Fabrication of Nb2C MXene coated zinc for improved degradation, antibacterial activity, and osteogenesis for guided bone regeneration applications
作者:Hongyan Tang, Yuan Zhang, Yingman Chen, Jun Wang, Chenyang Huang, H. Yang, Qiang Wang, Yanjie Bai, Ping Li, Xuenan Gu, Yubo Fan · 发表于:Journal of Material Science and Technology · 年份:2025 · DOI:10.1016/j.jmst.2025.02.046 · 被引用次数:25 · 研究领域:MXene and MAX Phase Materials、Bone Tissue Engineering Materials、Graphene and Nanomaterials Applications
Addressing the limitations of current commercial GBR membranes has driven a continued commitment to optimize materials, which integrate mechanical stability, biodegradability, antibacterial, and osteogenic functionality. Zinc (Zn) is recently considered to be a promising candidate material for GBR membranes, while the in vivo osteogenic performance and antibacterial activity of pure Zn are inadequate. In this study, we developed MXene-coated Zn using an in situ self-reducing/assembling strategy to optimize the degradation, and endow antibacterial activity and osteogenesis with Zn substrates. MXene coatings exhibited excellent and stable photothermal response in the second near-infrared (NIR-II) region, enabling efficient scavenging of free radicals under NIR irradiation. The uniform and dense structure of the coating effectively blocked corrosive mediators, which significantly reduced the degradation rate of Zn substrates. This also moderated Zn ion (Zn 2+ ) release, improving cytocompatibility and promoting the migration of HGF-1 cells, osteogenic differentiation of MC3T3-E1 cells, and the secretion of anti-inflammatory factors. Moreover, the synergistic antibacterial effect of the MXene coating, involving photothermal activity and Zn 2+ , demonstrated over 99 % antibacterial efficacy against both Escherichia coli ( E. coli ) and Staphylococcus aureus ( S. aureus ). Remarkably, in a rat subcutaneous infection model, the MXene-coated Zn eradicated nearly all bacteria at biosa...