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Cultivation of infective forms of Trypanosoma congolense from trypanosomes in the proboscis of Glossina morsitans

Published online by Cambridge University Press:  06 April 2009

M. A. Gray
Affiliation:
Centre for Tropical Veterinary Medicine, University of Edinburgh, Easter Bush, Roslin, Midlothian EH25 9RG
I. Cunningham
Affiliation:
Centre for Tropical Veterinary Medicine, University of Edinburgh, Easter Bush, Roslin, Midlothian EH25 9RG
P. R. Gardiner
Affiliation:
Centre for Tropical Veterinary Medicine, University of Edinburgh, Easter Bush, Roslin, Midlothian EH25 9RG
A. M. Taylor
Affiliation:
Centre for Tropical Veterinary Medicine, University of Edinburgh, Easter Bush, Roslin, Midlothian EH25 9RG
A. G. Luckins
Affiliation:
Centre for Tropical Veterinary Medicine, University of Edinburgh, Easter Bush, Roslin, Midlothian EH25 9RG

Summary

Two stocks of Trypanosoma congolense were established in culture at 28 °C using trypanosomes from the proboscides of infective Glossina morsitans. Successful primary cultures were initiated by placing an infected tsetse proboscis beside a bovine dermal collagen explant in Eagle's minimum essential medium supplemented with foetal calf serum. The trypanosomes multiplied rapidly in the medium and also gradually formed an adherent layer on the plastic surface of the culture vessel. Three primary cultures produced organisms infective for mice from 14, 20 and 35 days after initiation and thereafter continuously until days 76, 76 and 52 when they were discarded. Four attempts to initiate infective cultures using infected tsetse proboscides in medium without dermal explants were unsuccessful. When trypanosomes from primary cultures were placed in culture medium with proboscides from uninfected tsetse flies, the parasites multiplied, formed an adherent layer in the culture flasks and were seen in the proboscides within 24 h. A line of 1 stock was serially sub-passaged in this way 4 times during a period of 215 days. Infectivity titrations in mice indicated that primary and sub-passaged cultures each contained similar numbers of infective organisms. Another line of the same stock was also sub-passaged 4 times in medium alone over a period of 186 days. These sub-cultures again retained infectivity for mice, but titrations showed a decrease in infective organism production in the 4th sub-culture. Primary and sub-passaged cultures all included a variety of morphologically different developmental forms of T. congolense, closely resembling those described in the labrum and hypopharynx of Glossina by previous workers. Short metacyclic-like trypanosomes and organisms with proteinaceous surface coats were present in infective cultures. Cultures were successfully re-established after cryopreservation at −196 °C and retained the ability to produce infective organisms.

Type
Research Article
Copyright
Copyright © Cambridge University Press 1981

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References

REFERENCES

Bishop, A. (1967) Problems in the cultivation of some parasitic protozoa. In Advances in Parasitology, vol. 5 (ed. Dawes, B.), pp. 93138. London and New York: Academic Press.Google Scholar
Brun, R., Jenni, L., Tanner, M., Schonenberger, M. & Schell, K. F. (1979) Cultivation of vertebrate infective forms derived from metacyclic forms of pleomorphic Trypanosoma brucei stocks. Acta tropica 36, 387–90.Google ScholarPubMed
Cunningham, I. (1973) Quantitative studies on trypanosomes in tsetse tissue culture. Experimental Parasitology 33, 3445.CrossRefGoogle ScholarPubMed
Cunningham, I. (1977) New culture medium for maintenance of tsetse tissues and growth of trypanosomatids. Journal of Protozoology 24, 325–9.CrossRefGoogle ScholarPubMed
Cunningham, I. & Honigberg, B. M. (1977) Infectivity reacquisition by Trypanosoma brucei brucei cultivated with tsetse salivary glands. Science 197, 1279–82.CrossRefGoogle ScholarPubMed
Cunningham, I. & Taylor, A. M. (1979) Infectivity of Trypanosoma brucei cultivated at 28 °C with tsetse fly salivary glands. Journal of Protozoology 26, 428–32.CrossRefGoogle Scholar
El-on, J., Rosen, N. L. & Patton, C. L. (1977) In vitro growth of Trypanosoma congolense in the presence of mammalian tissue at 37 °C. 5th International Conference of Protozoology,New York. Abstract 124.Google Scholar
Evans, D. A. (1978) Kinetoplastida. In Methods of Cultivating Parasites in Vitro (ed. Taylor, A. E. R. and Baker, J. R.), pp. 5588. London, New York and San Francisco: Academic Press.Google Scholar
Gray, A. R. & Luckins, A. G. (1980) The initial stage of infection with cyclically transmitted Trypanosoma congolense in rabbits, calves and sheep. Journal of Comparative Pathology (in the Press).CrossRefGoogle ScholarPubMed
Gray, M. A., Brown, C. G. D., Luckins, A. G. & Gray, A. R. (1979) Maintenance of infectivity of Trypanosoma congolense in vitro with explants of infected skin at 37 °C. Transactions of the Royal Society of Tropical Medicine and Hygiene 73, 406–8.CrossRefGoogle Scholar
Harley, J. M. B. & Wilson, A. J. (1968) Comparison between Glossina morsitans G. pallidipes and G. fuscipes as vectors of the Trypanosoma congolense group: the proportions infected experimentally and the numbers of infective organisms extruded during feeding. Annals of Tropical Medicine and Parasitology 62, 178–87.CrossRefGoogle Scholar
Hill, G. C., Shimer, S., Caughey, B. & Sauer, S. (1978) Growth of infective forms of Trypanosoma (T) brucei on buffalo lung and Chinese hamster lung tissue culture cells. Acta tropica 35, 201–7.Google ScholarPubMed
Hirumi, H., Doyle, J. J. & Hirumi, K. (1977) African trypanosomes: cultivation of animal infective Trypanosoma brucei in vitro. Science 196, 992–4.CrossRefGoogle ScholarPubMed
Lloyd, Ll. & Johnson, W. B. (1924) The trypanosome infections of tsetse-flies in Northern Nigeria and a new method of estimation. Bulletin of Entomological Research 14, 265–88.CrossRefGoogle Scholar
Luckins, A. G. & Gray, A. R. (1978) An extravascular site of development of Trypanosoma congolense. Nature, London 272, 613–14.CrossRefGoogle ScholarPubMed
Lumsden, W. H. R., Cunningham, M. P., Webber, W. A. F., Van Hoeve, K. & Walker, P. J. (1963) A method for the measurement of the infectivity of trypanosome suspensions. Experimental Parasitology 14, 269–79.CrossRefGoogle ScholarPubMed
Newton, B. A., Cross, G. A. M. & Baker, J. R. (1973) Differentiation in Trypanosomatidae. In Microbial Differentiation. 23rd Symposium of the Society for General Microbiology, London, pp. 339–73. Cambridge: Cambridge University Press.Google Scholar
Nyindo, M., Patel, N., Darji, N. & Golder, T. K. (1979) Trypanosoma brucei: in vitro propagation of metacyclic forms derived from the salivary glands of Glossina morsitans. Journal of Parasitology 65, 751–5.CrossRefGoogle ScholarPubMed
Steiger, R. F., Steiger, E., Trager, W. & Schneider, I. (1977) Trypanosoma congolense: partial cyclic development in a Glossina cell system and oxygen consumption. Journal of Parasitology 63, 861–7.CrossRefGoogle Scholar
Trager, W. (1959) Tsetse fly tissue culture and the development of trypanosomes to the infective stage. Annals of Tropical Medicine and Parasitology 53, 473–91.CrossRefGoogle Scholar
Vickerman, K. (1973) The mode of attachment of Trypanosoma vivax in the proboscis of the tsetse fly Glossina fuscipes: an ultrastructural study of the epimastigote stage of the trypanosome. Journal of Protozoology 20, 394404.CrossRefGoogle ScholarPubMed
Vickerman, K. & Preston, T. M. (1976) Comparative cell biology of the kinetoplastid flagellates. In Biology of the Kinetoplastida, vol. 1 (ed. Lumsden, W. H. R. and Evans, D. A.), pp. 35130. London, New York and San Francisco: Academic Press.Google Scholar
Wright, K. A., Lumsden, W. H. R. & Hales, H. (1970) The formation of filopodium-like processes by Trypanosoma (Trypanozoon) brucei. Journal of Cell Science 6, 285–97.CrossRefGoogle ScholarPubMed