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Chapter 14 Hyperspectral Stochastic Optical Reconstruction Raman Microscopy for Label-Free Super-Resolution Imaging Using Surface Enhanced Raman Spectroscopy

机译:第14章高光谱随机光学重建拉曼显微镜使用表面增强拉曼光谱法的无标签超分辨率成像

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Super-resolution imaging is an emerging field that has attracted attention in the recent years due to far the reaching impact in biology. All super-resolution techniques use fluorescent labels to image nanoscale biomolecular structures. In contrast, label-free nanoscopic imaging of the chemical environment of biological specimens would readily bridge the supramolecular and the cellular scales, if a chemical fingerprint technique such as Raman scattering can be coupled with super-resolution imaging, overcoming the diffraction limit. In order to achieve this goal, we propose to develop a super-resolved stochastic hyperspectral Raman microscopy technique for imaging of biological architectures. The surface enhanced Raman spectroscopy (SERS) signal contains information about the presence of various Raman bands, allowing for the discrimination of families of biomolecules such as lipids, proteins, DNA. The rich, fluctuating spectral information contained in the single molecule SERS signal possesses a great potential in label-free imaging, using stochastic optical reconstruction microscopy (STORM) methods. In a recently published work, we demonstrated 20 nm spatial resolution using the spectrally integrated Raman signal on highly uniform SERS substrates. A mature version of our method would require development of spectrally resolved nanoscale Raman imaging. Development of stochastic Raman imaging addresses the issue by design and construction of a Raman microscope with hyperspectral imaging capability that will allow imaging of different Raman bands of the SERS signal. Novel computational techniques must also be developed that will enable extraction of hyperspectral STORM images corresponding to different Raman bands, while simultaneously allowing conventional STORM data to be collected using the well-established labelling techniques. The resulting technique (Hyperspectral Raman STORM or HyperSTORRM) has the potential to complement the available labeled stochastic imaging methods and enable chemically resolved nanoscopy.
机译:超级分辨率成像是由于迄今为止对生物学的影响而引起的近年来引起的新兴领域。所有超分辨率技术都使用荧光标记对图像纳米级生物分子结构。相反,如果拉曼散射等化学指纹技术可以与超分辨率成像耦合,则可以容易地桥接生物样本的化学环境的无标记纳米镜成像,例如拉曼散射的化学指纹技术,克服衍射极限。为了实现这一目标,我们建议开发一种超级分辨随机高光谱拉曼显微镜技术,用于生物架构的成像。表面增强的拉曼光谱(SERS)信号包含有关各种拉曼带的存在的信息,允许抗脂质,蛋白质,DNA等生物分子的歧视。单分子SERS信号中含有的富有的波动的光谱信息具有在无标记成像中具有很大的潜力,使用随机光学重建显微镜(风暴)方法。在最近发表的工作中,我们在高度均匀的SERS基板上展示了20nm空间分辨率。我们的方法的成熟版本需要开发光谱分辨的纳米级拉曼成像。随机拉曼成像的开发通过具有高光谱成像能力的拉曼显微镜的设计和构造来解决问题,这将允许SERS信号的不同拉曼带成像。还必须开发新的计算技术,其能够提取对应于不同拉曼带的高光谱风暴图像,同时允许使用良好的标记技术收集传统的风暴数据。所得到的技术(Hyperspectral Raman Storm或Hyperstorrm)具有补充可用标记的随机成像方法并使化学分离的纳米缺陷能够补充。

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