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电场诱导凝胶技术制备具有松质骨相似的多孔结构和力学强度的羟基磷灰石/丝素复合支架

Hydroxyapatite/Silk Fibroin Composite Scaffold with a Porous Structure and Mechanical Strength Similar to Cancellous Bone by Electric Field-Induced Gel Technology.

机构信息

National Engineering Laboratory for Modern Silk, College of Textile and Clothing Engineering, Soochow University, Suzhou 215123, P. R. China.

College of Advanced Material Engineering, Jiaxing Nanhu University, Jiaxing 314001, P. R. China.

出版信息

ACS Appl Mater Interfaces. 2024 Nov 6;16(44):60977-60991. doi: 10.1021/acsami.4c12470. Epub 2024 Oct 25.

Abstract

Repair and regeneration of bone tissue defects is a multidimensional process that has been highly challenging to date. The artificial bone scaffold materials, which play a core role, still face the conflict that a biofriendly porous structure will reduce the mechanical performance and accelerate degradation. Herein, a multistage porous structured hydroxyapatite (HA)/silk fibroin (SF) composite scaffold (e-HA/SF) was successfully constructed by cleverly utilizing electric field-induced gel technology. The results indicated that the prepared e-HA/SF scaffolds possess biomimetic hierarchical porous structures with a suitable porosity similar to that of cancellous bone. The HA nanocrystals were uniformly encapsulated in the three-dimensional space of the composite scaffold, thus endowing the e-HA/SF composite scaffolds with an enhanced mechanical performance. Notably, the maximum compression stress and Young's modulus of e-HA/SF-2 scaffolds can reach 24.66 ± 0.88 and 28.91 ± 3.19 MPa, respectively, which are equivalent to those of cancellous bone. Such mechanical performance enhancement was previously unattainable through conventional freeze-drying strategies. Moreover, the introduction of bioactive nano-HA can trigger the optimal cell response in both static and dynamic cell culture experiments . The e-HA/SF composite scaffold developed in this study can better balance the conflict between the porous structure and mechanical and degradation properties of porous scaffolds.

摘要

骨组织缺损的修复和再生是一个多维度的过程,迄今为止一直极具挑战性。人工骨支架材料作为核心,仍然面临着一个矛盾,即生物友好型多孔结构会降低机械性能并加速降解。在此,通过巧妙利用电场诱导凝胶技术成功构建了具有多级多孔结构的羟基磷灰石(HA)/丝素蛋白(SF)复合支架(e-HA/SF)。结果表明,所制备的 e-HA/SF 支架具有仿生分级多孔结构,具有类似于松质骨的合适孔隙率。HA 纳米晶体均匀地包裹在复合支架的三维空间中,从而赋予 e-HA/SF 复合支架增强的机械性能。值得注意的是,e-HA/SF-2 支架的最大压缩应力和杨氏模量分别可达 24.66±0.88MPa 和 28.91±3.19MPa,与松质骨相当。这种机械性能的增强以前是无法通过传统的冷冻干燥策略实现的。此外,生物活性纳米 HA 的引入可以在静态和动态细胞培养实验中引发最佳的细胞反应。本研究中开发的 e-HA/SF 复合支架可以更好地平衡多孔支架的多孔结构与机械和降解性能之间的冲突。

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