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Updated: Jun 11, 2025

Imaging of Podocytic Proteins Nephrin, Actin, and Podocin with Expansion Microscopy
Published on: April 23, 2021
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.
Abstract:
Deep insights into the complex cellular and molecular changes occurring during (patho-)physiological conditions are essential for understanding the interactions and regulation of proteins. This understanding is crucial for research and diagnostics. However, the effectiveness of conventional immunofluorescence and light microscope, tools for visualizing the spatial distribution of cells or proteins, are limited both in resolution and multiplexity in complex tissues. This is mainly due to challenges such as the spectral overlap of fluorophore wavelengths, a limited range of antibody types, the inherent variability of samples and the optical resolution limit. The herein demonstrated combination of multiplex immunofluorescence imaging and super resolution microscopy offers a solution to these limitations by enabling the identification of different cell types and precise subcellular localization of proteins in tissue sections. In this study, we demonstrate the cyclic staining and de-staining of paraffin kidney sections, making it suitable for routine use and compatible with super-resolution microscopy for podocyte ultrastructural studies. We have further developed a computerized workflow for data processing which is accessible through available reagents and open-access code. As a proof of principle, we identified CDH2 as a marker for cellular lesions of sclerotic glomeruli in the nephrotoxic serum nephritis mouse model and cross-validated this finding with a human Nephroseq dataset indicating its translatability. In summary, our work represents an advance in multiplex imaging, which is crucial for understanding the localization of numerous proteins in a single FFPE kidney section and the compatibility with super-resolution microscopy to study ultrastructural changes of podocytes.
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