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首页> 外文期刊>Acta biomaterialia >Influence of nanostructural environment and fluid flow on osteoblast-like cell behavior: a model for cell-mechanics studies.
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Influence of nanostructural environment and fluid flow on osteoblast-like cell behavior: a model for cell-mechanics studies.

机译:纳米结构环境和流体流动对成骨样细胞行为的影响:细胞力学研究模型。

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摘要

Introducing nanoroughness on various biomaterials has been shown to profoundly effect cell-material interactions. Similarly, physical forces act on a diverse array of cells and tissues. Particularly in bone, the tissue experiences compressive or tensile forces resulting in fluid shear stress. The current study aimed to develop an experimental setup for bone cell behavior, combining a nanometrically grooved substrate (200 nm wide, 50 nm deep) mimicking the collagen fibrils of the extracellular matrix, with mechanical stimulation by pulsatile fluid flow (PFF). MC3T3-E1 osteoblast-like cells were assessed for morphology, expression of genes involved in cell attachment and osteoblastogenesis and nitric oxide (NO) release. The results showed that both nanotexture and PFF did affect cellular morphology. Cells aligned on nanotexture substrate in a direction parallel to the groove orientation. PFF at a magnitude of 0.7 Pa was sufficient to induce alignment of cells on a smooth surface in a direction perpendicular to the applied flow. When environmental cues texture and flow were interacting, PFF of 1.4 Pa applied parallel to the nanogrooves initiated significant cellular realignment. PFF increased NO synthesis 15-fold in cells attached to both smooth and nanotextured substrates. Increased collagen and alkaline phosphatase mRNA expression was observed on the nanotextured substrate, but not on the smooth substrate. Furthermore, vinculin and bone sialoprotein were up-regulated after 1 h of PFF stimulation. In conclusion, the data show that interstitial fluid forces and structural cues mimicking extracellular matrix contribute to the final bone cell morphology and behavior, which might have potential application in tissue engineering.
机译:已经证明在各种生物材料上引入纳米粗糙度会深刻影响细胞与材料的相互作用。同样,物理力作用于各种各样的细胞和组织。特别是在骨骼中,组织受到压缩力或拉力,从而导致流体剪切应力。当前的研究旨在开发一种模拟骨细胞行为的实验装置,将模拟细胞外基质胶原纤维的纳米沟槽基底(宽200 nm,深50 nm)与脉动液流(PFF)的机械刺激相结合。评估了MC3T3-E1成骨细胞样细胞的形态,参与细胞附着,成骨细胞生成和一氧化氮(NO)释放的基因表达。结果表明,纳米纹理和PFF确实影响细胞形态。单元在纳米纹理基板上沿平行于凹槽方向的方向排列。 PFF的大小为0.7 Pa,足以在垂直于所施加流的方向上诱导平滑表面上的细胞对齐。当环境提示的质地和流动相互作用时,平行于纳米槽施加的1.4 Pa的PFF启动了明显的细胞排列。 PFF使附着在光滑和纳米纹理底物上的细胞中的NO合成增加了15倍。在纳米纹理底物上观察到胶原和碱性磷酸酶mRNA表达增加,但在光滑底物上未观察到。此外,PFF刺激1小时后,纽蛋白和骨唾液蛋白上调。总之,数据表明,间质液力和模仿细胞外基质的结构提示有助于最终的骨细胞形态和行为,这可能在组织工程中具有潜在的应用价值。

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