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Quantitative histochemical determination of succinic dehydrogenase activity in skeletal muscle fibres

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Summary

A histochemical technique was developed for the quantitative determination of succinic dehydrogenase (SDH) activity in muscle cross-sections using 1-methoxyphenazine methosulphate (mPMS) as the exogenous electron carrier, and azide as an inhibitor of cytochrome oxidase. The optimal composition of the incubation medium for the SDH reaction was determined. This histochemical procedure was compared to one using phenazine methosulphate (PMS) instead of mPMS and cyanide instead of azide. The substitution of mPMS and azide resulted in a substantial decrease in the non-specific reduction of nitroblue tetrazolium (NBT; the reaction indicator), i.e., ‘nothing dehydrogenase’ activity. With mPMS and azide in the reaction medium, the production of NBT formazan was linear for at least 9 min during the enzymic reaction. This compared to a non-linear reduction of NBT during the initial stages of the reactions (SDH and ‘nothing dehydrogenase’) when using PMS and cyanide. The use of both mPMS and azide also eliminated the production of NBT monoformazan which occurred with PMS and cyanide. This procedure was shown to meet various criteria established for the quantification of histochemical reactions.

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References

  • ALTMAN, F. P. (1974) Studies on the reduction of tetrazolium salts. III. The products of chemical and enzymic reduction.Histochemistry 38, 155–71

    Google Scholar 

  • ALTMAN, F. P. (1975) Quantitation in histochemistry: a review of some commercially available microdensitometers.Histochem. J. 7, 375–95.

    Google Scholar 

  • ALTMAN, F. P. (1976a) The quantification of formazans in tissue sections by microdensitometry. II. The use of BPST, a new tetrazolium salt.Histochem. J. 8, 501–6.

    Google Scholar 

  • ALTMAN, F. P. (1976b) The quantification of formazan in tissue sections by microdensitometry. III. The effect of objective power and scanning spot size.Histochem. J. 8, 507–11.

    Google Scholar 

  • BLANCO, C. E. & SIECK, G. C. (1987) Comparison of succinate dehydrogenase activity between the diaphragm and medial gastrocnemius muscles of the rat. InRespiratory Muscles and their Neuromotor Control, (edited by SIECK, G. C., GANDEVIA, S. C. and CAMERON, W. E.), pp. 281–9. New York: Alan R. Liss.

    Google Scholar 

  • BITENSKY, L. (1980) Microdensitometry. InTrends in Enzyme Histochemistry and Cytochemistry (edited by EVERED, D. and O'CONNOR, M.) pp. 181–202. Amsterdam: Excerpta Medica.

    Google Scholar 

  • BUTCHER, R. G. (1970) Studies on succinate oxidation. I. The use of intact tissue sections.Exp. Cell Res. 60, 54–60.

    Google Scholar 

  • BUTCHER, R. G. (1978a) The measurement in tissue sections of the two formazans derived from nitroblue tetrazolium in dehydrogenase reactions.Histochem. J. 10, 739–44.

    Google Scholar 

  • BUTCHER, R. G. (1978b) Oxygen and the production of formazan neotetrazolium chloride.Histochemistry 56, 329–40.

    Google Scholar 

  • CASTLEMAN, K. R., CHUI, L. A., MARTIN, T. P. & EDGERTON, V. R. (1984) Quantitative muscle biopsy analysis. InComputer-assisted image analysis cytology, (edited by GREENBERG, S. D.), pp. 101–16. Basel: Karger.

    Google Scholar 

  • EADIE, M. J., TYRER, J. H., KUKUMS, J. R. & HOOPER, W. D. (1970) Aspects of tetrazolium salt reduction relevant to quantitative histochemistry.Histochemie 21, 170–80.

    Google Scholar 

  • EISENBERG, B. R. & KUDA, A. M. (1975) Stereological analysis of mammalian skeletal muscle II. White vastus muscle of the adult guinea pig.J. Ultrastr. Res. 51, 176–87.

    Google Scholar 

  • EISENBERG, B. R. & KUDA, A. M. (1976) Discrimination between fiber populations in mammalian skeletal muscle by using ultrastructural parameters.J. Ultrastr. Res. 54, 76–88.

    Google Scholar 

  • EISENBERG, B. R. & KUDA, A. M. (1977) Retrieval of cryostat sections for comparison of histochemistry and quantitative electron microscopy in a muscle fiber.J. Histochem. Cytochem. 25, 1169–77.

    Google Scholar 

  • EISENBERG, B. R., KUDA, A. M. & PETER, J. B. (1974) Stereological analysis of mammalian skeletal muscle I. Soleus muscle of the adult guinea pig.J. Cell Biol. 60, 732–54.

    Google Scholar 

  • FISCHER, C. & BOND, C. P. (1972). The quantimet 720D for densitometry in the life sciences.Microscope. 20, 203–16.

    Google Scholar 

  • GOLDSTEIN, D. J. (1981) Errors in microdensitometry.Histochem. J. 13, 251–67.

    Google Scholar 

  • GREEN, H. J., REICHMANN, H., & PETTE, D. (1984). Inter-and intraspecies comparisons of fibre type distribution and from succinate dehydrogenase activity in type I, IIA, and IIB fibres of mammalian diaphragms.Histochemistry 81, 67–8.

    Google Scholar 

  • KUGLER, P. (1982) Quantitative dehydrogenase histochemistry with exogenous electron carriers (PMS, MPMS, MB).Histochemistry 75, 99–112.

    Google Scholar 

  • LEHNINGER, A. L. (1975)Biochemistry. 2nd ed. New York: Worth.

    Google Scholar 

  • MARTIN, T. P., VAILAS, A. C., DURIVAGE, J. B., EDGERTON, V. R. & CASTLEMAN, K. R. (1985) Quantitative histochemical determination of muscle enzymes: biochemical verification.J. Histochem. Cytochem. 33, 1053–9.

    Google Scholar 

  • NAKAE, Y. & SHONO, M. (1984) Kinetic behavior of succinate dehydrogenase of three fibre types in skeletal muscle. I. Effects of temperature and a competitive inhibitor.Histochem. J. 16, 1207–17.

    Google Scholar 

  • NOLTE, J. & PETTE, D. (1972) Microphotometric determination of enzyme activity in single cells in cryostat sections. I. Application of the gel film technique to microphotometry and studies on the intralobular distribution of succinate dehydrogenase and lactate dehydrogenase activities in rat liver.J. Histochem. Cytochem. 20, 567–76.

    Google Scholar 

  • PEARSE, A. G. E. (1968)Histochemistry: Theoretical and Applied. 3rd ed. pp. 880–920. London: Churchill.

    Google Scholar 

  • PETTE, D. (1981) Microphotometric measurement of initial reaction rates in quantitative enzyme histochemistryin situ.Histochem. J. 13, 319–27.

    Google Scholar 

  • PETTE, D. & WIMMER, M. (1979) Kinetic microphotometric activity determination in enzyme containing gels and model film studies with tissue section.Histochemistry 64, 11–22.

    Google Scholar 

  • PICTON, W. & CLARK, C. (1978) The measurement of histochemically-stained NADP-dependent isocitrate dehydrogenase in the subcutaneous glands of hairless hamsters.Histochem. J. 10, 191–9.

    Google Scholar 

  • POOL, C. W., DIEGENBACH, P. C. & SCHOLTEN, G. (1979) Quantitative succinate dehydrogenase histochemistry. I. Methodological study on mammalian and fish muscle.Histochemistry 64, 251–62.

    Google Scholar 

  • RIEDER, H., TEUTSCH, H. F. & SASSE, D. (1978) NADP-dependent dehydrogenases in rat liver parenchyma. I. Methodological studies on the qualitative histochemistry of G6PDH, 6GPDH, malic enzyme and ICDH.Histochemistry 56, 283–98.

    Google Scholar 

  • SIECK, G. C., SACKS, R. D., BLANCO, C. E. & EDGERTON, V. R. (1986) Succinate dehydrogenase (SDH) activity and cross-sectional area of muscle fibres in the cat diaphragm.J. Appl. Physiol. 60, 1284–92.

    Google Scholar 

  • SIECK, G. C., SACKS, R. D. & BLANCO, C. E. (1987) Absence of regional differences in the size and oxidative capacity of diaphragm muscle fibres.J. Appl. Physiol. (in press).

  • STOWARD, P. J. (1980) Criteria for the validation of quantitative histochemical enzyme techniques. InTrends in Enzyme Histochemistry and Cytochemistry, (edited by EVERED, D. and O.'CONNOR, M.) pp. 11–31. Amsterdam: Excerpta Medica.

    Google Scholar 

  • SWATLAND, H. J. (1984) The radial distribution of succinate dehydrogenase activity in porcine muscle fibres.Histochem. J. 16, 321–9.

    Google Scholar 

  • VAN NOORDEN, C. J. F. (1984) Histochemistry and cytochemistry of glucose-6-phosphate dehydrogenase.Prog. Histochem. Cytochem. 15/4, 1–85.

    Google Scholar 

  • VAN NOORDEN, C. J. F. & BUTCHER, R. G. (1986) The out-of-range error in microdensitometry.Histochem. J. 18, 397–8.

    Google Scholar 

  • VAN NOORDEN, C. J. F. & TAS, J. (1981) Model film studies in enzyme histochemistry with special reference to glucose-6-phosphate dehydrogenase.Histochem. J. 13, 187–206.

    Google Scholar 

  • VAN NOORDEN, C. J. F. & TAS, J. (1982) The role of exogenous electron carriers in NAD(P)-dependent dehydrogenase cytochemistry studiedin vitro and with a model system of polyacrylamide films.J. Histochem. Cytochem. 30, 12–20.

    Google Scholar 

  • VAN NOORDEN, C. J. F., BHATTACHARYA, R. D. & VOGELS, I. M. C. (1983) Enzyme cytochemical staining of individual cells with the use of a polyacrylamide carrier. Studies on the synthesizing technique, the indogenic method, the post-azo-coupling technique, and the tetrazaolium salt technique.Acta Histochem. 73, 71–8.

    Google Scholar 

  • VAN NOORDEN, C. J. F., KOOIJ, A., VOGELS, I. M. C. & FREDERIKS, W. M. (1985) On the nature of the ‘nothing dehydrogenase’ reaction.Histochem. J. 17, 1111–8.

    Google Scholar 

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Blanco, C.E., Sieck, G.C. & Edgerton, V.R. Quantitative histochemical determination of succinic dehydrogenase activity in skeletal muscle fibres. Histochem J 20, 230–243 (1988). https://doi.org/10.1007/BF01747468

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