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3D Biomimetic Magnetic Structures for Static Magnetic Field Stimulation of Osteogenesis

机译:用于成骨的静磁场刺激的3D仿生磁性结构

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摘要

We designed, fabricated and optimized 3D biomimetic magnetic structures that stimulate the osteogenesis in static magnetic fields. The structures were fabricated by direct laser writing via two-photon polymerization of IP-L780 photopolymer and were based on ellipsoidal, hexagonal units organized in a multilayered architecture. The magnetic activity of the structures was assured by coating with a thin layer of collagen-chitosan-hydroxyapatite-magnetic nanoparticles composite. In vitro experiments using MG-63 osteoblast-like cells for 3D structures with gradients of pore size helped us to find an optimum pore size between 20–40 µm. Starting from optimized 3D structures, we evaluated both qualitatively and quantitatively the effects of static magnetic fields of up to 250 mT on cell proliferation and differentiation, by ALP (alkaline phosphatase) production, Alizarin Red and osteocalcin secretion measurements. We demonstrated that the synergic effect of 3D structure optimization and static magnetic stimulation enhances the bone regeneration by a factor greater than 2 as compared with the same structure in the absence of a magnetic field.
机译:我们设计,制造和优化了3D仿生磁性结构,可在静态磁场中刺激成骨作用。该结构是通过IP-L780光敏聚合物的双光子聚合通过直接激光写入而制成的,并基于以多层结构组织的椭圆形,六边形单元。通过涂覆一层薄薄的胶原蛋白-壳聚糖-羟基磷灰石-磁性纳米颗粒复合物,可以确保结构的磁性。使用MG-63成骨细胞样细胞进行3D结构且孔径梯度变化的体外实验,帮助我们找到了20–40 µm的最佳孔径。从优化的3D结构开始,我们通过ALP(碱性磷酸酶)生产,茜素红和骨钙素分泌测量,定性和定量评估了高达250 mT的静磁场对细胞增殖和分化的影响。我们证明,与没有磁场的相同结构相比,3D结构优化和静态磁刺激的协同作用可将骨骼再生提高2倍以上。

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