College of Chemical Engineering, Xinjiang Normal University, 102 Xinyi Road, Urumqi, 830054, P. R. China.
College of Control Engineering, Xinjiang Institute of Engineering, 1350 Aidinghu Road, Urumqi, 830023, P. R. China.
Macromol Biosci. 2024 Aug;24(8):e2400079. doi: 10.1002/mabi.202400079. Epub 2024 May 14.
Trauma and tumor removal usually cause bone defects; in addition, the related postoperative infection also shall be carefully considered clinically. In this study, polylactic acid (PLLA) composite fibers containing Cerium oxide (CeO) are first prepared by electrospinning technology. Then, the PLLA/CeO@PDA/Ag composite materials are successfully prepared by reducing silver ion (Ag) to nano-silver (AgNPs) coating in situ and binding AgNPs to the materials surface by mussel structure liked polydopamine (PDA). In the materials, Ag can be slowly released in simulated body fluids. Based on the photothermal performance of AgNPs, the photothermal conversion efficiency of the materials is 21%, under NIR 808 nm illumination. The effective photothermal conversion can help materials fighting with E. coli and S. aureus in 3 h, with an antibacterial rate of 100%. Additionally, the sustained Ag release contributes to the antibacterial in long term. Meanwhile, the materials can mimic the bio-behavior of superoxide dismutase and catalase in decreasing the singlet oxygen level and removing the excess reactive oxygen species. Furthermore, the materials are beneficial for cell proliferation and osteogenic differentiation in vitro. In this study, a promising bone-regenerated material with high photothermal conversion efficiency and antibacterial and anti-oxidation properties, is successfully constructed.
创伤和肿瘤的切除通常会导致骨缺损;此外,相关的术后感染也需要在临床上仔细考虑。在本研究中,我们首先通过静电纺丝技术制备了含有氧化铈(CeO)的聚乳酸(PLLA)复合纤维。然后,通过原位还原银离子(Ag)并通过贻贝类结构的聚多巴胺(PDA)将 AgNPs 结合到材料表面,成功制备了 PLLA/CeO@PDA/Ag 复合材料。在该材料中,Ag 可以在模拟体液中缓慢释放。基于 AgNPs 的光热性能,在 808nm NIR 光照下,材料的光热转换效率为 21%。有效的光热转换可以帮助材料在 3 小时内对抗大肠杆菌和金黄色葡萄球菌,抗菌率达到 100%。此外,Ag 的持续释放有助于长期的抗菌作用。同时,该材料可以模拟超氧化物歧化酶和过氧化氢酶的生物行为,降低单线态氧水平并清除多余的活性氧。此外,该材料有利于体外细胞增殖和成骨分化。在本研究中,成功构建了一种具有高效光热转换效率、抗菌和抗氧化性能的有前途的骨再生材料。