Institute of Polymer Science and Engineering, National Taiwan University, Taipei, Taiwan.
Institute of Polymer Science and Engineering, National Taiwan University, Taipei, Taiwan.
Acta Biomater. 2021 Aug;130:66-79. doi: 10.1016/j.actbio.2021.05.055. Epub 2021 Jun 5.
Nanocomposite (NC) hydrogels are promising biomaterials that possess versatile properties and functions for biomedical applications such as drug delivery, biosensor development, imaging and tissue engineering. Different strategies and chemistries have been utilized to define the structure and properties of NC hydrogels. In this review, we discuss NC hydrogels synthesized using dynamic bonds, including dynamic covalent bonds (e.g., Schiff base and boronate ester bond) and non-covalent bonds (e.g., hydrogen bonds and metal-ligand coordination). Dynamic bonds can reversibly break and reform to provide self-healing properties to NC hydrogels as well as be influenced by external factors to allow NC hydrogels with stimulus-responsiveness. The presence of dynamic bonds in NC hydrogels can occur at the polymer-polymer or polymer-particle interfaces, which also determines whether the particles act as fillers or crosslinkers in hydrogels. Several representative examples of NC hydrogels fabricated using dynamic bonds are discussed here, focusing on their design, preparation, properties, applications and future prospects. STATEMENT OF SIGNIFICANCE: This review provides an overview of the current progress in NC hydrogel development using dynamic bonds, summarizing the material design, fabrication approaches, unique performance and promising biomedical applications. The presence of both nanoparticles and dynamic bonds in hydrogels shows a combined or synergistic effect to provide hydrogels with dynamic features, definable properties, multi-functionality and stimulus-responsiveness for advanced applications. We believe that this review will be of interest to the hydrogel community and inspire researchers to develop next-generation hydrogels.
纳米复合(NC)水凝胶是一种很有前途的生物材料,具有多种特性和功能,可用于药物输送、生物传感器开发、成像和组织工程等生物医学应用。已经采用了不同的策略和化学方法来定义 NC 水凝胶的结构和性质。在这篇综述中,我们讨论了使用动态键合成的 NC 水凝胶,包括动态共价键(例如席夫碱和硼酸酯键)和非共价键(例如氢键和金属配体配位)。动态键可以可逆地断裂和重组,为 NC 水凝胶提供自修复特性,并受外部因素影响,使 NC 水凝胶具有刺激响应性。动态键在 NC 水凝胶中的存在可以发生在聚合物-聚合物或聚合物-颗粒界面上,这也决定了颗粒在水凝胶中是作为填充剂还是交联剂发挥作用。本文讨论了使用动态键制备的几种具有代表性的 NC 水凝胶实例,重点介绍了它们的设计、制备、性能、应用和未来前景。意义声明:本文综述了使用动态键开发 NC 水凝胶的最新进展,总结了材料设计、制备方法、独特性能和有前途的生物医学应用。水凝胶中纳米颗粒和动态键的存在表现出协同作用,为水凝胶提供了动态特性、可定义的性质、多功能性和刺激响应性,以满足先进应用的需求。我们相信,这篇综述将引起水凝胶研究人员的兴趣,并激发他们开发下一代水凝胶。