Abstract
Perfusion-Perls and -Turnbull methods supplemented by the intensification with 3,3'-diaminobenzidine (+ DAB) enabled stronger and more extensive staining of nonheme iron than the Perls + and Turnbull + DAB methods carried out on tissue sections fixed with 10% formalin in 0.9% saline or PBS. The section- and perfusion-Perls + DAB methods are not specific for the demonstration of nonheme ferric iron but also stain nonheme ferrous iron. However, owing to its high sensitivity, the perfusion-Perls + DAB method would provide useful information about nonheme iron deposition regardless of oxidation states in normal and pathological conditions. The perfusion-Turnbull + DAB method is specifically demonstrable of nonheme ferrous iron and the results from this method showed significant stores of nonheme ferrous iron in the hepatocytes, Kupffer cells, splenic macrophages, and gastric parietal cells of the rat. Since nonheme ferrous iron is considered to be critically involved in free radical generation, the perfusion-Turnbull + DAB method would visualize such populations of cells that are at risk from free radical damage.
MeSH Terms
3,3'-Diaminobenzidine/chemistry
Animals
Coloring Agents/chemistry
Female
Ferric Compounds/analysis
Ferrous Compounds/analysis
Heme/chemistry
Hepatocytes/chemistry
Histocytochemistry/methods
Iron/analysis
Kupffer Cells/chemistry
Liver/anatomy & histology,chemistry
Rats
Rats, Wistar
Spleen/anatomy & histology,chemistry
Stomach/anatomy & histology,chemistry
Chemicals
Coloring Agents
Ferric Compounds
Ferrous Compounds
3,3'-Diaminobenzidine
Heme
Iron
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Meguro Reiko
Department of Anatomy, Hirosaki University School of Medicine, 036-8562, Hirosaki, Japan.
[email protected]
Asano Yoshiya
Iwatsuki Hiroyasu
Shoumura Kazuhiko
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