首页> 外文期刊>Journal of biomedical nanotechnology >Towards the Design of 3D Fiber-Deposited Poly(epsilon-caprolactone)/Iron-Doped Hydroxyapatite Nanocomposite Magnetic Scaffolds for Bone Regeneration
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Towards the Design of 3D Fiber-Deposited Poly(epsilon-caprolactone)/Iron-Doped Hydroxyapatite Nanocomposite Magnetic Scaffolds for Bone Regeneration

机译:面向骨再生的3D纤维沉积聚ε-己内酯/铁掺杂羟基磷灰石纳米复合磁性支架的设计

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In the past few years, researchers have focused on the design and development of three-dimensional (3D) advanced scaffolds, which offer significant advantages in terms of cell performance. The introduction of magnetic features into scaffold technology could offer innovative opportunities to control cell populations within 3D microenvironments, with the potential to enhance their use in tissue regeneration or in cell-based analysis. In the present study, 3D fully biodegradable and magnetic nanocomposite scaffolds for bone tissue engineering, consisting of a poly(epsilon-caprolactone) (PCL) matrix reinforced with iron-doped hydroxyapatite (FeHA) nanoparticles, were designed and manufactured using a rapid prototyping technique. The performances of these novel 3D PCL/FeHA scaffolds were assessed through a combination of theoretical evaluation, experimental in vitro analyses and in vivo testing in a rabbit animal model. The results from mechanical compression tests were consistent with FEM simulations. The in vitro results showed that the cell growth in the magnetized scaffolds was 2.2-fold greater than that in non-magnetized ones. In vivo experiments further suggested that, after only 4 weeks, the PCL/FeHA scaffolds were completely filled with newly formed bone, proving a good level of histocompatibility. All of the results suggest that the introduction of magnetic features into biocompatible materials may confer significant advantages in terms of 3D cell assembly.
机译:在过去的几年中,研究人员一直专注于三维(3D)先进支架的设计和开发,这些支架在细胞性能方面具有明显的优势。将磁性特征引入支架技术可以为控制3D微环境中的细胞群体提供创新机会,并有可能增强其在组织再生或基于细胞的分析中的用途。在本研究中,使用快速成型技术设计和制造了用于骨骼组织工程的3D完全可生物降解的磁性纳米复合材料支架,该支架由掺有铁掺杂的羟基磷灰石(FeHA)纳米颗粒的聚(ε-己内酯)(PCL)基质组成。这些新颖的3D PCL / FeHA支架的性能是通过在兔动物模型中进行理论评估,实验性体外分析和体内测试相结合来评估的。机械压缩测试的结果与FEM模拟一致。体外结果显示,磁化支架中的细胞生长比非磁化支架中的细胞生长高2.2倍。体内实验进一步表明,仅4周后,PCL / FeHA支架就完全充满了新形成的骨骼,证明了良好的组织相容性水平。所有结果表明,将磁性特征引入生物相容性材料可能在3D单元组装方面具有明显优势。

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