Li Ruiying, Li Shuigen, Zhang Yi, Jin Di, Lin Zhiming, Tao Xian, Chen Tianlai, Zheng Liyuan, Zhang Zhisheng, Wu Qianju
Stomatological Hospital of Xiamen Medical College, Xiamen Key Laboratory of Stomatological Disease Diagnosis and Treatment, Xiamen, Fujian, China.
Shanghai Ninth People's Hospital, School of Medicine, Shanghai Jiao Tong University, Xiamen, China.
Front Bioeng Biotechnol. 2023 Jul 10;11:1223339. doi: 10.3389/fbioe.2023.1223339. eCollection 2023.
Insufficient osseointegration and implant-associated infection are major factors in the failure of Ti-based implants, thus spurring scientists to develop multifunctional coatings that are better suited for clinical requirements. Here, a new biomimetic micro/nanoscale topography coating combined with antibacterial copper was simultaneously designed for Ti-based implant surfaces by adopting a hybrid approach combining plasma electrolytic oxidation and hydrothermal treatment. The biological interactions between this biofunctionalized material interface and stem cells promoted cellular adhesion and spreading during initial attachment and supported cellular proliferation for favorable biocompatibility. Bone marrow mesenchymal stem cells (BMMSCs) on the coating displayed enhanced cellular mineral deposition ability, higher alkaline phosphatase activity, and upregulated expression of osteogenic-related markers without the addition of osteoinductive chemical factors, which improved osseointegration. More interestingly, this new coating reduced the viability of oral pathogens ( and )-the primary causes of implant-associated infections as indicated by damage of cellular structures and decreased population. This is the first study investigating the antibacterial property of dental implants modified by a hybrid approach against oral pathogens to better mimic the oral environment. These findings suggest that biofunctionalization of the implant coating by surface modification methods and the incorporation of antibacterial copper (Cu) offer superior osteogenesis capability and effective antibacterial activity, respectively. These strategies have great value in orthopedic and dental implant applications.
骨整合不足和种植体相关感染是钛基种植体失败的主要因素,因此促使科学家开发更适合临床需求的多功能涂层。在此,通过采用等离子体电解氧化和水热处理相结合的混合方法,为钛基种植体表面同时设计了一种结合抗菌铜的新型仿生微/纳米级形貌涂层。这种生物功能化材料界面与干细胞之间的生物相互作用在初始附着过程中促进了细胞黏附和铺展,并支持细胞增殖,具有良好的生物相容性。涂层上的骨髓间充质干细胞(BMMSCs)在不添加骨诱导化学因子的情况下,表现出增强的细胞矿物质沉积能力、更高的碱性磷酸酶活性和成骨相关标志物的上调表达,从而改善了骨整合。更有趣的是,这种新型涂层降低了口腔病原体( 和 )的活力,细胞结构损伤和数量减少表明它们是种植体相关感染的主要原因。这是第一项研究通过混合方法改性的牙科种植体对口腔病原体的抗菌性能以更好模拟口腔环境的研究。这些发现表明,通过表面改性方法对种植体涂层进行生物功能化以及掺入抗菌铜(Cu)分别提供了卓越的成骨能力和有效的抗菌活性。这些策略在骨科和牙科种植体应用中具有重要价值。