Wang Yu, Jin Shanshan, Guo Yaru, Lu Yilong, Deng Xuliang
Department of Orthodontics, Peking University School and Hospital of Stomatology & National Center for Stomatology & National Clinical Research Center for Oral Diseases & National Engineering Laboratory for Digital and Material Technology of Stomatology, Beijing, China.
Department of Pediatric Dentistry, Peking University School and Hospital of Stomatology & National Center for Stomatology & National Clinical Research Center for Oral Diseases & National Engineering Laboratory for Digital and Material Technology of Stomatology, Beijing, China.
Int J Oral Sci. 2025 Jan 10;17(1):7. doi: 10.1038/s41368-024-00340-w.
Regenerating periodontal bone defect surrounding periodontal tissue is crucial for orthodontic or dental implant treatment. The declined osteogenic ability of periodontal ligament stem cells (PDLSCs) induced by inflammation stimulus contributes to reduced capacity to regenerate periodontal bone, which brings about a huge challenge for treating periodontitis. Here, inspired by the adhesive property of mussels, we have created adhesive and mineralized hydrogel microspheres loaded with traditional compound cordycepin (MMS-CY). MMS-CY could adhere to the surface of alveolar bone, then promote the migration capacity of PDLSCs and thus recruit them to inflammatory periodontal tissues. Furthermore, MMS-CY rescued the impaired osteogenesis and ligament-forming capacity of PDLSCs, which were suppressed by the inflammation stimulus. Moreover, MMS-CY also displayed the excellent inhibitory effect on the osteoclastic activity. Mechanistically, MMS-CY inhibited the premature senescence induced by the inflammation stimulus through the nuclear factor erythroid 2-related factor (NRF2) pathway and reducing the DNA injury. Utilizing in vivo rat periodontitis model, MMS-CY was demonstrated to enhance the periodontal bone regeneration by improving osteogenesis and inhibiting the osteoclastic activity. Altogether, our study indicated that the multi-pronged approach is promising to promote the periodontal bone regeneration in periodontitis condition by reducing the inflammation-induced stem cell senescence and maintaining bone homeostasis.
牙周组织周围再生性牙周骨缺损对于正畸或牙种植治疗至关重要。炎症刺激诱导的牙周膜干细胞(PDLSCs)成骨能力下降导致牙周骨再生能力降低,这给牙周炎的治疗带来了巨大挑战。在此,受贻贝粘附特性的启发,我们制备了负载传统化合物虫草素的粘附性矿化水凝胶微球(MMS-CY)。MMS-CY可粘附于牙槽骨表面,进而促进PDLSCs的迁移能力,从而将它们募集到炎症性牙周组织中。此外,MMS-CY挽救了被炎症刺激抑制的PDLSCs受损的成骨和韧带形成能力。而且,MMS-CY对破骨细胞活性也显示出优异的抑制作用。机制上,MMS-CY通过核因子红细胞2相关因子(NRF2)途径抑制炎症刺激诱导的早衰并减少DNA损伤。利用体内大鼠牙周炎模型,MMS-CY被证明可通过改善成骨和抑制破骨细胞活性来增强牙周骨再生。总之,我们的研究表明,这种多管齐下的方法有望通过减少炎症诱导的干细胞衰老和维持骨稳态来促进牙周炎状态下的牙周骨再生。