材料科学
自愈水凝胶
聚乙二醇
生物相容性
PEG比率
神经突
聚合
聚合物
生物医学工程
纳米技术
化学工程
高分子化学
化学
复合材料
经济
冶金
工程类
体外
医学
生物化学
财务
作者
Nicolas Broguière,Andreas Husch,Gemma Palazzolo,Frank Bradke,Srinivas Madduri,Marcy Zenobi‐Wong
出处
期刊:Biomaterials
[Elsevier]
日期:2019-04-01
卷期号:200: 56-65
被引量:56
标识
DOI:10.1016/j.biomaterials.2019.01.047
摘要
A method to generate injectable macroporous hydrogels based on partitioning of polyethylene glycol (PEG) and high viscous polysaccharides is presented. Step growth polymerization of PEG was used to initiate a phase separation and the formation of a connected macroporous network with tunable dimensions. The possibilities and physical properties of this new category of materials were examined, and then applied to address some challenges in neural engineering. First, non-degradable macroporous gels were shown to support rapid neurite extension from encapsulated dorsal root ganglia (DRGs) with unprecedented long-term stability. Then, dissociated primary rat cortical neurons could be encapsulated with >95% viability, and extended neurites at the fast rate of ≈100 μm/day and formed synapses, resulting in functional, highly viable and long-term stable 3D neural networks in the synthetic extracellular matrix (ECM). Adhesion cues were found unnecessary provided the gels have optimal physical properties. Normal electrophysiological properties were confirmed on 3D cultured mouse hippocampal neurons. Finally, the macroporous gels supported axonal growth in a rat sciatic nerve injury model when used as a conduit filling. The combination of injectability, tunable pore size, stability, connectivity, transparency, cytocompatibility and biocompatibility, makes this new class of materials attractive for a wide range of applications.
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