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首页> 外文期刊>Electrochimica Acta >Electrochemical SERS study of a biomimetic membrane supported at a nanocavity patterned Ag electrode
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Electrochemical SERS study of a biomimetic membrane supported at a nanocavity patterned Ag electrode

机译:纳米腔图案化Ag电极支撑的仿生膜的电化学SERS研究

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Lipid bilayers in which two leaflets were made of dimyristoyl-phosphatidylcholine (DMPC) and hybrid bilayers with one leaflet composed of hydrogenated lipid and another leaflet of deuterium substituted molecules (d_(63)-DMPC) were deposited on highly ordered nanocavity patterned Ag electrodes using LB-LS and vesicle fusion techniques. In situ electrochemical surface enhanced Raman scattering (EC-SERS) was then used to study potential driven changes in these model biological membranes. The nanocavity structures provided a SERS active substrate with uniformly distributed surface enhancement. To ensure that the bilayer was separated from the metal surface by a hydrophilic space layer, the electrodes were chemically modified with a self-assembled monolayer (SAM) of β-thioglucose (TG) molecules. The monolayer of TG ensured that the solid substrate surface was hydrophilic. The electrochemical properties of the bilayer were monitored by recording differential capacitance curves. EC-SERS indicated that at the silver surface modified by the monolayer of TG the lower leaflet (in contact with the support) is more ordered than the top leaflet that is contact with solution. However, both leaflets remained in the liquid crystalline (LC) state for the entire range of investigated potentials. The results of this study show that the DMPC bilayer at the nanocavity patterned Ag surface may be used as a good biomimetic membrane model in future SERS studies of membrane proteins. The information concerning the effect of the electrode potential on membrane stability may be useful for the development of biosensors.
机译:脂质双层中的两层由二豆蔻油基磷脂酰胆碱(DMPC)制成,杂合双层中的一层由氢化脂质组成,另一层由氘取代的分子(d_(63)-DMPC)沉积在高度有序的纳米腔图形Ag电极上LB-LS和囊泡融合技术。然后使用原位电化学表面增强拉曼散射(EC-SERS)研究这些模型生物膜中潜在的驱动变化。纳米腔结构为SERS活性基板提供了均匀分布的表面增强。为确保双层被亲水性空间层与金属表面隔开,电极用β-硫代葡萄糖(TG)分子的自组装单分子层(SAM)进行了化学修饰。 TG的单层确保固体基质表面是亲水的。通过记录差分电容曲线来监测双层的电化学性质。 EC-SERS表明,在由TG单层改性的银表面上,下部小叶(与支持物接触)比与溶液接触的顶部小叶更有序。但是,在整个研究电位范围内,两个小叶均保持液晶(LC)状态。这项研究的结果表明,在纳米腔图案化的Ag表面上的DMPC双层可以用作未来SERS膜蛋白研究的良好仿生膜模型。有关电极电势对膜稳定性的影响的信息可能对生物传感器的开发有用。

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