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首页> 外文期刊>Journal of biomedical materials research, Part A >Sub-micron and nanoscale feature depth modulates alignment of stromal fibroblasts and corneal epithelial cells in serum-rich and serum-free media
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Sub-micron and nanoscale feature depth modulates alignment of stromal fibroblasts and corneal epithelial cells in serum-rich and serum-free media

机译:亚微米和纳米级特征深度可调节富血清和无血清培养基中基质成纤维细胞和角膜上皮细胞的排列

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摘要

Topographic features are generally accepted as being capable of modulating cell alignment. Of particular interest is the potential that topographic feature geometry induces cell alignment indirectly through impacting, adsorbed proteins from the cell culture medium on the surface of the substrate. However, it has also been reported that micron-scale feature depth significantly impacts the level of alignment of cellular populations on topography, despite being orders of magnitude larger than the average adsorbed protein layer (ran), In order to better determine the impact of biomimetic length scale topography and adsorbed protein interaction on cellular morphology we have systematically investigated the effect of combinations of sub-micron to nanoscale feature depth and lateral pitch on corneal epithelial cell alignment. In addition we have used the unique properties of a serum-free media alternative in direct comparison to serum-rich medium to investigate the role of culture medium protein composition on cellular alignment to topographically patterned surfaces. Our observation that increasing groove depth elicited larger populations of corneal epithelial cells to align regardless of culture medium composition and of cell orientation with respect to the topography, suggests that these cells can sense changes in topographic feature depths independent of adsorbed proteins localized along ridge edges and tops. However, our data also suggests a strong combinatory effect of topography with culture medium composition, and also a cell type dependency in determining the level of cell elongation and alignment to nanoscale topographic features.
机译:地形特征通常被认为能够调节细胞排列。特别令人感兴趣的是,地形特征几何形状可能会通过从基底表面上的细胞培养基中撞击,吸附的蛋白质间接诱导细胞排列。然而,据报道,微米尺度的特征深度显着影响地形上细胞群体的排列水平,尽管其数量级大于平均吸附蛋白层(nm),以便更好地确定仿生的影响长度尺度地形学和吸附的蛋白质相互作用对细胞形态的影响,我们系统地研究了亚微米至纳米尺度特征深度和横向间距的组合对角膜上皮细胞排列的影响。此外,我们已将无血清培养基替代品的独特特性与富含血清的培养基直接进行了比较,以研究培养基蛋白成分在细胞与地形图表面对齐方面的作用。我们的观察表明,凹槽深度的增加会引起较大数量的角膜上皮细胞对齐,而与培养基组成和细胞相对于地形的方向无关,这表明这些细胞可以感知地形特征深度的变化,而与沿脊缘和脊柱定位的吸附蛋白无关。上衣。但是,我们的数据还表明,地形与培养基成分具有很强的组合作用,并且在确定细胞伸长水平和与纳米尺度地形特征对齐时,还取决于细胞类型。

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