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Cytochemical detection of catalase with 3,3′-diaminobenzidine

A quantitative reinvestigation of the optimal conditions

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Summary

The influence of various parameters of fixation and incubation upon the oxidation of DAB by catalase have been analyzed. Crystalline beef liver catalase was fixed with different concentrations of glutaraldehyde and peroxidatic activity was determined spectrophotometrically using DAB as hydrogen donor. Although aldehyde fixation appeared to be important in elicitation of the peroxidatic activity of catalase, the final pigment production after 60 min incubation was optimal with the lowest concentration of glutaraldehyde (1%), after the shortest fixation period (30 min), and at the lowest temperature (5° C) tested. Similarly cytochemical studies with rat kidney sections incubated for 10 min confirmed that the staining of peroxisomes in proximal tubules was strongest after the “mildest” fixation conditions. The pH and the temperature of incubation were closely interrelated, so that at room temperature (25° C) the maximal pigment production was obtained at pH 10.5 but incubation at 45° C gave the strongest staining at pH 8.5. The production of pigment increased with higher DAB concentrations which required larger amounts of H2O2 in the incubation medium. Cytochemical studies on renal peroxisomes were in agreement with these biochemical findings. The observations indicate that there are several options for the localization of catalase depending on the fixation and incubation conditions. Hence, these conditions should be selected according to the tissue and the purpose of the study. Examples for such selective applications are presented.

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References

  • Anderson, P.J.: Purification and quantitation of glutaraldehyde and its effects on several enzyme activities in skeletal muscle. J. Histochem. Cytochem. 15, 652–661 (1967)

    Google Scholar 

  • de Duve, C., Baudhuin, P.: Peroxisomes (microbodies and related particles). Physiol. Rev. 46, 323–357 (1966)

    Google Scholar 

  • Deisseroth, A., Dounce, A.L.: Catalase: Physical and chemical properties, mechanism of catalysis, and physiological role. Physiol. Rev. 50, 319–375 (1970)

    Google Scholar 

  • Fahimi, H.D.: Cytochemical localization of peroxidase activity in rat hepatic microbodies (peroxisomes). J. Histochem. Cytochem. 16, 547–550 (1968)

    Google Scholar 

  • Fahimi, H.D.: Cytochemical localization of peroxidatic activity of catalase in rat hepatic microbodies. J. Cell Biol. 43, 275–288 (1969)

    Google Scholar 

  • Fahimi, H.D.: Fine structural cytochemical localization of peroxidatic activity of catalase. In: Techniques of biochemical and biophysical morphology. Glick, D., and Rosenbaum, H. (eds.), Vol. 2, pp. 197–245. New York: John Wiley and Sons 1975

    Google Scholar 

  • Fahimi, H.D., Drochmans, P.: Essais de standardisation de la fixation au glutaraldéhyde. I. Purification et détermination de la concentration du glutaraldéhyde. J. Microsc. (Paris) 4, 725–736 (1965)

    Google Scholar 

  • Fahimi, H.D., Drochmans, P.: Purification of glutaraldehyde. Its significance for preservation of acid phosphatase activity. J. Histochem. Cytochem. 16, 199–204 (1968)

    Google Scholar 

  • Fahimi, H.D., Herzog, V.: A colorimetric method for measurement of the (peroxidase mediated) oxidation of 3,3′-diaminobenzidine. J. Histochem. Cytochem. 21, 499–503 (1973)

    Google Scholar 

  • Graham, R.C., Karnovsky, M.J.: The early stages of absorption of injected horseradish peroxidase in the proximal tubules of the mouse kidney: ultrastructural cytochemistry by a new technique. J. Histochem. Cytochem. 14, 291–302 (1966)

    Google Scholar 

  • Herzog, V., Fahimi, H.D.: Glutaraldehyde fixation: a prerequisite for demonstration of the peroxidatic activity of catalase in isolated rat liver peroxisomes and crystalline beef liver catalase. J. Cell Biol. 55, 133a (1972)

    Google Scholar 

  • Herzog, V., Fahimi, H.D.: The effect of glutaraldehyde on catalase. Biochemical and cytochemical studies with beef liver catalase and rat liver peroxisomes. J. Cell Biol. 60, 303–310 (1974a)

    Google Scholar 

  • Herzog, V., Fahimi, H.D.: Colorimetric and cytochemical studies for the determination of optimal conditions for demonstration of catalase. In: Electron Microscopy and Cytochemistry Wisse, E., Daems, W.Th., Molenaar, I. and Dujin, P. van (eds.), pp. 111–113. Amsterdam: North-Holland Publishing Co. 1974b

    Google Scholar 

  • Herzog, V., Fahimi, H.D.: Intracellular distinction between peroxidase and catalase in exocrine cells of rat lacrimal gland: a biochemical and cytochemical study. Histochemistry 46, 273–286 (1976)

    Google Scholar 

  • Hirai K.I.: Specific affinity of oxidized amine dye (radical intermediate) for heme enzymes: study in microscopy and spectrophotometry. Acta Histochem. Cytochem. (Kyoto) 1, 43–55 (1968)

    Google Scholar 

  • Hirai, K.I.: Light microscopic study of the peroxidatic activity of catalase in formaldehyde-fixed rat liver. J. Histochem. Cytochem. 17, 585–590 (1969)

    Google Scholar 

  • Laser, H.: Peroxidatic activity of catalase. Biochem. J. 61, 122–127 (1955)

    Google Scholar 

  • Lück, H.: Katalase. In: Methoden de enzymatischen Analyse. Bergmeyer H.V. (ed.), pp. 885–894. Weinheim. Verlag Chemie 1962

    Google Scholar 

  • Magalhaes, M.M., Magalhaes, M.C.: Microbodies (peroxisomes) in rat adrenal cortex. J. Ultrastruct. Res. 37, 563–573 (1971)

    Google Scholar 

  • Novikoff, A.B., Goldfischer, S.: Visualization of peroxisomes (microbodies) and mitochondria with diaminobenzidine. J. Histochem. Cytochem., 17, 675–680 (1969)

    Google Scholar 

  • Novikoff, A.B., Novikoff, P.M., Davis, D., Quintana, N.: Studies on microperoxisomes. II. A cytochemical method for light and electron microscopy. J. Histochem. Cytochem. 20, 1006–1023 (1972)

    Google Scholar 

  • Payne, J.W.: Polymerization of proteins with glutaraldehyde. Soluble molecular weight markers. Biochem. J. 135, 867–873 (1973)

    Google Scholar 

  • Roels, F., Wisse, E.: Distinction cytochimique entre catalase et peroxidase. C. R. Acad. Sci. Ser. D 276, 391–393 (1973)

    Google Scholar 

  • Roels, F., Wisse, E., de Prest, B., van der Meulen, J.: Cytochemical discrimination between catalase and peroxidases using diaminobenzidine. Histochemistry 41, 281–312 (1975)

    Google Scholar 

  • Schejter, A., Bar-Eli, A.: Preparation and properties of crosslinked water-insoluble catalase. Arch. Biochem. Biophys. 136, 325–330 (1970)

    Google Scholar 

  • Tice, L.W.: Effect of hypophysectomy and TSH replacement on the ultrastructural localization of thyroperoxidase. Endocrinology 95, 421–433 (1974)

    Google Scholar 

  • Teorell, I., Stenhagen, E.: Ein Universalpuffer für den pH-Bereich 2.0–12.0. Biochem. Z. 299, 416–419 (1938)

    Google Scholar 

  • Venkatachalam, M.A., Fahimi, H.D.: The use of beef liver catalase as a protein tracer for electron microscopy. J. Cell Biol. 42, 480–489 (1969)

    Google Scholar 

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LeHir, M., Herzog, V. & Fahimi, H.D. Cytochemical detection of catalase with 3,3′-diaminobenzidine. Histochemistry 64, 51–66 (1979). https://doi.org/10.1007/BF00493354

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