Key Laboratory of Synthetic and Biological Colloids, Ministry of Education, School of Chemical and Material Engineering, Jiangnan University, Wuxi, China.
The Affiliated Wuxi No.2 People's Hospital of Nanjing Medical University, Chong'an District, Jiangsu, China.
J Biomed Mater Res A. 2019 Aug;107(8):1615-1627. doi: 10.1002/jbm.a.36678. Epub 2019 Apr 11.
Three-dimensional (3D) homogenous scaffolds composed of natural biopolymers have been reported as superior candidates for bone tissue engineering. There are still remaining challenges in fabricating the functional scaffolds with gradient structures to similar with natural bone tissues, as well as high mechanical properties and excellent affinity to surround tissues. Herein, inspired by the natural bone structure, a gradient-structural scaffold composed of functional biopolymers was designed to provide an optimized 3D environment for promoting cell growth. To increase the interactions among the scaffolds, dopamine (DA) was employed to modify alginate (Alg) and needle-like nano-hydroxyapatite (HA) was prepared with quaternized chitosan as template. The obtained dopamine-modified alginate (Alg-DA) and quaternized chitosan-templated hydroxyapatite (QCHA) were then used to fabricate the porous gradient scaffold by "iterative layering" freeze-drying technique with further crosslinking by calcium ions (Ca ). The as-prepared Alg-DA/QCHA gradient scaffolds were possessed seamlessly integrated layer structures and high levels of porosity at around 77.5%. Moreover, the scaffolds showed higher compression modules (1.7 MPa) than many other biopolyermic scaffolds. The gradient scaffolds showed appropriate degradation rate to satisfy with the time of the bone regeneration. Both human chondrocytes and fibroblasts could adhesive and growth well on the scaffolds in vitro. Furthermore, an excellent osteogenetic activity of the gradient scaffold can effectively promote the regeneration of the bone tissue and accelerate the repair of the bone defects in vivo, compared with that of the scaffold with the homogenous structure. The novel multilayered scaffold with gradient structure provided an interesting option for bone tissue engineering. © 2019 Wiley Periodicals, Inc. J Biomed Mater Res Part A: 107A: 1615-1627, 2019.
三维(3D)均质支架由天然生物聚合物组成,已被报道为骨组织工程的优秀候选材料。在制造具有梯度结构的功能性支架方面仍然存在挑战,这些支架需要与天然骨组织相似的结构、较高的机械性能和与周围组织的优异亲和力。在此,受天然骨结构的启发,设计了一种由功能生物聚合物组成的梯度结构支架,为促进细胞生长提供了优化的 3D 环境。为了增加支架之间的相互作用,使用多巴胺(DA)修饰藻酸盐(Alg),并使用季铵化壳聚糖作为模板制备针状纳米羟基磷灰石(HA)。然后,通过“迭代分层”冷冻干燥技术,用钙离子(Ca)进一步交联,将得到的多巴胺修饰藻酸盐(Alg-DA)和季铵化壳聚糖模板化的羟基磷灰石(QCHA)用于制备多孔梯度支架。所制备的 Alg-DA/QCHA 梯度支架具有无缝集成的层状结构和约 77.5%的高孔隙率。此外,支架的压缩模量(1.7 MPa)高于许多其他生物聚合物支架。梯度支架具有适当的降解率,可满足骨再生的时间要求。体外,人软骨细胞和成纤维细胞均可在支架上黏附和良好生长。此外,与具有同质结构的支架相比,梯度支架具有优异的成骨活性,可有效促进骨组织再生和加速体内骨缺损的修复。新型多层梯度支架为骨组织工程提供了一个有趣的选择。© 2019 年 Wiley 期刊出版公司。J 生物材料研究杂志 A 部分:107A:1615-1627,2019 年。