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      Illumination angle correction during image acquisition in light-sheet fluorescence microscopy using deep learning

      , , ,
      Biomedical Optics Express
      Optica Publishing Group

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          A Mathematical Theory of Communication

          C. Shannon (1948)
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            Reconstruction of zebrafish early embryonic development by scanned light sheet microscopy.

            A long-standing goal of biology is to map the behavior of all cells during vertebrate embryogenesis. We developed digital scanned laser light sheet fluorescence microscopy and recorded nuclei localization and movement in entire wild-type and mutant zebrafish embryos over the first 24 hours of development. Multiview in vivo imaging at 1.5 billion voxels per minute provides "digital embryos," that is, comprehensive databases of cell positions, divisions, and migratory tracks. Our analysis of global cell division patterns reveals a maternally defined initial morphodynamic symmetry break, which identifies the embryonic body axis. We further derive a model of germ layer formation and show that the mesendoderm forms from one-third of the embryo's cells in a single event. Our digital embryos, with 55 million nucleus entries, are provided as a resource.
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              iDISCO: a simple, rapid method to immunolabel large tissue samples for volume imaging.

              The visualization of molecularly labeled structures within large intact tissues in three dimensions is an area of intense focus. We describe a simple, rapid, and inexpensive method, iDISCO, that permits whole-mount immunolabeling with volume imaging of large cleared samples ranging from perinatal mouse embryos to adult organs, such as brains or kidneys. iDISCO is modeled on classical histology techniques, facilitating translation of section staining assays to intact tissues, as evidenced by compatibility with 28 antibodies to both endogenous antigens and transgenic reporters like GFP. When applied to degenerating neurons, iDISCO revealed unexpected variability in number of apoptotic neurons within individual sensory ganglia despite tight control of total number in all ganglia. It also permitted imaging of single degenerating axons in adult brain and the first visualization of cleaved Caspase-3 in degenerating embryonic sensory axons in vivo, even single axons. iDISCO enables facile volume imaging of immunolabeled structures in complex tissues. PAPERCLIP:
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                Author and article information

                Contributors
                (View ORCID Profile)
                Journal
                Biomedical Optics Express
                Biomed. Opt. Express
                Optica Publishing Group
                2156-7085
                2156-7085
                2022
                2022
                January 21 2022
                February 01 2022
                : 13
                : 2
                : 888
                Article
                10.1364/BOE.447392
                35284156
                13a231cf-a0b7-456a-a636-08bd192f5af3
                © 2022

                https://doi.org/10.1364/OA_License_v2#VOR-OA

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