Osman Henigul, Tang Xiaohui, Wei Qin, Liu Bo, Gao Jie, Wang Yingbo
College of Chemical Engineering, Xinjiang Normal University, 102 Xinyi Road, Urumqi 830054, P. R. China.
ACS Appl Bio Mater. 2025 Jul 21;8(7):6326-6338. doi: 10.1021/acsabm.5c00802. Epub 2025 Jun 17.
In response to the issues of infection and poor bone integration in orthopedic implants, this study successfully developed a multifunctional composite coating composed of poly(pyrrole) (PPy), hydroxyapatite (HA), and silver-copper (Ag-Cu) bimetallic nanoparticles (NPs) on titanium (Ti) substrates using an electrochemical in situ deposition technique. Upon near-infrared light (NIR, 808 nm) stimulation, this coating exhibits synergistic antibacterial and osteogenic effects through photothermal (PTT) and photodynamic (PDT) processes. Characterization results indicate that the Ag-Cu NPs are uniformly distributed within the coating (Ag: 1.7 wt %, Cu: 2.0 wt %), and the concentrations of Ag and Cu released (2.9526 mg·L and 0.1932 mg·L, respectively) are significantly lower than the cytotoxic threshold (10 mg·L). PTT tests reveal that the coating achieves a PTT conversion efficiency of 33.8%, with the temperature rising to 49.9 °C within 10 min under 1.0 W·cm irradiation, generating high levels of singlet oxygen (O). This leads to a 100% bactericidal rate against and . In vitro biocompatibility assays show that the gradient release of HA and the synergistic effect of Ag/Cu significantly enhance the proliferation of bone marrow mesenchymal stem cells (BMSCs), with optical density reaching 1.49 after 7 days of culture. Additionally, osteogenic differentiation is promoted, as evidenced by a 2.9-fold increase in alkaline phosphatase (ALP) activity and a 2.1-fold increase in calcium nodule formation. Western blot analysis further confirmed that the coating induces the high expression of Runx2 via activation of the Wnt/β-catenin signaling pathway, thereby driving osteogenesis. This study presents a strategy for the development of smart implants with both efficient antibacterial and bone integration capabilities.
针对骨科植入物的感染和骨整合不良问题,本研究采用电化学原位沉积技术,成功在钛(Ti)基底上制备了一种由聚吡咯(PPy)、羟基磷灰石(HA)和银铜(Ag-Cu)双金属纳米颗粒(NPs)组成的多功能复合涂层。在近红外光(NIR,808 nm)刺激下,该涂层通过光热(PTT)和光动力(PDT)过程展现出协同抗菌和成骨作用。表征结果表明,Ag-Cu NPs均匀分布在涂层中(Ag:1.7 wt%,Cu:2.0 wt%),释放的Ag和Cu浓度(分别为2.9526 mg·L和0.1932 mg·L)显著低于细胞毒性阈值(10 mg·L)。PTT测试表明,该涂层的PTT转换效率为33.8%,在1.0 W·cm照射下10分钟内温度升至49.9 °C,产生高水平的单线态氧(O)。这导致对 和 的杀菌率达到100%。体外生物相容性分析表明,HA的梯度释放以及Ag/Cu的协同作用显著促进了骨髓间充质干细胞(BMSCs)的增殖,培养7天后光密度达到1.49。此外,成骨分化也得到促进,碱性磷酸酶(ALP)活性增加2.9倍,钙结节形成增加2.1倍。蛋白质印迹分析进一步证实,该涂层通过激活Wnt/β-连环蛋白信号通路诱导Runx2的高表达,从而驱动骨生成。本研究提出了一种开发具有高效抗菌和骨整合能力的智能植入物的策略。