State Key Laboratory of Oral Diseases & National Center for Stomatology & National Clinical Research Center for Oral Diseases, West China Hospital of Stomatology, Sichuan University, Chengdu 610041, Sichuan, China.
College of Polymer Science and Engineering, State Key Laboratory of Polymer Materials Engineering, Sichuan University, Chengdu 610065, China.
Acta Biomater. 2024 Nov;189:323-336. doi: 10.1016/j.actbio.2024.10.008. Epub 2024 Oct 10.
Periodontitis suffer from inflammation-induced destruction of periodontal tissues, resulting in the serious loss of alveolar bone. Controlling inflammation and promoting bone regeneration are two crucial aspects for periodontitis-related alveolar bone defect treatment. Herein, we developed a hierarchically structured nanofibrous scaffold with a nano-embossed sheath and a bone morphogenetic protein 2-loaded core to match the periodontitis-specific features that spatiotemporally modulated the osteoimmune environment and promoted periodontal bone regeneration. We investigated the potential of this unique scaffold to treat periodontitis-related alveolar bone defects in vivo and in vitro. The results demonstrated that the hierarchically structured scaffold effectively reduced the inflammatory levels in macrophages and enhanced the osteogenic potential of bone mesenchymal stem cells in an inflammatory microenvironment. Moreover, in vivo experiments revealed that the hierarchically structured scaffold significantly ameliorated inflammation in the periodontium and inhibited alveolar bone resorption. Notably, the hierarchically structured scaffold also exhibited a prolonged effect on promoting alveolar bone regeneration. These findings highlight the significant therapeutic potential of hierarchically structured nanofibrous scaffolds for the treatment of periodontitis, and their promising role in the field of periodontal tissue regeneration. STATEMENT OF SIGNIFICANCE: We present a novel hierarchically structured nanofibrous scaffold of coupling topological and biomolecular signals for precise spatiotemporal modulation of the osteoimmune micro-environment. Specifically, the scaffold was engineered via coaxial electrospinning of the poly(ε-caprolactone) sheath and a BMP-2/polyvinyl alcohol core, followed by surface-directed epitaxial crystallization to generate cyclic nano-lamellar embossment on the sheath. With this unique hierarchical structure, the cyclic nano-lamellar sheath provided a direct nano-topographical cue to alleviate the osteoimmune environment, and the stepwise release of BMP-2 from the core provided a biological cue for bone regeneration. This research underscores the potential of hierarchically structured nanofibrous scaffolds as a promising therapeutic approach for periodontal tissue regeneration and highlights their role in advancing periodontal tissue engineering.
牙周炎患者患有炎症诱导的牙周组织破坏,导致牙槽骨严重丧失。控制炎症和促进骨再生是治疗牙周炎相关牙槽骨缺损的两个关键方面。在此,我们开发了一种具有纳米压花鞘和负载骨形态发生蛋白 2 的核心的分层结构纳米纤维支架,以匹配牙周炎特有的特征,时空调节骨免疫环境并促进牙周骨再生。我们研究了这种独特支架在体内和体外治疗牙周炎相关牙槽骨缺损的潜力。结果表明,分层结构支架有效地降低了巨噬细胞中的炎症水平,并在炎症微环境中增强了骨髓间充质干细胞的成骨潜能。此外,体内实验表明,分层结构支架显著改善了牙周组织的炎症,并抑制了牙槽骨吸收。值得注意的是,分层结构支架在促进牙槽骨再生方面也表现出了持久的效果。这些发现强调了分层结构纳米纤维支架在治疗牙周炎方面的显著治疗潜力,以及它们在牙周组织再生领域的广阔应用前景。