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In vivo mouse and live cell STED microscopy of neuronal actin plasticity using far-red emitting fluorescent proteins

机译:使用远红外发射荧光蛋白的体内小鼠和活细胞STED显微镜观察神经元肌动蛋白的可塑性

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摘要

The study of proteins in dendritic processes within the living brain is mainly hampered by the diffraction limit of light. STED microscopy is so far the only far-field light microscopy technique to overcome the diffraction limit and resolve dendritic spine plasticity at superresolution (nanoscopy) in the living mouse. After having tested several far-red fluorescent proteins in cell culture we report here STED microscopy of the far-red fluorescent protein mNeptune2, which showed best results for our application to superresolve actin filaments at a resolution of ~80 nm, and to observe morphological changes of actin in the cortex of a living mouse. We illustrate in vivo far-red neuronal actin imaging in the living mouse brain with superresolution for time periods of up to one hour. Actin was visualized by fusing mNeptune2 to the actin labels Lifeact or Actin-Chromobody. We evaluated the concentration dependent influence of both actin labels on the appearance of dendritic spines; spine number was significantly reduced at high expression levels whereas spine morphology was normal at low expression.
机译:活脑内树突状过程中蛋白质的研究主要受到光的衍射极限的阻碍。迄今为止,STED显微镜是唯一能克服衍射极限并以超分辨率(纳米显微镜)解决活小鼠中树突棘可塑性的远场光学显微镜技术。在细胞培养物中测试了几种远红外荧光蛋白后,我们在这里报告了远红外荧光蛋白mNeptune2的STED显微镜观察,该结果显示了我们用于以约80nm的分辨率超分辨肌动蛋白丝并观察形态变化的最佳结果活体小鼠皮层中肌动蛋白的表达。我们说明了活的小鼠大脑中的体内远红色神经元肌动蛋白成像的超分辨率长达一个小时。通过将mNeptune2融合到肌动蛋白标签Lifeact或Actin-Chromobody,可以看到肌动蛋白。我们评估了两种肌动蛋白标记物对树突棘外观的浓度依赖性影响。高表达水平时,脊柱数目明显减少,而低表达时,脊柱形态正常。

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