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Polymeric 3D scaffolds for tissue regeneration: Evaluation of biopolymer nanocomposite reinforced with cellulose nanofibrils

机译:用于组织再生的聚合物3D支架:用纤维素纳米纤维增强的生物聚合物纳米复合材料的评价

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摘要

Biopolymers such as gelatin (Gel) and cellulose nanofibrils (CNF) have many of the essential requirements for being used as scaffolding materials in tissue regeneration; biocompatibility, surface chemistry, ability to generate homogeneous hydrogels and 3D structures with suitable pore size and interconnection, which allows cell colonization and proliferation. The purpose of this study was to investigate whether the mechanical behaviour of the Gel matrix can be improved by means of functionalization with cellulose nanofibrils and proper cross-linking treatments. Blending processes were developed to achieve a polymer nanocomposite incorporating the best features of both biopolymers: biomimicry of the Gel and structural reinforcement by the CNF. The designed 3D structures underline interconnected porosity achieved by freeze-drying process, improved mechanical properties and chemical stability that are tailored by CNF addition and different cross-linking approaches. In vitro evaluations reveal the preservation of the biocompatibility of Gel and its good interaction with cells by promoting cell colonization and proliferation. The results support the addition of cellulose nanofibrils to improve the mechanical behaviour of 3D porous structures suitable as scaffolding for tissue regeneration.
机译:诸如明胶(凝胶)和纤维素纳米纤维(CNF)的生物聚合物具有许多用于在组织再生中用作脚手架材料的必要要求;生物相容性,表面化学,产生均匀水凝胶的能力和具有合适的孔径和互连的均匀水凝胶,其允许细胞定植和增殖。本研究的目的是通过用纤维素纳米纤维和适当的交联处理来研究凝胶基质的力学行为是否可以改善。开发混合方法以实现一种聚合物纳米复合材料,其含有Bio聚合物的最佳特征:凝胶的生物摩擦和CNF的结构增强。设计的3D结构通过冷冻干燥过程实现了相互连接的孔隙率,通过CNF加法和不同的交联方法根据CNF添加和不同的交联方法进行了改善的机械性能和化学稳定性。体外评估揭示通过促进细胞定植和增殖来保存凝胶的生物相容性及其与细胞的良好相互作用。结果支持添加纤维素纳米纤维,以改善3D多孔结构的力学行为,适合作为组织再生的支架。

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