4.5 Article

Corrected Super-Resolution Microscopy Enables Nanoscale Imaging of Autofluorescent Lung Macrophages

期刊

BIOPHYSICAL JOURNAL
卷 119, 期 12, 页码 2403-2417

出版社

CELL PRESS
DOI: 10.1016/j.bpj.2020.10.041

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资金

  1. Wellcome Trust Investigator Award [110091]
  2. Manchester Collaborative Centre for Inflammation Research
  3. AstraZeneca
  4. University of Manchester, Manchester, UK
  5. North West Lung Centre Charity
  6. National Institute for Health Research Clinical Research Facility at Manchester University NHS Foundation Trust
  7. GlaxoSmithKline

向作者/读者索取更多资源

Observing the cell surface and underlying cytoskeleton at nanoscale resolution using super-resolution microscopy has enabled many insights into cell signaling and function. However, the nanoscale dynamics of tissue-specific immune cells have been relatively little studied. Tissue macrophages, for example, are highly autofluorescent, severely limiting the utility of light microscopy. Here, we report a correction technique to remove autofluorescent noise from stochastic optical reconstruction microscopy (STORM) data sets. Simulations and analysis of experimental data identified a moving median filter as an accurate and robust correction technique, which is widely applicable across challenging biological samples. Here, we used this method to visualize lung macrophages activated through Fc receptors by antibody-coated glass slides. Accurate, nanoscale quantification of macrophage morphology revealed that activation induced the formation of cellular protrusions tipped with MHC class I protein. These data are consistent with a role for lung macrophage protrusions in antigen presentation. Moreover, the tetraspanin protein CD81, known to mark extracellular vesicles, appeared in ring-shaped structures (mean diameter 93 +/- 50 nm) at the surface of activated lung macrophages. Thus, a moving median filter correction technique allowed us to quantitatively analyze extracellular secretions and membrane structure in tissue-derived immune cells.

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