State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, College of Textiles , Donghua University , Shanghai 201620 , China.
School of Radiation Medicine and Protection, State Key Laboratory of Radiation Medicine and Protection, Collaborative Innovation Center of Radiological Medicine of Jiangsu Higher Education Institutions, and Priority Academic Program Development of Jiangsu Higher Education Institutions (PAPD) , Medical College of Soochow University , Suzhou , Jiangsu 215123 , China.
Nano Lett. 2019 Dec 11;19(12):9112-9120. doi: 10.1021/acs.nanolett.9b04313. Epub 2019 Dec 2.
It has been a major challenge to treat osteoporotic bone defects with irregular shapes. Although bioactive glass offers an attractive material for bone regeneration, its inherent brittleness has greatly limited its scope of application. Herein, we report the fabrication of bioactive glass (SiO-CaO) nanofibers with excellent flexibility to even allow for 180° bending. The bioactive glass nanofibers could be further assembled into 3D fibrous scaffolds with chitosan serving as the linkers. The scaffolds constructed from an assembly of 85SiO-15CaO nanofibers and chitosan (85SiO-15CaO NF/CS) possessed significantly better mechanical properties when benchmarked against both 75SiO-25CaO nanofiber- and chitosan-based scaffolds. Moreover, the 85SiO-15CaO NF/CS scaffolds exhibited an elastic behavior, with full recovery from 80% compression and good fatigue resistance over 1000 cycles of compression under water. Upon implantation, the elastic fibrous scaffolds were able to deform and fit irregularly shaped bone defects, followed by a self-deploying behavior to achieve a perfect match with the cavities. When applied to the repair of an osteoporotic calvarial defect in a rat model, the 85SiO-15CaO NF/CS scaffolds showed substantial promotion of bone regrowth and vascularization. This new class of 3D fibrous scaffold provides a promising advancement in engineering smart materials for complex bone repair.
治疗形状不规则的骨质疏松性骨缺损一直是一个重大挑战。尽管生物活性玻璃为骨再生提供了一种有吸引力的材料,但它固有的脆性极大地限制了其应用范围。在此,我们报告了制备具有优异柔韧性的生物活性玻璃(SiO-CaO)纳米纤维,甚至可以允许 180°弯曲。生物活性玻璃纳米纤维可以进一步与壳聚糖组装成 3D 纤维支架,壳聚糖作为连接物。由 85SiO-15CaO 纳米纤维和壳聚糖(85SiO-15CaO NF/CS)组装而成的支架与 75SiO-25CaO 纳米纤维和壳聚糖支架相比,具有显著更好的机械性能。此外,85SiO-15CaO NF/CS 支架表现出弹性行为,可从 80%的压缩中完全恢复,在水中经过 1000 次压缩循环后具有良好的耐疲劳性。植入后,弹性纤维支架能够变形并适应形状不规则的骨缺损,然后自行展开以与腔室完美匹配。在骨质疏松性大鼠颅骨缺损修复的应用中,85SiO-15CaO NF/CS 支架显示出大量促进骨再生和血管生成的作用。这种新型 3D 纤维支架为复杂骨修复的智能材料工程提供了有希望的进展。