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Quantitative high-speed imaging of entire developing embryos with simultaneous multiview light-sheet microscopy

机译:完整的发育胚胎的定量高速成像,同时进行多视角光学显微镜

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Live imaging of large biological specimens is fundamentally limited by the short optical penetration depth of light microscopes. To maximize physical coverage, we developed the SiMView technology framework for high-speed in vivo imaging, which records multiple views of the specimen simultaneously. SiMView consists of a light-sheet microscope with four synchronized optical arms, real-time electronics for long-term sCMOS-based image acquisition at 175 million voxels per second, and computational modules for high-throughput image registration, segmentation, tracking and real-time management of the terabytes of multiview data recorded per specimen. We developed one-photon and multiphoton SiMView implementations and recorded cellular dynamics in entire Drosophila melanogaster embryos with 30-s temporal resolution throughout development. We furthermore performed high-resolution long-term imaging of the developing nervous system and followed neuroblast cell lineages in vivo. SiMView data sets provide quantitative morphological information even for fast global processes and enable accurate automated cell tracking in the entire early embryo.
机译:大型生物标本的实时成像从根本上受到光学显微镜光学穿透深度的限制。为了最大化物理覆盖范围,我们开发了用于高速体内成像的SiMView技术框架,该框架可同时记录标本的多个视图。 SiMView包括具有四个同步光学臂的光片显微镜,用于以1.75亿体素/秒的速率长期进行基于sCMOS的图像采集的实时电子设备以及用于高通量图像配准,分割,跟踪和实时处理的计算模块每个标本记录的TB级多视图数据的时间管理。我们开发了单光子和多光子SiMView实现方案,并在整个果蝇中以30 s的时间分辨率记录了果蝇整个果蝇的细胞动力学。我们进一步对发育中的神经系统进行了高分辨率的长期成像,并跟踪了体内成神经细胞的谱系。 SiMView数据集甚至可以为快速的全局过程提供定量的形态学信息,并可以在整个早期胚胎中进行精确的自动细胞跟踪。

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