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Interference lithographic nanopatterning of plant and bacterial light-harvesting complexes on gold substrates

机译:金底物上植物和细菌光捕获复合物的干涉光刻纳米图案

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摘要

We describe a facile approach for nanopatterning of photosynthetic light-harvesting complexes over macroscopic areas, and use optical spectroscopy to demonstrate retention of native properties by both site-specifically and non-specifically attached photosynthetic membrane proteins. A Lloyd's mirror dual-beam interferometer was used to expose self-assembled monolayers of amine-terminated alkylthiolates on gold to laser irradiation. Following exposure, photo-oxidized adsorbates were replaced by oligo(ethylene glycol) terminated thiols, and the remaining intact amine-functionalized regions were used for attachment of the major light-harvesting chlorophyll–protein complex from plants, LHCII. These amine patterns could be derivatized with nitrilotriacetic acid (NTA), so that polyhistidine-tagged bacteriochlorophyll–protein complexes from phototrophic bacteria could be attached with a defined surface orientation. By varying parameters such as the angle between the interfering beams and the laser irradiation dose, it was possible to vary the period and widths of NTA and amine-functionalized lines on the surfaces; periods varied from 1200 to 240 nm and linewidths as small as 60 nm (λ/4) were achieved. This level of control over the surface chemistry was reflected in the surface topology of the protein nanostructures imaged by atomic force microscopy; fluorescence imaging and spectral measurements demonstrated that the surface-attached proteins had retained their native functionality.
机译:我们描述了一种在宏观区域上对光合光捕获复合物进行纳米图案化的简便方法,并使用光谱学来证明通过站点特异性和非特异性附着的光合膜蛋白的保留天然特性。使用劳埃德(Lloyd's)镜子双光束干涉仪将金上胺端基烷基硫醇盐的自组装单层暴露于激光辐射下。暴露后,光氧化的吸附物被低聚(乙二醇)封端的硫醇代替,其余完整的胺官能化区域用于附着植物LHCII的主要光采叶绿素-蛋白质复合物。这些胺模式可以用次氮基三乙酸(NTA)衍生化,从而使来自光养细菌的带有多组氨酸标签的细菌叶绿素-蛋白质复合物可以具有确定的表面取向。通过改变诸如干涉光束之间的角度和激光照射剂量之类的参数,可以改变表面上的NTA和胺官能化线的周期和宽度。周期从1200到240 nm不等,线宽小至60 nm(λ/ 4)。对表面化学的这种控制水平反映在原子力显微镜成像的蛋白质纳米结构的表面拓扑中;荧光成像和光谱测量表明,表面附着的蛋白质保留了其天然功能。

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