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Protozoal viruses and the interaction of protozoa with mammalian viruses

Published online by Cambridge University Press:  19 September 2011

J. H. Teras
Affiliation:
Protozoology Department of the Experimental Biology Institute of the Estonian Academy of Sciences, Tallinn, U.S.S.R.
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Extract

Four groups of scientists were invited to participate in this Symposium, including those who have systematically studied or are still studying the relatively new problems of protozoal viruses of protozoa as inactivators of viruses and on protozoa as potential reservoirs of mammalian viruses would have presented itself.

Unfortunately, not all of the invited scientists could come to Nairobi. The most recent results of the Spanish group on protozoa as inactivators of viruses were not discussed (but see Programme and Abstracts of the Congress).

Type
Research Article
Copyright
Copyright © ICIPE 1986

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References

REFERENCES

Bauer, L. (1961) Ein Beitrag zur Klärung der Beziehungen zwischen Amöben und Virus im Wasser. Arch. Hyg. Bakt. 145, 1, 1220.Google Scholar
Blawat, B. and Kowalska, Z. (1963) Investigations in vitro on the influence of some amoebae on survival of poliomyelitis virus. Bull. Inst. Marine Med., Gdansk 14, 12, 15–24.Google Scholar
Brug, S. L. (1942) Eigentümliche Einschlüssen in Lamblia muris. Zentbl. Bakt. I. Abt. 166168.Google Scholar
Chýle, M., Chýle, P., Štepán, J. and Patěcka, T. (1971) Some enzymes and izoenzymes of Trichomonas vaginalis and changes in their activities after inoculation with a live mammalian virus. Časopis Čekau Česnkych. 110, 234236.Google Scholar
Diamond, L. S. (1968) Techniques of axenic cultivation of Entamoeba histolytica Schaudinn, 1903 and E. histolytica- like amoebae. J. Parasit. 54, 10471056.CrossRefGoogle Scholar
Diamond, L. S. and Mattern, C. F. T. (1976) Protozoal viruses. In Advances in Virus Researchs Vol. 20, pp. 87112. Academic Press, New York.Google Scholar
Diamond, L. S., Mattern, C. F. T. and Bartgis, I. L. (1972) Viruses of Entamoeba histolytica. I. Identification of transmissible virus like agents. J. Virol. 9, 326341.CrossRefGoogle ScholarPubMed
Diamond, L. S., Mattern, C. F. T., Bartgis, I. L., Daniel, W. A. and Keister, D. B. (1976) Viruses of Entamoeba histolytica. VI. A study of host range. In Amebiasis, pp. 334345. Mexico City, Instituto Mexicano del Seguro Social, Mexico.Google Scholar
Dunnebacke, T. H. and Schuster, F. L. (1971) Infectious agent from a free-living soil amoeba Naegleria gruberi. Science 174, 516518.CrossRefGoogle ScholarPubMed
Dunnebacke, T. H. and Schuster, F. L. (1972) Infectious material from the small free-living soil amoebae. J. Cell Biol. 55, 62A.Google Scholar
Dunnebacke, T. H. and Schuster, F. L. (1974) An infectious agent associated with amebas of the genus Naegleria. J. Protozool. 21, 327329.CrossRefGoogle ScholarPubMed
Dunnebacke, T. H. and Schuster, F. L. (1977a) The nature of a cytopathogenic material present in amebae of the genus Naegleria. Am. J. trop. Med. Hyg. 26, 412421.CrossRefGoogle ScholarPubMed
Dunnebacke, T. H. and Schuster, F. L. (1977b) Cytopathogenic material from amoebae of the genus Naegleria. In Microbiology, 583–585. American Society of Microbiology, Washington.Google Scholar
Fraenkel-Conrat, H. (1974) Descriptive catalogue of viruses. In Comprehensive virology, Vol. 1, p. 191. Plenum Press, New York.Google Scholar
Groupe, V. and Pugh, L. (1952) Inactivation of influenza virus and of viral hemagglutinin by the ciliate Tetrahymena geleii. Science 115, 307308.CrossRefGoogle ScholarPubMed
Jareno, M. A., Perez, S. I. and Gancedo, A. (1985) The ciliates as useful tools in cytological studies of cell-virus interactions. In Abstracts of the VII International Congress on Protozoology, Nairobi, 60.Google Scholar
Kesa, L. J. and Teras, J. H. (1981a) Protozoal viruses, in The Interaction Between Protozoa and Viruses. Series ‘Protozoology’, Vol. 6, pp. 5672. Academy of Sciences of the U.S.S.R., Leningrad.Google Scholar
Kesa, L. J. and Teras, J. H. (1981b) The experimental study on the relationships between Tetrahymena pyriformis and RNA- and DNA-viruses. II. On the acquisition of pathogenicity by T. pyriformis after the interaction with Coxsackie B-5 virus. In The Interaction Between Protozoa and Viruses. Series ‘Protozoology’, Vol. 6, pp. 96111. Academy of Sciences of the U.S.S.R., Leningrad.Google Scholar
Kling, C., Olin, G., Fahraeus, J. and Norlin, G. (1942a) Sewage as a carrier and disseminator of poliomyelitis virus. I. Searching for poliomyelitis virus in Stockholm sewage. Acta med. scand. 122, 217249.CrossRefGoogle Scholar
Kling, C., Olin, G., Fahraeus, J. and Norlin, G. (1942b) Sewage as a carrier and disseminator of poliomyelitis virus. II. Studies on the conditions of life of poliomyelitis virus outside the human organism. Acta med. scand. 112, 250263.CrossRefGoogle Scholar
Kovács, E. (1966) Visualization and propagation of mammalian viruses on their nucleic acids in protista. J. Cell Biol. 31, 62A–123.Google Scholar
Kovács, E. (1967) Change in population densities, viability or multiplication of yeasts and Tetrahymena, infected experimentally with encephalomyocarditis virus. J. Cell Biol. 35, 73A–74A.Google Scholar
Kovács, E. (19671968) Propagation of mammalian, especially tumour viruses in protista and mycoplasma. In Annual Report National Cancer Institute of Canada, p. 115. National Cancer Institute of Canada, Toronto.Google Scholar
Kovács, E. (1969) Enhancing effect of dimethyl sulfoxide on the transfer of polyoma virus to protista with isolated viral genome. J. Cell Biol. 43, 73.Google Scholar
Kovács, E. (1970) Activation of virus production by DMSO in C. albicans experimentally infected with polyoma-DNA. Experientia 26, 13961397.CrossRefGoogle Scholar
Kovács, E. and Bucz, B. (1967) Propagation of mammalian viruses in protista. II. Isolation of complete virus from yeast and Tetrahymena experimentally infected withpicorna viral particles or their infectious RNA. Life Sci. 6, 347358.CrossRefGoogle ScholarPubMed
Kovács, E. and Kolompár, G. (1969) Hemadsorption reaction in Tetrahymena pyriformis incubated with measles virus. Life Sci. 8, 10891097.CrossRefGoogle ScholarPubMed
Kovács, E. and Kolompár, G. (1970) Enhancement of hemagglutinin production in polyoma virus infected Candida by a defined medium and urethan. Experientia 26, 301303.CrossRefGoogle ScholarPubMed
Kovács, E., Bucz, B. and Kolompár, G. (1966) Propagation of mammalian viruses in protista. I. Visualization of fluorochrome labelled EMC virus in yeast and Tetrahymena. Life Sci. 5, 21172176.CrossRefGoogle Scholar
Kovács, E., Kolompár, G. and Bucz, B. (1967) Propagation of mammalian viruses in protista. III. Change in population densities, viability and multiplication of yeast and Tetrahymena experimentally infected with encephalomyo-carditis virus. Life Sci. 6, 23592371.CrossRefGoogle Scholar
Knorr, M., Klöhr, K. and Kracher, H. (1956) Das Schicksal des Virus im Flusswasser und im Boden. II. Mitteilung: Virus und Amöben. Arch. Hyg. 140, 181207.Google Scholar
Mattern, C. F. T. and Keister, D. B. (1977a) Experimental amebiasis, I. Pathogenicity of axenically cultured Entamoeba histolytica in the brain of the newborn mouse. Am. J. trop. Med. Hyg. 26, 393401.CrossRefGoogle ScholarPubMed
Mattern, C. F. T. and Keister, D. B. (1977b) Experimental amebiasis. II. Hepatic amebiasis in the newborn hamster. Am. J. trop. Med. Hyg. 26, 402411.CrossRefGoogle ScholarPubMed
Mattern, C. F. T., Diamond, L. S. and Daniel, W. A. (1972) Viruses of Entamoeba histolytica II. Morphogenesis of the polyhedral particle (ABRM)2→HK-9→HB-301 and the filamentous agent (ABRM)2č1HK-9. J. Virol. 9, 342361.CrossRefGoogle Scholar
Mattern, C. F. T., Keister, D. B., Daniel, W. A., Diamond, L. S. and Leva Kontonis, A. de (1977) Viruses of Entamoeba histolytica. VII. Novel beaded virus. J. Virol. 23, 685691.CrossRefGoogle ScholarPubMed
Mattern, C. F. T., Hruska, J. F. and Diamond, L. S. (1974) Viruses of Entamoeba histolytica. V. Ultrastructure of the polyhedral virus V301. J. Virol. 13, 247249.CrossRefGoogle ScholarPubMed
Möse, J. R., Dostal, V. and Wege, H. (1970) Inaktivierung von Viren durch Abwasserprotozoen. Arch. Hyg. Bakt. 154, 4, 319330.Google Scholar
Perez-Prieto, S. and Garcia-Gancedo, A. (1975) Interaction of Tetrahymena pyriformis and mammalian viruses. In Abstracts of the III International Congress on Virology, Madrid, p. 249. Behring Institute, Frankfurt am Main, F.R.G.Google Scholar
Perez-Prieto, S. and Garcia-Gancedo, A. (1979) La infeccion virica de protozoos y las posibles impliciones ecológicas y epidemiologicas. Estada act. probl. Revta sanidad hig. publ. 53, 15171637.Google Scholar
Perez-Prieto, S. and Garcia-Gancedo, A. (1981) Uptake of vaccinia virus by Tetrahymena pyriformis. Microbiol. exp. 34, 29–13.Google ScholarPubMed
Perez, S., Garcia-Gancedo, A., Jareno, M. and Vilas, P. (1985) On the experimental cocultures of Tetrahymena pyri-formis with several RNA and DNA viruses. In Abstracts of the VII International Congress on Protozoology, Nairobi, p. 133.Google Scholar
Schuster, F. L. (1969) Intranuclear virus-like bodies in the amoeboflagellate Naegleria gruberi. J. Protozool. 16, 724727.CrossRefGoogle ScholarPubMed
Schuster, F. L. and Dunnebacke, T. H. (1971) Formation of bodies associated with virus-like particles in the amoebo-flagellate Naegleria gruberi. J. Ultrastruct. Res. 36, 659668.CrossRefGoogle Scholar
Schuster, F. L. and Dunnebacke, T. H. (1974a) Growth at 37°C of EGs strain of the amoebo-flagellate Naegleria gruberi containing virus-like particles. I. Nuclear changes. J. invertebr. Path. 23, 172181.CrossRefGoogle Scholar
Schuster, F. L. and Dunnebacke, T. H. (1974b) growth at 37°C of EGs strain of the amoebo-flagellate Naegleria gruberi containing virus-like particles. I. Nuclear changes. J. invertebr. Path. 23, 172181.CrossRefGoogle Scholar
Schuster, F. L. and Dunnebacke, T. H. (1976) Development and release of virus-like particles in Naegleria gruberi EGs. Cytobiologia 14, 131146.Google ScholarPubMed
Schuster, F. L. and Dunnebacke, T. H. (1977) Ultrastructural observations of experimental Naegleria meningoencephalitis in mice: intranuclear inclusions in amebae and host cells. J. Protozool. 24, 489497.CrossRefGoogle ScholarPubMed
Teras, J. (1981) Forms of interaction betweeen protozoa and viruses In The Interaction Between Protozoa and Viruses. Series ‘Protozoology’, Vol. 6, pp. 3155. Academy of Sciences of the U.S.S.R., Leningrad.Google Scholar
Teras, J. H. and Kesa, L. J. (1981) The experimental study on the relationships between Tetrahymena pyriformis and RNA- and DNA-viruses. I. Persistence and replication of picorna and adeno viruses in T. pyriformis. In The Interaction Between Protozoa and Viruses. Series ‘Protozoology’, Vol. 6, pp. 7375. Academy of Sciences of the U.S.S.R., Leningrad.Google Scholar
Teras, J., Jogiste, A. and Kallas, E. (1974) Theoretical aspects of the pathogenicity mechanisms of free-living protozoa. In Abstracts of the III International Congress on Parasitology, Munich, Vol. 1, p. 185.Google Scholar
Teras, J. H., Jogiste, A. K. and Kesa, L. J. (1976) On the multiplication of viruses in free-living protozoa. In Proceedings of the Second All-Union Congress on Protozoology, Kiev, Vol. 1, 136.Google Scholar
Teras, J., Kesa, L., Kallas, E. and Jogiste, A. (1977) On the relationship between some free-living and parasitic protozoa and RNA- and DNA-viruses. In Abstracts of the V International Congress on Protozoology New York, p. 446.Google Scholar
Teras, J., Kesa, L. and Kallas, E. (1981) The experimental study on the relationships between Terahymena pyriformis and RNA- and DNA-viruses. IV. On the interaction of T. pyriformis with Coxsackie B-5 virus after the exposure to Myxovirus influenzae of type A2. In The Interaction Between Protozoa and Viruses. Series ‘Protozoology’, Vol. 6, pp. 126136. Academy of Sciences of the U.S.S.R., Leningrad.Google Scholar