State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, Biomedical Materials and Engineering Research Center of Hubei Province, Wuhan University of Technology, Wuhan 430070, China.
Chaozhou Branch of Chemistry and Chemical Engineering Guangdong Laboratory, Chaozhou 521000, China.
J Mater Chem B. 2023 Oct 11;11(39):9532-9544. doi: 10.1039/d3tb01533e.
Repairing infected bone defects remains a severe challenge due to antibiotic abuse and recurrence. Hence, we modified magnetocaloric FeO nanoparticles and added them to magnesium calcium phosphate bone cement (MCPC) to fabricate multifunctional magnetic composites for sequential bacterial inhibition, angiogenesis and osteogenesis. Nevertheless, high doses of Mg ions and Fe ions were released from MCPC, which adversely affected osteogenesis. Thus, FeO was modified using gelatin according to the emulsification crosslinking method, which exhibited a controllable magnetocaloric effect and degradation behavior, and favorable anti-bacterial ability under the action of an alternating magnetic field (AMF). In the early stage, the residual MgO created a local strong alkaline microenvironment by hydrolysis, which inhibited the function and activity of and . At the later stage, the MCPC composites were controllably degraded under the function of gelatin and maintained a long-term local slight alkaline microenvironment that promoted the osteogenic differentiation and mineralization of BMSCs. subcutaneous implantation experiments further indicated that MCPC composites showed good biocompatibility and facilitated angiogenesis, presenting a promising future in magnetic materials design and infectious bone defect repair.
由于抗生素滥用和复发,修复感染性骨缺损仍然是一个严峻的挑战。因此,我们对磁热 FeO 纳米粒子进行了改性,并将其添加到磷酸镁钙骨水泥(MCPC)中,以制备多功能磁性复合材料,用于顺序抑制细菌、促进血管生成和成骨。然而,MCPC 会释放出大量的 Mg 离子和 Fe 离子,这对成骨有不利影响。因此,我们采用明胶根据乳化交联法对 FeO 进行了改性,使其在交变磁场(AMF)作用下表现出可控的磁热效应和降解行为,以及良好的抗菌能力。在早期,水解作用产生的残留 MgO 形成局部强碱性微环境,从而抑制了 和 的功能和活性。在后期,MCPC 复合材料在明胶的作用下被可控地降解,并保持长期的局部弱碱性微环境,促进 BMSCs 的成骨分化和矿化。皮下植入实验进一步表明,MCPC 复合材料具有良好的生物相容性,促进了血管生成,在磁性材料设计和感染性骨缺损修复方面具有广阔的应用前景。
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