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Live-cell Imaging Of Dendritic Spines By Sted Microscopy

机译:用树突显微镜对树突棘进行活细胞成像

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Time lapse fluorescence imaging has become one of the most important approaches in neurobiological research. In particular, both confocal and two-photon microscopy have been used to study activity-dependent changes in synaptic morphology. However, the diffraction-limited resolution of light microscopy is often inadequate, forcing researchers to complement the live cell imaging strategy by EM. Here, we report on the first use of a far-field optical technique with subdiffraction resolution to noninvasively image activity-dependent morphological plasticity of dendritic spines. Specifically we show that time lapse stimulated emission depletion imaging of dendritic spines of YFP-positive hippocampal neurons in organotypic slices outperforms confocal microscopy in revealing important structural details. The technique substantially improves the quantification of morphological parameters, such as the neck width and the curvature of the heads of spines, which are thought to play critical roles for the function and plasticity of synaptic connections.
机译:延时荧光成像已成为神经生物学研究中最重要的方法之一。特别是,共焦和双光子显微镜都已被用于研究突触形态的活动依赖性变化。但是,光学显微镜的衍射极限分辨率通常不足,迫使研究人员通过EM补充活细胞成像策略。在这里,我们报道了具有亚衍射分辨率的远场光学技术的首次使用,以非侵入性方式依赖树突棘的图像活性依赖型形态可塑性。具体来说,我们显示,在揭示重要的结构细节时,器官型切片中YFP阳性海马神经元的树突棘的延时刺激发射耗竭成像优于共聚焦显微镜。该技术极大地改善了形态学参数的量化,例如颈部宽度和棘突头部的曲率,这些参数对于突触连接的功能和可塑性起着至关重要的作用。

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