Bhagawati Maniraj, You Changjiang, Piehler Jacob
Department of Biology, University of Osnabrück , Barbarastrasse 11, 49076 Osnabrück, Germany.
Anal Chem. 2013 Oct 15;85(20):9564-71. doi: 10.1021/ac401673e. Epub 2013 Sep 25.
Localized surface plasmon resonance (LSPR) offers powerful means for sensitive label-free detection of protein-protein interactions in a highly multiplexed format. We have here established self-assembly and surface modification of plasmonic nanostructures on solid support suitable for quantitative protein-protein interaction analysis by spectroscopic and microscopic LSPR detection. These architectures were obtained by layer-by-layer assembly via electrostatic attraction. Gold nanoparticles (AuNP) were adsorbed on a biocompatible amine-terminated poly(ethylene glycol) (PEG) polymer brush and further functionalized by poly-l-lysine graft PEG (PLL-PEG) copolymers. Stable yet reversible protein immobilization was achieved via tris(nitrilotriacetic acid) groups incorporated into the PLL-PEG coating. Thus, site-specific immobilization of His-tagged proteins via complexed Ni(II) ions was achieved. Functional protein immobilization on the surface was confirmed by real-time detection of LSPR scattering by reflectance spectroscopy. Association and dissociation rate constants obtained for a reversible protein-protein interaction were in good agreement with the data obtained by other surface-sensitive detection techniques. For spatially resolved detection, AuNP were assembled into micropatterns by means of photolithographic uncaging of surface amines. LSPR imaging of reversible protein-protein interactions was possible in a conventional wide field microscope, yielding detection limits of ∼30 protein molecules within a diffraction-limited surface area.
局域表面等离子体共振(LSPR)为以高度多重化形式灵敏地无标记检测蛋白质 - 蛋白质相互作用提供了强大手段。我们在此建立了在固体支持物上进行等离子体纳米结构的自组装和表面修饰,适用于通过光谱和显微镜LSPR检测进行定量蛋白质 - 蛋白质相互作用分析。这些结构是通过静电吸引逐层组装获得的。金纳米颗粒(AuNP)吸附在生物相容性胺端基聚(乙二醇)(PEG)聚合物刷上,并通过聚 - l - 赖氨酸接枝PEG(PLL - PEG)共聚物进一步功能化。通过掺入PLL - PEG涂层中的三(氮杂三乙酸)基团实现了稳定但可逆的蛋白质固定。因此,通过络合的Ni(II)离子实现了His标签蛋白的位点特异性固定。通过反射光谱对LSPR散射的实时检测证实了功能蛋白在表面的固定。对于可逆蛋白质 - 蛋白质相互作用获得的缔合和解离速率常数与通过其他表面敏感检测技术获得的数据高度一致。为了进行空间分辨检测,通过表面胺的光刻解笼将AuNP组装成微图案。在传统的宽场显微镜中可以对可逆蛋白质 - 蛋白质相互作用进行LSPR成像,在衍射极限表面积内产生约30个蛋白质分子的检测限。