demonstrated good printability in 24-31 °C and could print a complicated structure such as the nose-shaped construct. Due to the excellent shear thinning and fast strain recovery properties, the PU-gelatin hydrogel also had long working windows for bioprinting (over 24 h), stacking ability (up to 80 layers), and feasibility for high-resolution printing (through an 80 μm nozzle). The structure stability of the PU-gelatin hydrogel was maintained by two-stage double-network formation through Ca chelation and thermal gelation at 37 °C without any toxic cross-linking reagent. The compressive modulus of printed PU-gelatin hydrogel constructs increased in about 3-fold by the treatment of CaCl solution for 15 min and enhanced further after incubation because of the thermal sensitivity of PU at 37 °C. Mesenchymal stem cells (MSCs) printed with the PU-gelatin hydrogel through the 80 μm nozzle showed good viability, high mobility, and ∼200% proliferation ratio (or an ∼300% proliferation ratio through a 200 μm nozzle) in 10 days. Furthermore, the MSC-laden PU-gelatin constructs containing small molecular drug Y27632 underwent chondrogenesis in 10 days. The novel series of PU-gelatin hydrogels with tunable modulus, long working window, convenient bioprinting process, and high-resolution printing possibilities may serve as new bioink for 3D bioprinting of various tissues.
三维(3D)生物打印是一种将材料(生物墨水)与细胞打印到定制组织中以用于再生或类器官药物筛选应用的技术。在此,开发了一系列具有可调节机械性能和降解速率的可生物降解的聚氨酯(PU)-明胶水凝胶作为生物墨水。PU-明胶水凝胶在 24-31°C 下表现出良好的可打印性,可以打印复杂的结构,如鼻状结构。由于具有出色的剪切稀化和快速应变恢复特性,PU-明胶水凝胶也具有较长的生物打印工作窗口(超过 24 小时)、堆叠能力(高达 80 层)和用于高分辨率打印的可行性(通过 80μm 喷嘴)。PU-明胶水凝胶的结构稳定性通过在 37°C 下通过 Ca 螯合和热凝胶化进行两阶段双网络形成得以维持,而无需任何有毒的交联试剂。通过用 CaCl2 溶液处理 15 分钟,打印的 PU-明胶水凝胶结构的压缩模量增加了约 3 倍,并在孵育后进一步增强,这是由于 37°C 下的 PU 的热敏感性。通过 80μm 喷嘴打印的 PU-明胶水凝胶中的间充质干细胞(MSCs)显示出良好的活力、高迁移率和 10 天内约 200%的增殖率(或通过 200μm 喷嘴的增殖率约为 300%)。此外,载有小分子药物 Y27632 的 MSC 负载的 PU-明胶构建体在 10 天内经历了软骨形成。具有可调节模量、长工作窗口、方便的生物打印工艺和高分辨率打印可能性的新型系列 PU-明胶水凝胶可能成为各种组织的 3D 生物打印的新型生物墨水。