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April 10, 2026Journal of Microscopy0 citationsOpen Access

Advances in high‐resolution cryo‐volume electron microscopy (cvEM) imaging for unicellular and multicellular organisms

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MKMaryna KobylynskaDNDanniel NichollsZBZoe Broad

Key Points

  • This research aims to improve high-resolution imaging techniques for studying cell ultrastructure in organisms.
  • Utilized cryo-focused ion beam scanning electron microscopy for sample imaging.
  • Implemented high-pressure freezing to fix samples for near-native imaging.
  • Developed new workflows to mitigate issues like sample damage and long acquisition times.
  • Focused on organisms such as Caenorhabditis elegans and Paramecium bursaria.
  • Achieved enhanced resolution in imaging cell structures.
  • Demonstrated the ability to visualize complex tissues in their natural state.
  • Showed that the freezing process preserves fluorescence for better structural analysis.
  • Highlighted the method's versatility for various unicellular and multicellular organisms.

Abstract

Cryo-Focused Ion Beam Scanning Electron Microscopy (cryoFIB-SEM) using samples fixed by high-pressure freezing uniquely enables high-resolution cryo-volume Electron Microscope (cvEM) images of cell ultrastructure to be obtained from whole cells and complex tissues in their near native state. As the freezing process also preserves fluorescence, the link between three-dimensional (3D) ultrastructure and biological process is also enabled by targeted cryo-Correlative Light and Electron Microscopy (CLEM). However, the overall viability of cvEM is challenged by sample preparation, charge balance during imaging, sample sensitivity to beam damage, contamination, and very long acquisition times. Here we detail new experimental workflows to significantly reduce each of these effects and demonstrate the improvement in resolution possible with results from the nematode Caenorhabditis elegans and the ciliated protozoon Paramecium bursaria containing many endosymbiotic algae. These results demonstrate the versatility and potential wide-ranging utility of cvEM for 3D ultrastructural imaging of whole multicellular and unicellular organisms.

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Cite This Study

Kobylynska et al. (2026) studied this question.

synapsesocial.com/papers/69d896406c1944d70ce079dehttps://doi.org/10.1111/jmi.70085
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