Homogeneous multifocal excitation for high-throughput super-resolution imaging

Super-resolution microscopies have become an established tool in biological research. However, imaging throughput remains a main bottleneck in acquiring large datasets required for quantitative biology. Here we describe multifocal flat illumination for field-independent imaging (mfFIFI). By integrat...

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Veröffentlicht in:Nature methods 2020-07, Vol.17 (7), p.726-733
Hauptverfasser: Mahecic, Dora, Gambarotto, Davide, Douglass, Kyle M., Fortun, Denis, Banterle, Niccoló, Ibrahim, Khalid A., Le Guennec, Maeva, Gönczy, Pierre, Hamel, Virginie, Guichard, Paul, Manley, Suliana
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Sprache:eng
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Zusammenfassung:Super-resolution microscopies have become an established tool in biological research. However, imaging throughput remains a main bottleneck in acquiring large datasets required for quantitative biology. Here we describe multifocal flat illumination for field-independent imaging (mfFIFI). By integrating mfFIFI into an instant structured illumination microscope (iSIM), we extend the field of view (FOV) to >100 × 100 µm 2 while maintaining high-speed, multicolor, volumetric imaging at double the diffraction-limited resolution. We further extend the effective FOV by stitching adjacent images for fast live-cell super-resolution imaging of dozens of cells. Finally, we combine our flat-fielded iSIM with ultrastructure expansion microscopy to collect three-dimensional (3D) images of hundreds of centrioles in human cells, or thousands of purified Chlamydomonas reinhardtii centrioles, per hour at an effective resolution of ~35 nm. Classification and particle averaging of these large datasets enables 3D mapping of posttranslational modifications of centriolar microtubules, revealing differences in their coverage and positioning. Multifocal flat illumination for field-independent imaging (mfFIFI) enables patterned illumination over an extended field of view. Integration with instant structured illumination microscope allowed for high-speed, multicolor, volumetric super-resolution imaging over 100 × 100 µm 2 .
ISSN:1548-7091
1548-7105
DOI:10.1038/s41592-020-0859-z