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A nanolayer coating on polydimethylsiloxane surfaces enables a mechanistic study of bacterial adhesion influenced by material surface physicochemistry

机译:聚二甲基硅氧烷表面上的纳米层涂层能够进行由材料表面物理化学影响的细菌粘附的机械研究

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摘要

To control material-associated bacterial infections, understanding the underlying mechanisms of bacteria and surface interactions is essential. Here we focused on studying how material mechanical and chemical properties can impact bacterial adhesion, using poly-dimethylsiloxane (PDMS) as a model material. To this end, PDMS surfaces of different stiffness were coated with a 2 nm highly cross-linked PDMS-like polymer film to confer comparable surface chemistry, while retaining similar mechanical properties for coated and uncoated samples. The uncoated samples showed increased interfacial adhesion force with the decrease of Young's modulus, whereas the nanolayer deposition yielded a comparable adhesion force for all surfaces. The Gram negative strains Escherichia coli, its fimbriae mutants and Pseudomonas aeruginosa as well as the Gram positive strain Staphylococcus epidermidis were analysed for their adhesion on these surfaces. For each bacterial strain similar numbers were found on the coated surfaces of different PDMS species, whereas the numbers on the uncoated surfaces increased several fold with the decrease of material modulus. Similar adhesion behaviour was also observed for the negatively charged abiotic polystyrene beads of similar size to bacteria. These results strongly suggest that the interfacial chemistry of the PDMS rather than the material mechanical properties plays a critical role in bacterial adhesion.
机译:控制相关的细菌感染,了解细菌的潜在机制和表面相互作用是必不可少的。在这里,我们专注于使用聚二甲基硅氧烷(PDMS)作为模型材料来研究材料机械和化学性质如何影响细菌粘合性。为此,用2nM高度交联的PDMS样聚合物膜涂覆不同刚度的PDMS表面,以赋予相当的表面化学,同时保留类似于涂覆和未涂覆的样品的类似机械性能。未涂覆的样品随着杨氏模量的降低而显示出增加的界面粘附力,而纳米层沉积为所有表面产生相当的粘附力。分析克肾阴性菌株大肠杆菌,其FIMBRIAE突变体和假单胞菌铜绿假单胞菌以及克呈革氏菌株葡萄球菌表皮,以在这些表面上的粘附性。对于每种细菌应变,在不同PDMS物种的涂覆表面上发现了类似的数量,而未涂层表面上的数字随着材料模量的降低而增加了几倍。对于与细菌相似大小的带负电荷的非生物聚苯乙烯珠也观察到类似的粘合性能。这些结果强烈表明PDMS的界面化学而不是材料力学性能在细菌粘附中起着关键作用。

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