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Fast, high-contrast imaging of animal development with scanned light sheet-based structured-illumination microscopy

机译:使用基于扫描光片的结构照明显微镜对动物发育进行快速,高对比度的成像

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摘要

Recording light-microscopy images of large, nontransparent specimens, such as developing multicellular organisms, is complicated by decreased contrast resulting from light scattering. Early zebrafish development can be captured by standard light-sheet microscopy, but new imaging strategies are required to obtain high-quality data of late development or of less transparent organisms. We combined digital scanned laser light-sheet fluorescence microscopy with incoherent structured-illumination microscopy (DSLM-SI) and created structured-illumination patterns with continuously adjustable frequencies. Our method discriminates the specimen-related scattered background from signal fluorescence, thereby removing out-of-focus light and optimizing the contrast of in-focus structures. DSLM-SI provides rapid control of the illumination pattern, exceptional imaging quality and high imaging speeds. We performed long-term imaging of zebrafish development for 58 h and fast multiple-view imaging of early Drosophila melanogaster development. We reconstructed cell positions over time from the Drosophila DSLM-SI data and created a fly digital embryo.
机译:记录大型非透明标本(例如发育中的多细胞生物)的光学显微镜图像会因光散射导致的对比度降低而变得复杂。斑马鱼的早期发育可以通过标准的光片显微镜来捕获,但是需要新的成像策略来获得后期发育或不透明生物的高质量数据。我们将数字扫描激光薄板荧光显微镜与不相干的结构照明显微镜(DSLM-SI)结合在一起,并创建了频率连续可调的结构照明图案。我们的方法从信号荧光中区分出与标本相关的散射背景,从而消除了散焦光并优化了聚焦结构的对比度。 DSLM-SI提供了照明图案的快速控制,出色的成像质量和很高的成像速度。我们对斑马鱼的发育进行了58小时的长期成像,并对果蝇的早期发育进行了快速的多视图成像。我们根据果蝇DSLM-SI数据随时间重建细胞位置,并创建了果蝇数字胚胎。

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