Li Zhikun, Li Yifan, Xu Wei, Yu Jimin, Tong Shichao, Zhang Xiangyang, Ye Xiaojian
Department of Orthopedics, Tongren Hospital, School of Medicine, Shanghai Jiao Tong University, Shanghai 200336, People's Republic of China.
Department of Orthopedics, Tongren Hospital, School of Medicine, Shanghai Jiao Tong University, 1111 XianXia Road, Shanghai 200336, People's Republic of China.
Open Med (Wars). 2023 Jan 28;18(1):20230636. doi: 10.1515/med-2023-0636. eCollection 2023.
The object was to enhance the bioactivity of pure polyether-ether-ketone (PEEK) by incorporating nano-TiO (n-TiO) and investigate its potential mechanism. PEEK/n-TiO composite was manufactured using a 3D PEEK printer and characterized by scanning electron microscopy (SEM), 3D profiler, energy-dispersive spectroscopy, and Fourier-transform infrared (FT-IR) analyses. Cytocompatibility was tested using SEM, fluorescence, and cell counting kit-8 assays. Osteogenic differentiation was evaluated by osteogenic gene and mineralized nodule levels. The expression of the candidate miRNAs were detected in composite group, and its role in osteogenic differentiation was studied. As a results the 3D-printed PEEK/n-TiO composite ( = 25 mm, = 2 mm) was successfully fabricated, and the TiO nanoparticles were well distributed and retained the nanoscale size of the powder. The Ra value of the composite surface was 2.69 ± 0.29, and Ti accounted for 22.29 ± 12.09% (in weight), and FT-IR analysis confirmed the characteristic peaks of TiO. The cells in the composite group possessed better proliferation and osteogenic differentiation abilities than those in the PEEK group. miR-154-5p expression was decreased in the composite group, and the inhibition of miR-154-5p significantly enhanced the proliferation and osteogenic differentiation abilities. In conclusion, 3D-printed PEEK/n-TiO composite enhanced cytocompatibility and osteogenic induction ability by downregulating miR-154-5p, which provides a promising solution for improving the osteointegration of PEEK.
目的是通过掺入纳米二氧化钛(n-TiO)来增强纯聚醚醚酮(PEEK)的生物活性,并研究其潜在机制。使用3D PEEK打印机制造PEEK/n-TiO复合材料,并通过扫描电子显微镜(SEM)、3D轮廓仪、能量色散光谱和傅里叶变换红外(FT-IR)分析对其进行表征。使用SEM、荧光和细胞计数试剂盒-8检测细胞相容性。通过成骨基因和矿化结节水平评估成骨分化。在复合材料组中检测候选miRNA的表达,并研究其在成骨分化中的作用。结果成功制备了3D打印的PEEK/n-TiO复合材料( = 25毫米, = 2毫米),TiO纳米颗粒分布良好,保留了粉末的纳米级尺寸。复合材料表面的Ra值为2.69±0.29,Ti占22.29±12.09%(重量),FT-IR分析证实了TiO的特征峰。复合材料组中的细胞比PEEK组中的细胞具有更好的增殖和成骨分化能力。复合材料组中miR-154-5p表达降低,抑制miR-154-5p可显著增强增殖和成骨分化能力。总之,3D打印的PEEK/n-TiO复合材料通过下调miR-154-5p增强了细胞相容性和成骨诱导能力,这为改善PEEK的骨整合提供了一种有前景的解决方案。