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Correlative super-resolution fluorescence microscopy combined with optical coherence microscopy

机译:相关超分辨率荧光显微镜和光学相干显微镜

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Recent development of super-resolution fluorescence imaging technique such as stochastic optical reconstruction microscopy (STORM) and photoactived localization microscope (PALM) has brought us beyond the diffraction limits. It allows numerous opportunities in biology because vast amount of formerly obscured molecular structures, due to lack of spatial resolution, now can be directly observed. A drawback of fluorescence imaging, however, is that it lacks complete structural information. For this reason, we have developed a super-resolution multimodal imaging system based on STORM and full-field optical coherence microscopy (FF-OCM). FF-OCM is a type of interferometry systems based on a broadband light source and a bulk Michelson interferometer, which provides label-free and non-invasive visualization of biological samples. The integration between the two systems is simple because both systems use a wide-field illumination scheme and a conventional microscope. This combined imaging system gives us both functional information at a molecular level (~20nm) and structural information at the sub-cellular level (~1μm). For thick samples such as tissue slices, while FF-OCM is readily capable of imaging the 3D architecture, STORM suffer from aberrations and high background fluorescence that substantially degrade the resolution. In order to correct the aberrations in thick tissues, we employed an adaptive optics system in the detection path of the STORM microscope. We used our multimodal system to obtain images on brain tissue samples with structural and functional information.
机译:超分辨率荧光成像技术的最新发展,例如随机光学重建显微镜(STORM)和光敏定位显微镜(PALM),使我们超越了衍射极限。它为生物学提供了许多机会,因为由于缺乏空间分辨率,现在可以直接观察到大量以前模糊不清的分子结构。但是,荧光成像的缺点是缺乏完整的结构信息。因此,我们开发了基于STORM和全场光学相干显微镜(FF-OCM)的超分辨率多峰成像系统。 FF-OCM是一种基于宽带光源和块状迈克尔逊干涉仪的干涉仪系统,可提供无标签且无创的生物样本可视化。这两个系统之间的集成很简单,因为这两个系统都使用宽视场照明方案和常规显微镜。这种组合的成像系统既可以提供分子水平(〜20nm)的功能信息,又可以提供亚细胞水平(〜1μm)的结构信息。对于厚样品,例如组织切片,虽然FF-OCM能够轻松成像3D架构,但STORM会出现像差和高背景荧光,这会大大降低分辨率。为了校正厚组织中的像差,我们在STORM显微镜的检测路径中采用了自适应光学系统。我们使用我们的多峰系统获取具有结构和功能信息的脑组织样本图像。

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