Wen Zhuo, Shi Xinyue, Li Xuejing, Liu Weicai, Liu Yukun, Zhang Renyuan, Yu Yiqiang, Su Jiansheng
Department of Prosthodontics, Stomatological Hospital and Dental School of Tongji University, Shanghai Engineering Research Center of Tooth Restoration and Regeneration, Shanghai 200072, P. R. China.
Institute of New Energy for Vehicles, Shanghai Key Laboratory for Development and Application of Metallic Functional Materials, School of Materials Science and Engineering, Tongji University, Shanghai 201804, P. R. China.
ACS Appl Mater Interfaces. 2023 Mar 29;15(12):15235-15249. doi: 10.1021/acsami.3c00812. Epub 2023 Mar 17.
Two major issues are currently hindering the clinical practice of titanium dental implants for the lack of biological activities: immediate/early loading risks and peri-implantitis. To solve these issues, it is urgent to develop multifunctional implants modified with effective osteogenic and antibacterial properties. Zinc oxide nanoparticles (ZnO NPs) possess superior antibacterial activity; however, they can rapidly release Zn, causing cytotoxicity. In this study, a potential dental implant modification was creatively developed as ZnO nanoparticle-loaded mesoporous TiO coatings (nZnO/MTC-Ti) the evaporation-induced self-assembly method (EISA) and one-step spin coating. The mesoporous TiO coatings (MTCs) regulated the synthesis and loading of ZnO NPs inside the nanosized pores. The synergistic effects of MTC and ZnO NPs on nZnO/MTC-Ti not only controlled the long-term steady-state release of Zn but also optimized the charge distribution on the surface. Therefore, the cytotoxicity of ZnO NPs was resolved without triggering excessive reactive oxygen species (ROS). The increased extracellular Zn further promoted a favorable intracellular zinc ion microenvironment through the modulation of zinc transporters (ZIP1 and ZnT1). Owing to that, the adhesion, proliferation, and osteogenic activity of bone mesenchymal stem cells (BMSCs) were improved. Additionally, nZnO/MTC-Ti inhibited the proliferation of oral pathogens (Pg and Aa) by inducing bacterial ROS production. For experiments, different implants were implanted into the alveolar fossa of Sprague-Dawley rats immediately after tooth extraction. The nZnO/MTC-Ti implants were found to possess a higher capability for enhancing bone regeneration, antibiosis, and osseointegration . These findings suggested the outstanding performance of nZnO/MTC-Ti implants in accelerating osseointegration and inhibiting bacterial infection, indicating a huge potential for solving immediate/early loading risks and peri-implantitis of dental implants.
目前,由于缺乏生物活性,两个主要问题阻碍了钛牙种植体的临床应用:即刻/早期加载风险和种植体周围炎。为了解决这些问题,迫切需要开发具有有效成骨和抗菌性能的多功能种植体。氧化锌纳米颗粒(ZnO NPs)具有优异的抗菌活性;然而,它们会迅速释放锌,导致细胞毒性。在本研究中,通过蒸发诱导自组装法(EISA)和一步旋涂法,创造性地开发了一种潜在的牙种植体改性方法,即负载ZnO纳米颗粒的介孔TiO涂层(nZnO/MTC-Ti)。介孔TiO涂层(MTCs)调节了纳米孔内ZnO NPs的合成和负载。MTC和ZnO NPs对nZnO/MTC-Ti的协同作用不仅控制了锌的长期稳态释放,还优化了表面电荷分布。因此,解决了ZnO NPs的细胞毒性问题,而不会引发过多的活性氧(ROS)。增加的细胞外锌通过调节锌转运蛋白(ZIP1和ZnT1)进一步促进了有利的细胞内锌离子微环境。因此,骨间充质干细胞(BMSCs)的粘附、增殖和成骨活性得到了改善。此外,nZnO/MTC-Ti通过诱导细菌ROS产生抑制口腔病原体(Pg和Aa)的增殖。在实验中,拔牙后立即将不同的种植体植入Sprague-Dawley大鼠的牙槽窝。发现nZnO/MTC-Ti种植体在增强骨再生、抗菌和骨整合方面具有更高的能力。这些发现表明nZnO/MTC-Ti种植体在加速骨整合和抑制细菌感染方面具有出色的性能,显示出解决牙种植体即刻/早期加载风险和种植体周围炎的巨大潜力。