Friedrich Schiller University Jena, Institute of Materials Science and Technology, Löbdergraben 32, 07743 Jena, Germany; Friedrich Schiller University Jena, Department of Bioinformatics, Ernst-Abbe-Platz 2, 07743 Jena, Germany.
Acta Biomater. 2014 Jan;10(1):267-75. doi: 10.1016/j.actbio.2013.09.016. Epub 2013 Sep 23.
It is general knowledge that bacteria/surface interactions depend on the surface topography. However, this well-known dependence has so far not been included in the modeling efforts. We propose a model for calculating interaction energies between spherical bacteria and arbitrarily structured 3-D surfaces, combining the Derjaguin, Landau, Verwey, Overbeek theory and an extended surface element integration method. The influence of roughness on the interaction (for otherwise constant parameters, e.g. surface chemistry, bacterial hydrophobicity) is quantified, demonstrating that common experimental approaches which consider amplitude parameters of the surface topography but which ignore spacing parameters fail to adequately describe the influence of surface roughness on bacterial adhesion. The statistical roughness profile parameters arithmetic average height (representing an amplitude parameter) and peak density (representing a spacing parameter) both exert a distinct influence on the interaction energy. The influence of peak density on the interaction energy increases with decreasing arithmetic average height and contributes significantly to the total interaction energy with an arithmetic average height below 70 nm. With the aid of the proposed model, different sensitivity ranges of the interaction between rough surfaces and bacteria are identified. On the nanoscale, the spacing parameter of the surface dominates the interaction, whereas on the microscale the amplitude parameter adopts the governing role.
众所周知,细菌/表面相互作用取决于表面形貌。然而,到目前为止,这种众所周知的依赖性尚未包含在建模工作中。我们提出了一种计算球形细菌与任意结构的 3D 表面之间相互作用能的模型,该模型结合了德扎吉因、朗道、维韦、奥弗贝克理论和扩展的表面元素积分方法。定量研究了粗糙度对相互作用的影响(对于其他常数参数,例如表面化学、细菌疏水性),表明常见的实验方法仅考虑表面形貌的幅度参数,但忽略了间距参数,无法充分描述表面粗糙度对细菌附着的影响。统计粗糙度轮廓参数算术平均高度(代表幅度参数)和峰值密度(代表间距参数)都对相互作用能有明显影响。随着算术平均高度的降低,峰值密度对相互作用能的影响增加,并在算术平均高度低于 70nm 时对总相互作用能有显著贡献。借助所提出的模型,确定了粗糙表面与细菌之间相互作用的不同敏感范围。在纳米尺度上,表面的间距参数主导相互作用,而在微观尺度上,幅度参数起主导作用。