Super-resolved highly multiplexed immunofluorescence imaging for precise protein localization and podocyte

Florian Siegerist1,2, Svenja Kitzel1, Nihal Telli1,3

  • 1Department of Anatomy and Cell Biology, University Medicine Greifswald, Greifswald, Germany.

Insights

This study combines multiplex immunofluorescence and super-resolution microscopy to overcome limitations in visualizing cellular changes in kidney tissue. The new method precisely maps protein localization for improved diagnostics and research into kidney diseases.

Area of Science:

  • Cell Biology
  • Molecular Biology
  • Biotechnology

Background:

  • Conventional immunofluorescence and light microscopy have limitations in resolution and multiplexity for complex tissues.
  • Challenges include spectral overlap, limited antibody choices, sample variability, and optical resolution limits.
  • Understanding protein interactions and regulation in (patho-)physiological conditions is vital for research and diagnostics.

Purpose of the Study:

  • To develop a method combining multiplex immunofluorescence imaging and super-resolution microscopy for precise subcellular protein localization in tissue sections.
  • To enable routine use and compatibility with super-resolution microscopy for ultrastructural studies of podocytes.
  • To establish a computerized workflow for data processing using accessible reagents and open-access code.

Main Methods:

  • Cyclic staining and de-staining of paraffin kidney sections.
  • Integration with super-resolution microscopy for high-resolution imaging.
  • Development of a computerized workflow for data processing.

Main Results:

  • Demonstrated precise subcellular localization of proteins in kidney sections.
  • Identified CDH2 as a marker for cellular lesions in sclerotic glomeruli using a mouse model.
  • Validated the finding using a human Nephroseq dataset, indicating translatability.

Conclusions:

  • The developed multiplex imaging technique overcomes conventional limitations, enabling detailed analysis of protein localization in FFPE kidney sections.
  • Compatibility with super-resolution microscopy allows for ultrastructural studies of podocytes.
  • The approach advances multiplex imaging for understanding cellular and molecular changes in kidney disease research.