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首页> 外文期刊>Journal of Materials Science >Osteogenic cells differentiation on topological surfaces under ultrasound stimulation
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Osteogenic cells differentiation on topological surfaces under ultrasound stimulation

机译:超声刺激下拓扑表面的骨质骨质细胞分化

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The current trends in bone tissue engineering aim to fasten the cells osteogenic differentiation by mechanical stimulation. To date, several approaches have proved efficient for this purpose. One is related to changing the shape of the cells nuclei using topological surfaces with appropriate dimensions and stiffness. Another successful method is by low-intensity pulsed ultrasound stimulation (LIPUS) of the cells. The goal of this proof-of-concept study is to introduce and validate, for the first time, the synergistic effect of topological surfaces and LIPUS for improving the osteogenic differentiation of osteoblast-like cells. Cells were grown on topological surfaces consisting of vertical microtubes fabricated by laser direct writing. The flexibility of the topological surfaces was tuned by varying the microtubes' height. The spatial arrangement and dimensions of the microtubes limited the cell-cell interactions and allowed us to observe individual cells. A finite element model simulation was proposed for explaining the cell-surface interaction details. We monitored the cells nuclei deformations in response to the topological surfaces in conjunction with LIPUS. The topological surfaces alone induced dramatic changes of the shape of the cells nuclei that wrapped around the microtubes. The nuclei deformation was further increased by LIPUS. This synergy between the topological surfaces and LIPUS allowed us to obtain an increase of up to 200% in the cells osteogenic differentiation, as determined by ALP activity and osteocalcin secretion measurements, in comparison with flat surfaces in static regime. A causal relationship between the nuclei deformation and the cells osteogenic differentiation was established.
机译:骨组织工程目前的趋势旨在通过机械刺激固定细胞骨化分化。迄今为止,为此目的已经证明了几种方法。一种与具有适当尺寸和刚度的拓扑表面改变细胞核的形状有关。另一种成功的方法是通过细胞的低强度脉冲超声刺激(Lipus)。该概念证明研究的目标是首次引入和验证拓扑表面和脂肪的协同作用,以改善成骨细胞样细胞的成骨分化。细胞生长在由激光直接写入制造的垂直微管组成的拓扑表面上。通过改变Microtubes的高度来调整拓扑表面的灵活性。微管的空间布置和尺寸限制了细胞 - 细胞相互作用,使我们观察单个细胞。提出了用于解释细胞表面相互作用细节的有限元模型模拟。我们与脂肪一起响应晶体表面的细胞核变形监测。单独的拓扑表面诱导缠绕在微管周围的细胞核形状的显着变化。通过脂肪进一步增加核变形。拓扑表面和脂肪之间的这种协同作用使我们在细胞骨质发生分化中获得高达200%的增长,如通过ALP活性和骨科分泌测量确定的,与静态状态的平坦表面相比。建立了核变形与细胞骨质发生分化之间的因果关系。

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