Zhu Ting, Ni Qi, Wang Wenjie, Guo Dongdong, Li Yixiao, Chen Tianyu, Zhao Dongyang, Ma Xingyu, Zhang Xiaojun
School of Medicine, Northwest University, Xi'an 710069, China.
Key Laboratory of Resource Biology and Biotechnology Western China, Ministry of Education, Provincial Key Laboratory of Biotechnology, College of Life Sciences, Northwest University, Xi'an 710069, China.
J Funct Biomater. 2025 Mar 1;16(3):83. doi: 10.3390/jfb16030083.
Infection control and bone regeneration remain critical challenges in bone defect treatment. We developed a 3D-printed scaffold incorporating copper-based metal-organic framework-74 (Cu-MOF-74) within a polycaprolactone/hydroxyapatite composite. The synthesized Cu-MOF-74 exhibited a well-defined crystalline structure and rod-like morphology, as confirmed by TEM, EDS, FTIR, and XRD analyses. The scaffolds exhibited hierarchical pores (100-200 μm) and demonstrated tunable hydrophilicity, as evidenced by the water contact angles decreasing from 103.3 ± 2.02° (0% Cu-MOF-74) to 63.60 ± 1.93° (1% Cu-MOF-74). A biphasic Cu release profile was observed from the scaffolds, reaching cumulative concentrations of 98.97 ± 3.10 ppm by day 28. Antimicrobial assays showed concentration-dependent efficacy, with 1% Cu-MOF-74 scaffolds achieving 90.07 ± 1.94% and 80.03 ± 2.17% inhibition against and , respectively. Biocompatibility assessments using bone marrow-derived mesenchymal stem cells revealed enhanced cell proliferation at Cu-MOF-74 concentrations ≤ 0.2%, while concentrations ≥ 0.5% induced cytotoxicity. Osteogenic differentiation studies highlighted elevated alkaline phosphatase activity and mineralization in scaffolds with 0.05-0.2% Cu-MOF-74 scaffolds, particularly at 0.05% Cu-MOF-74 scaffolds, which exhibited the highest calcium deposition and upregulation of bone sialoprotein and osteopontin expression. These findings demonstrate the dual functional efficacy of Cu-MOF-74/PCL/HAp scaffolds in promoting both infection control and bone regeneration. These optimized Cu-MOF-74 concentrations (0.05-0.2%) effectively balance antimicrobial and osteogenic properties, presenting a promising strategy for bone defect repair in clinical applications.
感染控制和骨再生仍然是骨缺损治疗中的关键挑战。我们开发了一种3D打印支架,该支架在聚己内酯/羟基磷灰石复合材料中加入了铜基金属有机框架-74(Cu-MOF-74)。经透射电子显微镜(TEM)、能谱分析(EDS)、傅里叶变换红外光谱(FTIR)和X射线衍射(XRD)分析证实,合成的Cu-MOF-74呈现出明确的晶体结构和棒状形态。支架呈现出分级孔隙(100 - 200μm),并表现出可调节的亲水性,水接触角从103.3±2.02°(0% Cu-MOF-74)降至63.60±1.93°(1% Cu-MOF-74)即可证明。从支架中观察到双相铜释放曲线,到第28天累积浓度达到98.97±3.10 ppm。抗菌试验显示出浓度依赖性疗效,1% Cu-MOF-74支架对金黄色葡萄球菌和大肠杆菌的抑制率分别达到90.07±1.94%和80.03±2.17%。使用骨髓间充质干细胞进行的生物相容性评估显示,在Cu-MOF-74浓度≤0.2%时细胞增殖增强,而浓度≥0.5%则诱导细胞毒性。成骨分化研究突出了含0.05 - 0.2% Cu-MOF-74的支架中碱性磷酸酶活性和矿化增加,特别是在0.05% Cu-MOF-74的支架中,其表现出最高的钙沉积以及骨唾液蛋白和骨桥蛋白表达上调。这些发现证明了Cu-MOF-74/PCL/HAp支架在促进感染控制和骨再生方面的双重功能疗效。这些优化的Cu-MOF-74浓度(0.05 - 0.2%)有效地平衡了抗菌和成骨特性,为临床应用中的骨缺损修复提供了一种有前景的策略。