Department of Biomedical Engineering, The Chinese University of Hong Kong, Hong Kong, China.
J Mater Chem B. 2019 Mar 14;7(10):1726-1733. doi: 10.1039/c8tb02021c. Epub 2018 Oct 8.
Biomimetic hydrogels with hierarchical network structures are promising biomaterials for tissue engineering due to their unique mechanical properties. One successful biomimetic strategy for facile construction of high-performance hydrogels is to incorporate reversible crosslinks as sacrificial bonds into chemical polymer networks. By mimicking the unfolding-refolding functions of the skeletal muscle protein titin, the reversible crosslinks can reinforce the otherwise weak and brittle hydrogels. However, the contribution of multivalent reversible crosslinks to the overall hydrogel mechanical properties has rarely been investigated. Herein we present the biomimetic hydrogels with multivalent host-guest interactions as reversible crosslinks, which provide not only energy storage capacity, but also elevated energy dissipation capacity to the dually crosslinked networks, therefore leading to the improved hydrogel ductility and tensile strength. Our results also reveal the manner of multivalent host-guest crosslinks contributing to the hydrogel mechanical properties, including gelation rate, energy storage and dissipation, tensile hysteresis, and fast spontaneous recovery.
具有分级网络结构的仿生水凝胶因其独特的机械性能而成为有前途的组织工程生物材料。一种成功的仿生策略是将可逆交联作为牺牲键简单地纳入化学聚合物网络,从而构建高性能水凝胶。通过模拟骨骼肌蛋白titin 的展开-折叠功能,可逆交联可以增强原本脆弱的水凝胶。然而,多价可逆交联对整体水凝胶机械性能的贡献很少被研究。本文介绍了具有多价主体-客体相互作用的仿生水凝胶作为可逆交联,不仅提供了储能能力,而且为双重交联网络提供了更高的能量耗散能力,从而提高了水凝胶的延展性和拉伸强度。我们的结果还揭示了多价主体-客体交联对水凝胶机械性能的贡献方式,包括凝胶速率、储能和耗散、拉伸滞后以及快速自发恢复。