University Politehnica of Bucharest, Advanced Polymer Materials Group, Bucharest, Romania.
Academy of Romanian Scientists, Bucharest, Romania.
Biotechnol Bioeng. 2022 Mar;119(3):762-783. doi: 10.1002/bit.28020. Epub 2022 Jan 8.
Nanostructured compounds already validated as performant reinforcements for biomedical applications together with different fabrication strategies have been often used to channel the biophysical and biochemical features of hydrogel networks. Ergo, a wide array of nanostructured compounds has been employed as additive materials integrated with hydrophilic networks based on naturally-derived polymers to produce promising scaffolding materials for specific fields of regenerative medicine. To date, nanoengineered hydrogels are extensively explored in (bio)printing formulations, representing the most advanced designs of hydrogel (bio)inks able to fabricate structures with improved mechanical properties and high print fidelity along with a cell-interactive environment. The development of printing inks comprising organic-inorganic hybrid nanocomposites is in full ascent as the impact of a small amount of nanoscale additive does not translate only in improved physicochemical and biomechanical properties of bioink. The biopolymeric nanocomposites may even exhibit additional particular properties engendered by nano-scale reinforcement such as electrical conductivity, magnetic responsiveness, antibacterial or antioxidation properties. The present review focus on hydrogels nanoengineered for 3D printing of biomimetic constructs, with particular emphasis on the impact of the spatial distribution of reinforcing agents (0D, 1D, 2D). Here, a systematic analysis of the naturally-derived nanostructured inks is presented highlighting the relationship between relevant length scales and size effects that influence the final properties of the hydrogels designed for regenerative medicine.
纳米结构化合物已被验证为生物医学应用的高效增强剂,结合不同的制造策略,常用于调节水凝胶网络的生物物理和生物化学特性。因此,广泛的纳米结构化合物已被用作添加剂材料,与基于天然聚合物的亲水性网络结合,以生产用于再生医学特定领域的有前途的支架材料。迄今为止,纳米工程水凝胶在(生物)打印配方中得到了广泛探索,代表了水凝胶(生物)墨水的最先进设计,能够制造具有改进的机械性能和高打印保真度以及细胞相互作用环境的结构。包含有机-无机杂化纳米复合材料的打印墨水的开发正在全面展开,因为少量纳米添加剂的影响不仅会改善生物墨水的物理化学和生物力学性能。生物聚合物纳米复合材料甚至可能表现出由纳米增强剂引起的额外特殊性质,例如导电性、磁响应性、抗菌或抗氧化性。本综述重点介绍了用于仿生构建体 3D 打印的纳米工程水凝胶,特别强调了增强剂(0D、1D、2D)空间分布的影响。在这里,对天然衍生的纳米结构油墨进行了系统分析,突出了相关长度尺度和尺寸效应之间的关系,这些关系影响了为再生医学设计的水凝胶的最终性能。