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用于骨再生的3D打印磁活性纳米复合支架

3D printed magnetoactive nanocomposite scaffolds for bone regeneration.

作者信息

Kaviani Yeganeh, Eslami Hossein, Ansari Mojtaba, Poursamar Seyed Ali

机构信息

Department of Biomedical Engineering, Meybod University, Meybod, Iran.

Department of Biomaterials and Tissue Engineering, School of Advanced Technologies in Medicine, Isfahan University of Medical Sciences, Isfahan, Iran.

出版信息

Biomed Mater. 2024 Dec 27;20(1). doi: 10.1088/1748-605X/ad9f04.

Abstract

Simulating the natural cellular environment using magnetic stimuli could be a potential strategy to promote bone tissue regeneration. This study unveiled a novel 3D printed composite scaffold containing polycaprolactone (PCL) and cobalt ferrite/forsterite core-shell nanoparticles (CFF-NPs) to investigate physical, mechanical and biological properties of magnetoactive scaffold under static magnetic field. For this purpose, core-shell structure is synthesized through a two-step synthesis strategy in which cobalt ferrite nanoparticles are prepared via sol-gel combustion method and then are coated through sol-gel method with forsterite. The characterization regarding CFF-NPs reveals that MgSiO-coated CoFeOnanoparticles is successfully synthesized with a core-shell structure. Afterwards, CFF-NPs are embedded within the PCL with different percentages, ultimately 3D printed scaffolds were fabricated. Theassessments demonstrated that the incorporated CFF-NPs are able to cause a decrease in contact angle which was responsible for modulating purposefully the degradation rate of PCL scaffold, resulting in providing the obligatory environment for bone growth. In addition, it was observed that scaffolds including PCL combined with CFF-NPs are susceptible to improve the mechanical performance of nanocomposite scaffolds, up to a certain concentration (50% CFF-NPs and 50% PCL) with compressive modulus of 42.5 MPa. Moreover, when being exposed to simulated body fluid (SBF) solution, hydroxyapatite deposition on the surface of scaffolds was observed. Thus, these compositions may be useful for improving the osteointegration between the implant and bone tissue after implantation. Finally, the simultaneous effect of magnetic nanoparticles and magnetic field of 125 mT evaluated on cellular behavior of scaffolds. The results showed that the cell viability of all groups under magnetic field were better than that for standard condition. Likewise, SEM images of cultured cells on scaffolds confirmed that the combined effect of these factors could be lead to promote better cell adhesion, dispersion, and bone regeneration.

摘要

利用磁刺激模拟天然细胞环境可能是促进骨组织再生的一种潜在策略。本研究揭示了一种新型的3D打印复合支架,其包含聚己内酯(PCL)和钴铁氧体/镁橄榄石核壳纳米颗粒(CFF-NPs),以研究静态磁场下磁活性支架的物理、机械和生物学特性。为此,通过两步合成策略合成核壳结构,其中钴铁氧体纳米颗粒通过溶胶-凝胶燃烧法制备,然后通过溶胶-凝胶法用镁橄榄石包覆。关于CFF-NPs的表征表明,成功合成了具有核壳结构的MgSiO包覆的CoFeO纳米颗粒。之后,将CFF-NPs以不同百分比嵌入PCL中,最终制造出3D打印支架。评估表明,掺入的CFF-NPs能够导致接触角减小,这有助于有目的地调节PCL支架的降解速率,从而为骨生长提供必要的环境。此外,观察到包括PCL与CFF-NPs组合的支架能够改善纳米复合支架的机械性能,在一定浓度(50% CFF-NPs和50% PCL)下抗压模量达到42.5 MPa。而且,当暴露于模拟体液(SBF)溶液时,观察到支架表面有羟基磷灰石沉积。因此,这些组合物可能有助于改善植入后植入物与骨组织之间的骨整合。最后,评估了125 mT的磁性纳米颗粒和磁场对支架细胞行为的同时作用。结果表明,磁场下所有组的细胞活力均优于标准条件下的细胞活力。同样,支架上培养细胞的扫描电子显微镜图像证实,这些因素的联合作用可促进更好的细胞粘附、分散和骨再生。

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