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Vertical nanopillars for highly localized fluorescence imaging

机译:垂直纳米柱用于高度局部荧光成像

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Observing individual molecules in a complex environment by fluorescence microscopy is becoming increasingly important in biological and medical research, for which critical reduction of observation volume is required. Here, we demonstrate the use of vertically aligned silicon dioxide nanopillars to achieve below-the-diffraction-limit observation volume in vitro and inside live cells. With a diameter much smaller than the wavelength of visible light, a transparent silicon dioxide nanopillar embedded in a non-transparent substrate restricts the propagation of light and affords evanescence wave excitation along its vertical surface. This effect creates highly confined illumination volume that selectively excites fluorescence molecules in the vicinity of the nanopillar. We show that this nanopillar illumination can be used for in vitro single-molecule detection at high fluorophore concentrations. In addition, we demonstrate that vertical nanopillars interface tightly with live cells and function as highly localized light sources inside the cell. Furthermore, specific chemical modification of the nanopillar surface makes it possible to locally recruit proteins of interest and simultaneously observe their behavior within the complex, crowded environment of the cell.
机译:在生物学和医学研究中,通过荧光显微镜观察复杂环境中的单个分子变得越来越重要,为此,需要大量减少观察体积。在这里,我们演示了使用垂直排列的二氧化硅纳米柱在体外和活细胞内达到低于衍射极限的观察量。直径远小于可见光的波长,嵌入不透明基板中的透明二氧化硅纳米柱限制了光的传播,并沿其垂直表面提供了渐逝波激发。该效果产生了高度受限的照明体积,该照明体积选择性地激发了纳米柱附近的荧光分子。我们表明,这种纳米柱照明可用于高荧光团浓度的体外单分子检测。此外,我们证明了垂直的纳米柱与活细胞紧密接触,并在细胞内部充当高度局部化的光源。此外,纳米柱表面的特定化学修饰使得可以在局部复杂的细胞拥挤环境中局部募集感兴趣的蛋白质,并同时观察其行为。

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