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High resolution microscopy reveals the nuclear shape of budding yeast during cell cycle and in various biological states

机译:高分辨率显微镜显示在细胞周期和各种生物态中萌芽酵母的核形状

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How spatial organization of the genome depends on nuclear shape is unknown, mostly because accurate nuclear size and shape measurement is technically challenging. In large cell populations of the yeast Saccharomyces cerevisiae, we assessed the geometry (size and shape) of nuclei in three dimensions with a resolution of 30 nm. We improved an automated fluorescence localization method by implementing a post-acquisition correction of the spherical microscopic aberration along the z-axis, to detect the three dimensional (3D) positions of nuclear pore complexes (NPCs) in the nuclear envelope. Here, we used a method called NucQuant to accurately estimate the geometry of nuclei in 3D throughout the cell cycle. To increase the robustness of the statistics, we aggregated thousands of detected NPCs from a cell population in a single representation using the nucleolus or the spindle pole body (SPB) as references to align nuclei along the same axis. We could detect asymmetric changes of the nucleus associated with modification of nucleolar size. Stereotypical modification of the nucleus toward the nucleolus further confirmed the asymmetric properties of the nuclear envelope.
机译:基因组的空间组织如何取决于核形状是未知的,主要是因为精确的核大小和形状测量在技术上挑战。在酵母酿酒酵母的大细胞群中,我们在分辨率为30nm的三维中评估了核的几何形状(尺寸和形状)。通过实施沿Z轴的球面微观像差的采集后校正来改善自动荧光定位方法,以检测核包封中的核​​孔隙络合物(NPC)的三维(3D)位置。在这里,我们使用了一种称为NUCQUANT的方法,以精确地估计整个细胞周期中3D中的核的几何形状。为了提高统计的稳健性,我们使用核仁或主轴杆体(SPB)在单个表示中从细胞群中汇集了数千个检测到的NPC,作为参考沿相同轴对准核的参考。我们可以检测与核仁大小的修饰相关的细胞核的不对称变化。朝向核仁的核心修饰进一步证实了核包膜的不对称性质。

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