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首页> 外文期刊>ACS applied materials & interfaces >Interactions of Bacterial Lipopolysaccharides with Gold Nanorod Surfaces Investigated by Refractometric Sensing
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Interactions of Bacterial Lipopolysaccharides with Gold Nanorod Surfaces Investigated by Refractometric Sensing

机译:折光传感技术研究细菌脂多糖与金纳米棒表面的相互作用

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The interface between nanoparticles and bacterial surfaces is of great interest for applications in nanomedicine and food safety. Here, we demonstrate that interactions between gold nanorods and bacterial surface molecules are governed by the nanoparticle surface coating. Polymer-coated gold nanorod substrates are exposed to lipopolysaccharides extracted from Pseudomonas aeruginosa, Salmonella enterica and Escherichia coli, and attachment is monitored using localized surface plasmon resonance refractometric sensing. The number of lipopolysaccharide molecules attached per nanorod is calculated from the shift in the plasmon maximum, which results from the change in refractive index after analyte binding. Colloidal gold nanorods in water are also incubated with lip opolysaccharides to demonstrate the effect of lipopolysaccharide concentration on plasmon shift, zeta-potential, and association constant. Both gold nanorod surface charge and surface chemistry affect gold nanorod lipopolysaccharide interactions. In general, anionic lipopolysaccharides was found to attach more effectively to cationic gold nanorods than to neutral or anionic gold nanorods. Some variation in lipopolysaccharide attachment is also observed between the three strains studied, demonstrating the potential complexity of bacteria nanoparticle interactions.
机译:纳米颗粒和细菌表面之间的界面对于纳米医学和食品安全中的应用非常感兴趣。在这里,我们证明金纳米棒和细菌表面分子之间的相互作用是由纳米颗粒表面涂层支配的。将涂有聚合物的金纳米棒底物暴露于从铜绿假单胞菌,肠炎沙门氏菌和大肠杆菌中提取的脂多糖,并使用局部表面等离振子共振折光检测技术监测附着。每个纳米棒上附着的脂多糖分子的数量是根据等离激元最大值的移动来计算的,这是由于分析物结合后折射率的变化所致。水中的胶体金纳米棒也与脂多糖一起孵育,以证明脂多糖浓度对等离振子位移,ζ-电势和缔合常数的影响。金纳米棒的表面电荷和表面化学都影响金纳米棒的脂多糖相互作用。通常,发现阴离子脂多糖比中性或阴离子金纳米棒更有效地附着在阳离子金纳米棒上。在研究的三个菌株之间还观察到脂多糖附着的一些变化,证明了细菌纳米颗粒相互作用的潜在复杂性。

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