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首页> 外文期刊>Acta biomaterialia >Interactions of bacteria with specific biomaterial surface chemistries under flow conditions.
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Interactions of bacteria with specific biomaterial surface chemistries under flow conditions.

机译:流动条件下细菌与特定生物材料表面化学的相互作用。

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The effect of specific chemical functionalities on the adhesion of two Staphylococcus epidermidis strains under flow was investigated by using surfaces prepared by self-assembly of alkyl silane monolayers on glass. Terminal methyl (CH(3)) and amino (NH(2)) groups were formed in solution and by chemical vapor deposition of silanes, at elevated temperature. Hydroxyl (OH)-terminated glass was used as control. Surface modification was verified by contact angle and zeta potential measurements, atomic force microscopy and X-ray photoelectron spectroscopy. A parallel plate flow chamber was used to evaluate bacterial adhesion at various shear rates. The effect of the solution's ionic strength on adhesion was also studied. Adhesion was found to be dependent on the monolayer's terminal functionality. It was higher on the CH(3) followed by the NH(2) and minimal on the OH-terminated glass for both strains. The increase in the ionic strength significantly enhanced adhesion to the various substrates, in accordance with the Derjaguin-Landau-Verwey-Overbeek (DLVO) theory. The extended DLVO theory explained well the combined effects of surface and solution properties on bacterial adhesion under low shear rates. However, the increase in the shear rate restricted the predictability of the theory and revealed macromolecular interactions between bacteria and NH(2)-terminated surfaces.
机译:通过使用烷基硅烷单分子层在玻璃上自组装制备的表面,研究了特定化学官能团对两种表皮葡萄球菌菌株在流动条件下的粘附的影响。末端甲基(CH(3))和氨基(NH(2))基团是在溶液中和通过高温化学气相沉积硅烷而形成的。羟基(OH)封端的玻璃用作对照。通过接触角和ζ电位测量,原子力显微镜和X射线光电子能谱验证了表面改性。使用平行板流动室评估各种剪切速率下的细菌粘附。还研究了溶液的离子强度对附着力的影响。发现粘附力取决于单层的终端功能。在这两个菌株上,在CH(3)上其次是NH(2)上更高,在OH终止的玻璃上最小。根据Derjaguin-Landau-Verwey-Overbeek(DLVO)理论,离子强度的增加显着增强了对各种基材的粘附力。扩展的DLVO理论很好地解释了低剪切速率下表面和溶液性质对细菌粘附的综合影响。但是,增加的剪切速率限制了该理论的可预测性,并揭示了细菌与NH(2)终止表面之间的大分子相互作用。

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