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Strength of bacterial adhesion on nanostructured surfaces quantified by substrate morphometry

机译:纳米细菌粘附强度由衬底表面量化形态测量学

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摘要

Microbial adhesion and the subsequent formation of resilient biofilms at surfaces are decisively influenced by substrate properties, such as the topography. To date, studies that quantitatively link surface topography and bacterial adhesion are scarce, as both are not straightforward to quantify. To fill this gap, surface morphometry combined with single-cell force spectroscopy was performed on surfaces with irregular topographies on the nano-scale. As surfaces, hydrophobized silicon wafers were used that were etched to exhibit surface structures in the same size range as the bacterial cell wall molecules. The surface structures were characterized by a detailed morphometric analysis based on Minkowski functionals revealing both qualitatively similar features and quantitatively different extensions. We find that as the size of the nanostructures increases, the adhesion forces decrease in a way that can be quantified by the area of the surface that is available for the tethering of cell wall molecules. In addition, we observe a bactericidal effect, which is more pronounced on substrates with taller structures but does not influence adhesion. Our results can be used for a targeted development of 3D-structured materials for/against bio-adhesion. Moreover, the morphometric analysis can serve as a future gold standard for characterizing a broad spectrum of material structures.
机译:微生物附着和随后的形成弹性生物膜表面是决定性的受到底物性质,如地形。表面形貌和细菌粘附的链接稀缺,既不简单量化。结合单细胞力谱执行与不规则地形表面在纳米级。被蚀刻硅晶片使用展览表面结构在相同的尺寸范围随着细菌细胞壁分子。详细的结构特征基于闵可夫斯基的形态学分析泛函,揭示两个定性相似定量特性和不同的扩展。我们发现纳米结构的大小增加时,粘附力降低可以量化的表面的面积这是用于细胞壁的拘束分子。效应,是基质更明显具有高结构,但不影响附着力。3分子结构材料的发展对bio-adhesion /。的形态学分析可以作为未来的黄金描述一个广泛的标准材料的结构。

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