Li Shaoping, Xiaowen Yundeng, Yang Yuqing, Liu Libo, Sun Yifan, Liu Ying, Yin Lulu, Chen Zhiyu
Key Laboratory of Stomatology in Hebei Province, Hospital of Stomatology Hebei Medical University, Shijiazhuang, China.
College of Dentistry, Hebei Medical University, Shijiazhuang, China.
Front Bioeng Biotechnol. 2023 Jan 24;11:1105248. doi: 10.3389/fbioe.2023.1105248. eCollection 2023.
Although tissue engineering offered new approaches to repair bone defects, it remains a great challenge to create a bone-friendly microenvironment and rebuild bone tissue rapidly by a scaffold with a bionic structure. In this study, a multifunctional structurally optimized hydrogel scaffold was designed by integrating polyvinyl alcohol (PVA), gelatin (Gel), and sodium alginate (SA) with aspirin (ASA) and nano-hydroxyapatite (nHAP). The fabrication procedure is through a dual-crosslinking process. The chemical constitution, crystal structure, microstructure, porosity, mechanical strength, swelling and degradation property, and drug-release behavior of the hydrogel scaffold were analyzed. Multi-hydrogen bonds, electrostatic interactions, and strong "egg-shell" structure contributed to the multi-network microstructure, bone tissue-matched properties, and desirable drug-release function of the hydrogel scaffold. The excellent performance in improving cell viability, promoting cell osteogenic differentiation, and regulating the inflammatory microenvironment of the prepared hydrogel scaffold was verified using mouse pre-osteoblasts (MC3T3-E1) cells. And the synergistic osteogenic and anti-inflammatory functions of aspirin and nano-hydroxyapatite were also verified. This study provided valuable insights into the design, fabrication, and biological potential of multifunctional bone tissue engineering materials with the premise of constructing a bone-friendly microenvironment.
尽管组织工程为修复骨缺损提供了新方法,但通过具有仿生结构的支架创建有利于骨生长的微环境并快速重建骨组织仍然是一项巨大挑战。在本研究中,通过将聚乙烯醇(PVA)、明胶(Gel)、海藻酸钠(SA)与阿司匹林(ASA)和纳米羟基磷灰石(nHAP)整合,设计了一种多功能结构优化的水凝胶支架。制备过程采用双交联工艺。对水凝胶支架的化学组成、晶体结构、微观结构、孔隙率、机械强度、溶胀和降解性能以及药物释放行为进行了分析。多重氢键、静电相互作用和强大的“蛋壳”结构促成了水凝胶支架的多网络微观结构、与骨组织匹配的性能以及理想的药物释放功能。使用小鼠前成骨细胞(MC3T3-E1)验证了所制备的水凝胶支架在提高细胞活力、促进细胞成骨分化和调节炎症微环境方面的优异性能。同时也验证了阿司匹林和纳米羟基磷灰石的协同成骨和抗炎功能。本研究在构建有利于骨生长的微环境的前提下,为多功能骨组织工程材料的设计、制备和生物学潜力提供了有价值的见解。