自愈水凝胶
超细纤维
微尺度化学
材料科学
明胶
3d打印
组织工程
聚己内酯
复合材料
静电纺丝
脚手架
生物医学工程
互连性
聚合物
计算机科学
化学
工程类
高分子化学
数学教育
数学
生物化学
人工智能
作者
Jetze Visser,Ferry P.W. Melchels,June Jeon,Erik M. van Bussel,L. S. Kimpton,Helen M. Byrne,Wouter J.A. Dhert,Paul D. Dalton,Dietmar W. Hutmacher,Jos Malda
摘要
Despite intensive research, hydrogels currently available for tissue repair in the musculoskeletal system are unable to meet the mechanical, as well as the biological, requirements for successful outcomes. Here we reinforce soft hydrogels with highly organized, high-porosity microfibre networks that are 3D-printed with a technique termed as melt electrospinning writing. We show that the stiffness of the gel/scaffold composites increases synergistically (up to 54-fold), compared with hydrogels or microfibre scaffolds alone. Modelling affirms that reinforcement with defined microscale structures is applicable to numerous hydrogels. The stiffness and elasticity of the composites approach that of articular cartilage tissue. Human chondrocytes embedded in the composites are viable, retain their round morphology and are responsive to an in vitro physiological loading regime in terms of gene expression and matrix production. The current approach of reinforcing hydrogels with 3D-printed microfibres offers a fundament for producing tissue constructs with biological and mechanical compatibility. Hydrogels are commonly used materials for tissue engineering, but they can lack the structural properties required for load-bearing and mechanical applications. Here, the authors prepare a polycaprolactone scaffold using melt-electrospinning to reinforce a gelatin methacrylamide hydrogel.
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