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首页> 外文期刊>Frontiers in Cellular Neuroscience >Super Resolution Imaging of Genetically Labeled Synapses in Drosophila Brain Tissue
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Super Resolution Imaging of Genetically Labeled Synapses in Drosophila Brain Tissue

机译:果蝇脑组织中遗传标记的突触的超分辨率成像。

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Understanding synaptic connectivity and plasticity within brain circuits and their relationship to learning and behavior is a fundamental quest in neuroscience. Visualizing the fine details of synapses using optical microscopy remains however a major technical challenge. Super resolution microscopy opens the possibility to reveal molecular features of synapses beyond the diffraction limit. With direct stochastic optical reconstruction microscopy, dSTORM, we image synaptic proteins in the brain tissue of the fruit fly, Drosophila melanogaster. Super resolution imaging of brain tissue harbors difficulties due to light scattering and the density of signals. In order to reduce out of focus signal, we take advantage of the genetic tools available in the Drosophila and have fluorescently tagged synaptic proteins expressed in only a small number of neurons. These neurons form synapses within the calyx of the mushroom body, a distinct brain region involved in associative memory formation. Our results show that super resolution microscopy, in combination with genetically labeled synaptic proteins, is a powerful tool to investigate synapses in a quantitative fashion providing an entry point for studies on synaptic plasticity during learning and memory formation.
机译:了解神经回路中突触的连通性和可塑性及其与学习和行为的关系是神经科学的基本追求。然而,使用光学显微镜可视化突触的精细细节仍然是主要的技术挑战。超分辨率显微镜为揭示超出衍射极限的突触分子特征提供了可能性。使用直接随机光学重建显微镜dSTORM,我们可以对果蝇果蝇(Drosophila melanogaster)脑组织中的突触蛋白进行成像。脑组织的超分辨率成像由于光散射和信号密度而带来困难。为了减少失焦信号,我们利用了果蝇中可用的遗传工具,并且仅在少数神经元中表达了荧光标记的突触蛋白。这些神经元在蘑菇体的花萼内形成突触,该突触是与联想记忆形成有关的独特大脑区域。我们的结果表明,超分辨率显微镜与遗传标记的突触蛋白结合在一起,是定量研究突触的有力工具,为学习和记忆形成过程中突触可塑性的研究提供了切入点。

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