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Substrate effects on cell-envelope deformation during early-stage Staphylococcus aureus biofilm formation

机译:底物对细胞被膜变形的影响在早期的金黄色葡萄球菌生物膜形成

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摘要

Bacterial adhesion to a surface is the first step in biofilm formation, and adhesive forces between the surface and a bacterium are believed to give rise to planktonic-to-biofilm phenotypic changes. Here we use Focused-Ion-Beam (FIB) tomography with backscattered scanning electron microscopy (SEM) to image Staphyolococcus aureus (S. aureus) biofilms grown on Au-coated polystyrene (PS) and Au-coated PS modified by mixed thiols of triethylene glycol mono-11-mercaptoundecyl ether (EG(3)) and 1-dodecanethiol (CH3). The FIB-SEM technique enables a direct measurement of the contact area between individual bacteria and the substrate. The area of adhesion is effectively zero on the EG(3) substrate. It is nonzero on all of the other substrates and increases with increasing hydrophobicity. The fact that the contact area is highest on the unmodified gold, however, indicates that other forces beyond hydrophobicity are significant. The magnitude of bacterial deformation suggests that the adhesive forces are on the order of a few nN, consistent with AFM force measurements reported in the literature. The resolution afforded by electron microscopy furthermore enables us to probe changes in the cell-envelope thickness, which decreases within and near the contact area relative to other parts of the same bacterium. This finding supports the idea that mechanosensing due to stress-induced membrane thinning plays a role in the planktonic-to-biofilm transition associated with bacterial adhesion.
机译:细菌粘附表面是第一步生物膜的形成,部队之间的粘合剂表面,细菌被认为给上升到planktonic-to-biofilm表型变化。在这里,我们使用聚焦离子束(FIB)断层背散射扫描电子显微镜生物膜生长在Au-coated聚苯乙烯(PS)通过混合硫醇Au-coated PS修改三甘醇mono-11-mercaptoundecyl醚小薇(3)和1-dodecanethiol (CH3)。技术支持的直接测量个体细菌和之间的接触面积衬底。如(3)衬底上零。其他基质和增加增加疏水性。接触面积是最高的黄金,然而,表明之外的其他部队疏水性是重要的。细菌变形表明胶粘剂部队的一些神经网络,一致AFM力测量报告文学。显微镜而且使我们调查细胞被膜厚度的变化,减少内部和附近的接触面积相对于其他部分相同的细菌。这一发现支持的想法mechanosensing由于压力引起的膜薄起着作用planktonic-to-biofilm过渡与细菌粘附。

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