微尺度化学
材料科学
刚度
微流控
复合材料
3D生物打印
有限元法
甲基丙烯酸酯
纳米技术
模数
弹性模量
组织工程
动态力学分析
灵活性(工程)
压缩(物理)
粘弹性
机械强度
剪切模量
作者
Qiulei Gao,Z. J. Guo,Ran Shen,Mao Chen,Yifan Hu,Yujun Zhao,Mingyue Zhai,Wei-Jen Chang,Jianwei Zhang,Jingjiang Qiu,RongHan Wei
标识
DOI:10.1021/acs.biomac.5c02454
摘要
Microgel bioinks have gained great potential in bioprinting and tissue engineering due to their excellent mechanical performance and versatile printability. However, the effect of microgel size on the mechanical properties and printability remained to be thoroughly explored. In this study, we developed an injectable gelatin-elastin methacrylate (GelMA-ElaMA) microgel bioink with tunable microgel diameters (100-1000 μM) using a microfluidic approach. The bioink's mechanical properties were systematically characterized through compression tests, AFM nanoindentation, and finite element analysis (FEA). Larger microgel bioinks exhibited higher stiffness, whereas the smaller ones showed greater flexibility and fracture strain. The FEA results confirmed a size-dependent enhancement of the modulus at the microscale. The bioinks displayed excellent printability and could form complex 3D structures with high shape fidelity. Microgel size modulates the stiffness-dependent cell response. When magnetically functionalized, the system responded to external magnetic fields and supported cell viability above 90%. These findings established a theoretical basis for microgel bioink design with mechanical tunability.
科研通智能强力驱动
Strongly Powered by AbleSci AI