Zhang Lei, Lee Wenhan, Li Xinhao, Jiang Yanhui, Fang Nicholas Xuanlai, Dai Guohao, Liu Yongmin
Department of Mechanical & Industrial Engineering, Northeastern University, Boston, MA, 02115, United States.
State Key Laboratory of Primate Biomedical Research, Institute of Primate Translational Medicine, Kunming University of Science and Technology, Kunming, 650500, China.
Bioact Mater. 2021 Sep 9;10:48-55. doi: 10.1016/j.bioactmat.2021.08.015. eCollection 2022 Apr.
Direct Ink Writing (DIW) has demonstrated great potential as a versatile method to 3D print multifunctional structures. In this work, we report the implementation of hydrogel meta-structures using DIW at room temperature, which seamlessly integrate large specific surface areas, interconnected porous characteristics, mechanical toughness, biocompatibility, and water absorption and retention capabilities. Robust but hydrophobic polymers and weakly crosslinked nature-origin hydrogels form a balance in the self-supporting ink, allowing us to directly print complex meta-structures without sacrificial materials and heating extrusion. Mechanically, the mixed bending or stretching of symmetrical re-entrant cellular lattices and the unique curvature patterns are combined to provide little lateral expansion and large compressive energy absorbance when external forces are applied on the printed meta-structures. In addition, we have successfully demonstrated ear, aortic valve conduits and hierarchical architectures. We anticipate that the reported 3D meta-structured hydrogel would offer a new strategy to develop functional biomaterials for tissue engineering applications in the future.
直接墨水书写(DIW)作为一种用于3D打印多功能结构的通用方法已展现出巨大潜力。在这项工作中,我们报告了在室温下使用DIW实现水凝胶超结构,该结构无缝集成了大比表面积、相互连接的多孔特性、机械韧性、生物相容性以及吸水和保水能力。坚固但疏水的聚合物与弱交联的天然水凝胶在自支撑墨水中形成平衡,使我们能够直接打印复杂的超结构,而无需牺牲材料和热挤压。在力学方面,对称的凹腔蜂窝晶格混合弯曲或拉伸与独特的曲率模式相结合,使得在外部力作用于打印的超结构时几乎没有横向膨胀且具有大的压缩能量吸收能力。此外,我们已成功展示了耳朵、主动脉瓣导管和分层结构。我们预计,所报道 的3D超结构水凝胶将为未来开发用于组织工程应用的功能性生物材料提供一种新策略。