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Updated: Oct 13, 2025

Scanning Electron Microscopy of Macerated Tissue to Visualize the Extracellular Matrix
Published on: June 14, 2016
EMbedding and Backscattered Scanning Electron Microscopy: A Detailed Protocol for the Whole-Specimen, High-Resolution
Rinat A Mukhamadiyarov1, Leo A Bogdanov1, Tatiana V Glushkova1
1Department of Experimental Medicine, Research Institute for Complex Issues of Cardiovascular Diseases, Kemerovo, Russia.
Insights
A novel scanning electron microscopy technique preserves cardiovascular tissue integrity for detailed ultrastructural analysis. This method overcomes limitations of light microscopy and fluorescence imaging, enabling better insights into cardiovascular disease development.
Area of Science:
- Cardiovascular Research
- Microscopy Techniques
- Pathology
Background:
- Current ultrastructural analysis of cardiovascular tissues is limited by low resolution and high background noise.
- Conventional methods struggle with preserving the integrity of calcified or mineralized cardiovascular tissues.
Purpose of the Study:
- To develop a novel method for detailed ultrastructural analysis of cardiovascular tissues.
- To overcome limitations of existing techniques for examining complex cardiovascular structures.
Main Methods:
- Formalin fixation, sequential heavy metal incubation (osmium tetroxide, uranyl acetate, lanthanides, lead citrate), and epoxy resin embedding.
- Grinding, polishing, and carbon sputtering for visualization via backscattered scanning electron microscopy.
Main Results:
- The technique fully preserves tissue integrity, including calcified and stent-expanded samples.
- Enables detailed analysis of vascular and valvular composition, architecture, and cell types.
- Allows for quantitation of blood vessel number, area, and density.
Conclusions:
- This approach provides a new tool for pathophysiological insight into cardiovascular disease development.
- The protocol is accessible to laboratories with a scanning electron microscope and requires no specialized expertise.
Abstract:
Currently, an ultrastructural analysis of cardiovascular tissues is significantly complicated. Routine histopathological examinations and immunohistochemical staining suffer from a relatively low resolution of light microscopy, whereas the fluorescence imaging of plaques and bioprosthetic heart valves yields considerable background noise from the convoluted extracellular matrix that often results in a low signal-to-noise ratio. Besides, the sectioning of calcified or stent-expanded blood vessels or mineralised heart valves leads to a critical loss of their integrity, demanding other methods to be developed. Here, we designed a conceptually novel approach that combines conventional formalin fixation, sequential incubation in heavy metal solutions (osmium tetroxide, uranyl acetate or lanthanides, and lead citrate), and the embedding of the whole specimen into epoxy resin to retain its integrity while accessing the region of interest by grinding and polishing. Upon carbon sputtering, the sample is visualised by means of backscattered scanning electron microscopy. The technique fully preserves calcified and stent-expanded tissues, permits a detailed analysis of vascular and valvular composition and architecture, enables discrimination between multiple cell types (including endothelial cells, vascular smooth muscle cells, fibroblasts, adipocytes, mast cells, foam cells, foreign-body giant cells, canonical macrophages, neutrophils, and lymphocytes) and microvascular identities (arterioles, venules, and capillaries), and gives a technical possibility for quantitating the number, area, and density of the blood vessels. Hence, we suggest that our approach is capable of providing a pathophysiological insight into cardiovascular disease development. The protocol does not require specific expertise and can be employed in virtually any laboratory that has a scanning electron microscope.
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