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Modifying bone scaffold architecture in vivo with permanent magnets to facilitate fixation of magnetic scaffolds

机译:使用永磁体在体内修改骨骼支架的结构,以方便磁性支架的固定

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摘要

The fundamental elements of tissue regeneration are cells, biochemical signals and the three-dimensional microenvironment. In the described approach, biomineralized-collagen biomaterial functions as a scaffold and provides biochemical stimuli for tissue regeneration. In addition superparamagnetic nanoparticles were used to magnetize the biomaterials with direct nucleation on collagen fibres or impregnation techniques. Minimally invasive surgery was performed on 12 rabbits to implant cylindrical NdFeB magnets in close proximity to magnetic scaffolds within the lateral condyles of the distal femoral epiphyses.Under this static magnetic field we demonstrated, for the first time in vivo, that the ability to modify the scaffold architecture could influence tissue regeneration obtaining a well-ordered tissue. Moreover, the association between NdFeB magnet and magnetic scaffolds represents a potential technique to ensure scaffold fixation avoiding micromotion at the tissue/biomaterial interface.
机译:组织再生的基本要素是细胞,生化信号和三维微环境。在所描述的方法中,生物矿化胶原蛋白生物材料用作支架并提供用于组织再生的生化刺激。另外,超顺磁性纳米颗粒还被用于通过胶原纤维上的直接成核或浸渍技术来磁化生物材料。对12只兔子进行了微创手术,将圆柱形NdFeB磁体植入到股骨远端骨dy外侧lateral内的磁性支架附近。在此静磁场下,我们首次在体内证明了修饰NdFeB的能力。支架结构可能会影响组织再生,从而获得组织良好的组织。此外,NdFeB磁体和磁性支架之间的结合代表了一种潜在的技术,可确保支架固定,避免组织/生物材料界面发生微动。

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