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Superresolution Nonlinear Structured Illumination Microscopy By Stimulated Emission Depletion

机译:受激发射损耗的超分辨率非线性结构照明显微镜

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摘要

The understanding of the biological processes at the cellular and subcellular level requires the ability to directly visualize them. Fluorescence microscopy played a key role in biomedical imaging because of its high sensitivity and specificity. However, traditional fluorescence microscopy has a limited resolution due to optical diffraction. In recent years, various approaches have been developed to overcome the diffraction limit. Among these techniques, nonlinear structured illumination microscopy (SIM) has been demonstrated a fast and full field superresolution imaging tool, such as Saturated-SIM and Photoswitching-SIM. In this dissertation, I report a new approach that applies nonlinear structured illumination by combining a uniform excitation field and a patterned stimulated emission depletion (STED) field. The nature of STED effect allows fast switching response, negligible stochastic noise during switching, low shot noise and theoretical unlimited resolution, which predicts STED-SIM to be a better nonlinear SIM. After the algorithm development and the feasibility study by simulation, the STED-SIM microscope was tested on fluorescent beads samples and achieved full field imaging over 1 x 10 micron square at the speed of 2s/frame with 4-fold improved resolution. Our STED-SIM technique has been applied on biological samples and superresolution images with tubulin of U2OS cells and granules of neuron cells have been obtained. In this dissertation, an effort to apply a field enhancement mechanism, surface plasmon resonance (SPR), to nonlinear STED-SIM has been made and around 8 time enhancement on STED quenching effect was achieved. Based on this enhancement on STED, 1D SPR enhanced STED-SIM was built and 50 nm resolution of fluorescence beads sample was achieved. Algorithm improvement is required to achieve full field superresolution imaging with SPR enhanced STED-SIM. The application of nonlinear structured illumination in two photon light-sheet microscopy is also studied in this dissertation. Fluorescent cellular imaging of deep internal organs is highly challenging because of the tissue scattering. By combining two photon Bessel beam light-sheet microscopy and nonlinear SIM, 3D live sample imaging at cellular resolution in depth beyond 200 microns has been achieved on live zebrafish. Two-color imaging of pronephric glomeruli and vasculature of zebrafish kidney, whose cellular structures located at the center of the fish body are revealed in high clarity.
机译:在细胞和亚细胞水平上对生物学过程的理解需要直接可视化它们的能力。荧光显微镜由于其高灵敏度和特异性,在生物医学成像中起着关键作用。然而,由于荧光衍射,传统的荧光显微镜的分辨率有限。近年来,已经开发出各种方法来克服衍射极限。在这些技术中,非线性结构照明显微镜(SIM)已被证明是一种快速且全场的超分辨率成像工具,例如饱和SIM和光开关SIM。在这篇论文中,我报告了一种新的方法,该方法通过结合均匀的激发场和图案化的激发发射损耗(STED)场来应用非线性结构化照明。 STED效应的性质允许快速的开关响应,切换期间的随机噪声可以忽略不计,低散粒噪声和理论上无限的分辨率,这预示着STED-SIM将是更好的非线性SIM。经过算法开发和通过仿真的可行性研究后,STED-SIM显微镜在荧光珠样品上进行了测试,并以2s /帧的速度在1 x 10微米平方上实现了全场成像,分辨率提高了4倍。我们的STED-SIM技术已应用于生物样品,并获得了具有U2OS细胞微管蛋白和神经元细胞颗粒的超分辨率图像。本文致力于将场增强机制-表面等离子体激元共振(SPR)应用于非线性STED-SIM,并实现了约8倍的STED猝灭效应增强。基于对STED的增强,构建了1D SPR增强的STED-SIM,并实现了50 nm分辨率的荧光珠样品。为了通过SPR增强的STED-SIM实现全场超分辨率成像,需要对算法进行改进。本文还研究了非线性结构照明在两个光子片显微镜中的应用。由于组织散射,深部内部器官的荧光细胞成像非常具有挑战性。通过结合使用两个光子贝塞尔光束光片显微镜和非线性SIM,在斑马鱼上可以实现深度超过200微米的细胞分辨率的3D活样品成像。斑马鱼肾的肾前肾小球和脉管系统的两色成像清晰可见,其细胞结构位于鱼体的中心。

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    Zhang Han;

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  • 年度 2014
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  • 正文语种 en_US
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