材料科学
自愈水凝胶
神经组织工程
组织工程
生物医学工程
再生(生物学)
纳米技术
生物分子
各向异性
高分子化学
光学
医学
生物
细胞生物学
物理
作者
Min‐Yu Chiang,Hung‐Wei Cheng,Yu‐Chih Lo,Wei‐Chun Wang,Shwu‐Jen Chang,Chu-Hsun Cheng,Yu‐Chang Lin,Huai‐En Lu,Ming-Wen Sue,Nien‐Ti Tsou,Yu‐Chun Lo,Ssu‐Ju Li,Chao‐Hung Kuo,You‐Yin Chen,Wei‐Chen Huang,San‐Yuan Chen
出处
期刊:Biomaterials
[Elsevier BV]
日期:2021-03-20
卷期号:271: 120762-120762
被引量:22
标识
DOI:10.1016/j.biomaterials.2021.120762
摘要
Although traditional 3D scaffolds or biomimetic hydrogels have been used for tissue engineering and regenerative medicine, soft tissue microenvironment usually has a highly anisotropic structure and a dynamically controllable deformation with various biomolecule distribution. In this study, we developed a hierarchical hybrid gelatin methacrylate-microcapsule hydrogel (HGMH) with Neurotrophin-3(NT-3)-loaded PLGA microcapsules to fabricate anisotropic structure with patterned NT-3 distribution (demonstrated as striped and triangular patterns) by dielectrophoresis (DEP). The HGMH provides a dynamic biomimetic sinuate-microwrinkles change with NT-3 spatial gradient and 2-stage time-dependent distribution, which was further simulated using a 3D finite element model. As demonstrated, in comparison with striped-patterned hydrogel, the triangular-patterned HGMH with highly anisotropic array of microcapsules exhibits remarkably spatial NT-3 gradient distributions that can not only guide neural stem cells (NSCs) migration but also facilitate spinal cord injury regeneration. This approach to construct hierarchical 4D hydrogel system via an electromicrofluidic platform demonstrates the potential for building various biomimetic soft scaffolds in vitro tailed to real soft tissues.
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