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Histochemical localization of glycolytic enzymes, alcohol and secondary-alcohol dehydrogenases in the testes of buffaloes, goats and rams

Published online by Cambridge University Press:  27 March 2009

G. S. Bilaspuri
Affiliation:
Department of Zoology, College of Basic Sciences and Humanities, Punjab Agricultural University, Ludhiana-141004:, Punjab, India
S. S. Guraya
Affiliation:
Department of Zoology, College of Basic Sciences and Humanities, Punjab Agricultural University, Ludhiana-141004:, Punjab, India

Summary

Glyceraldehyde-3-phosphate dehydrogenase (G-3-PDH), αglycerophosphate dehydrogenase (αGPDH), lactate dehydrogenase (LDH), alcohol dehydrogenase (ADH) and secondary-alcohol dehydrogenase (SADH) were histochemically located in the testes of buffaloes, goats and rams. Two forms of αGPDH were observed: (i) NAD-dependent or cytoplasmic αglycero-phosphate dehydrogenase (αGPDHC) and (ii) NAD-independent or mitochondrial αglycerophosphate dehydrogenase (α GPDHM). The basic pattern of distribution of the various enzymes was similar in the three species; species-specific variations were observed but cell-specific variations were more pronounced. The main activities of G-3-PDH and αGPDHM were observed in the seminiferous tubules; interstitial tissue showed moderate (G-3-PDH) and trace to weak (αGPDHM) activity. In contrast, αGPDHC activity was more marked in the interstitial tissue and less in the seminiferous tubules, especially in the mature germinal elements. LDH and ADH respectively showed strong and moderate activities in the interstitial tissue and seminiferous tubules. SADH was noticeable only in the interstitial tissue of buffalo. The activities of all enzymes other than αGPDHC increased during spermiogenesis. The physiological significance of the results is discussed in relation to the carbohydrate metabolism of the testis.

Type
Research Article
Copyright
Copyright © Cambridge University Press 1983

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References

Ambadkar, P. M. & George, J. C. (1964). Histochemical localization of certain oxidative enzymes in rat testis. Journal of Histochemistry and Cytochemistry 12, 587592.CrossRefGoogle ScholarPubMed
Bilaspuri, G. S. (1978). Morphological, histochemical and biochemical studies on the testes of some farm animals. Ph.D. thesis, Punjab Agricultural University, Ludhiana, India.Google Scholar
Bilaspuri, G. S. & Gubaya, S. S. (1980). Quantitative studies on spermatogenesis in buffalo (Bubalus bubalis). Reproduction, Nutrition, Développement 20, 975982.CrossRefGoogle ScholarPubMed
Bilaspubi, G. S. & Guraya, S. S. (1982). Distribution of oxidases in the testes of buffalo, goat and ram: an histochemical study. Reproduction, Nutrition, Développement 22, 505510.CrossRefGoogle Scholar
Blackshaw, A. W. (1970). Histochemical localization of testicular enzymes. In The Testis, vol. II (ed. Johnson, A. D., Gomes, W. R. and Demark, N. L. Van), pp. 73123. New York: Academic Press.CrossRefGoogle Scholar
Blackshaw, A. W. (1973). Testicular enzymes and spermatogenesis. Journal of Reproduction and Fertility, Supplement 18, 5564.Google ScholarPubMed
Blackshaw, A. W. & Samisoni, J. I. (1967). Histochemical localization of some dehydrogenase enzymes in the bull testis and epididymis. Journal of Dairy Science 50, 747752.CrossRefGoogle ScholarPubMed
Chayen, J., Bitensky, L. & Butcher, R. G. (1973). Practical Histochemistry. New York: John Wiley &Sons.Google Scholar
Engel, W., Frowein, J., Krone, W. & Wolfe, U. (1972). Induction of testis alcohol dehydrogenase in prepubertal rats. 1. The effects of human chorion gonadotropine (HCG), theophylline and dibutyryl cyclic AMP. Clinical Genetics 3, 3442.CrossRefGoogle ScholarPubMed
Free, M. J. (1970). Carbohydrate metabolism in the testis. In The Testis, vol. II, (ed. Johnson, A. D., Gomes, W. R. and Demark, N. L. Van), pp. 125192. New York: Academic Press.CrossRefGoogle Scholar
Guraya, S. S. & Bilaspuri, G. S. (1976). Stages of seminiferous epithelial cycle and relative duration of spermatogenic processes in buffalo. Gegenbaurs Morphologisches Jahrbuch Leipzig 122, 147161.Google ScholarPubMed
Himmelhoch, S. R. & Karnovsky, M. J. (1961). The histochemical demonstration of glyceraldehyde-3- phosphate dehydrogenase activity. Journal of Biophysical and Biochemical Cytology 9, 573581.CrossRefGoogle ScholarPubMed
Jutte, N. H. P. M., Koolen, L. M., Jansen, R., Grootegoed, J. A., Rommerts, F. F. G. & Van Der Molen, H. J. (1980). Lactate essential for biochemical activities in isolated germinal cells. First European Workshop on the Molecular and Cellular Endocrinology of the testis. Geilo, Norway, 04 811. Abstract.Google Scholar
Koudstaal, J., Frensdorf, E. L., Kremer, J., Muddle, J. E. & Hardonk, M. J. (1967). The histochemical pattern of human adult testis. Acta Endocrinologica 55, 415426.Google Scholar
Lee, I. P. & Shen, R. S. (1975). Enzymes as biochemical markers for mouse spermatogenic cell differentiation. Federation Proceedings 34, 762.Google Scholar
Lehninger, A. L. (1975). Biochemistry. The Molecular Basis of Cell Structure and Function. New York: Worth Pub. Inc.Google Scholar
Livni, N. & Yaffe, H. (1974). Histochemistry of normal and ethionine treated rat testis. Histochemistry 40, 329341.CrossRefGoogle Scholar
Nakamura, M., Hino, A. & Kato, J. (1982). Regulation of protein synthesis in spermatids from rat testes. Role of adenosine triphosphate (ATP). American Journal of Physiology (In the Press).Google Scholar
Nicander, L. (1957). A histochemical study on glycogen in the testes of domestic and laboratory animals with special reference to variations during the spermatogenic cycle. Acta Morphologica Neerlando-Scandinavica 1, 233240.Google Scholar
Pearse, A. G. E. (1960). Histochemistry; Theoretical and Applied. 2nd edn.London: J. A. Churchill.Google Scholar
Posalaky, Z. (1965). Activity of different dehydrogenases and diaphorases in the spermatogenesis of the rat and its relation to motility. Acta Histochemica 20, 8690.Google ScholarPubMed
Robinson, R. & Fritz, I. B. (1981). Metabolism of glucose by Sertoli cells in culture. Biology of Reproduction 24, 10321041.CrossRefGoogle ScholarPubMed
Russel, L. & Frank, B. (1978). Ultrastructural characterization of nuage in spermatocytes of the rat testis. Anatomical Record 190, 7998.CrossRefGoogle Scholar
Schenkman, J. B., Richest, D. A. & Westerfeld, W. W. (1965). α-glycerophosphate dehydrogenase activity in the rat spermatozoa. Endocrinology 76, 10551061.CrossRefGoogle ScholarPubMed