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Corynebacterium kutscheri and its alleged avirulent variant in mice

Published online by Cambridge University Press:  15 May 2009

R. G. Hirst
Affiliation:
Department of Pathology, University of Cambridge
R. J. Olds
Affiliation:
Department of Pathology, University of Cambridge
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Summary

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Corynebacterium kutscheri and its alleged avirulent variant were re-examined in C57Bl/6 and Swiss Lynch mice. It was confirmed that while C57B1/6 mice were resistant and Swiss Lynch susceptible to C. kutscheri, the alleged atypical variant was avirulent in both mouse strains. However, following inimunosuppression of C57B1/6 mice with hydrocortisone acetate, it was not possible to reactivate latent C. kutscheri or the alleged atypical variant; this was contrary to previous reports. Moreover, sequential hysterectomy derivation over four generations of C57B1/6 mice did not eliminate their resistance to C. kutscheri compared with conventionally born animals. Vaccination with live attenuated C. kutscheri protected susceptible mice against virulent challenge; vaccination with the alleged atypical variant afforded no such protection. The suggested role of the alleged avirulent variant in resistance to C. kutscheri is challenged and an alternative explanation of such resistance is proposed.

Type
Research Article
Copyright
Copyright © Cambridge University Press 1978

References

REFERENCES

Antopol, W. (1950). Anatomic changes in mice treated with excessive doses of cortisone (17648). Proceedings of the Society for Experimental Biology and Medicine 73, 262.CrossRefGoogle Scholar
Dubos, R. J. (1965 a). The evolution of microbial disease. In Bacterial and Mycotic Infections of Man (ed. Dubos, R. J. and Hirsch, J. G.). London: Pitman Medical Publishing Company Limited.CrossRefGoogle Scholar
Dubos, R. J. (1965 b). Man Adapting. New Haven, Connecticut: Yale University Press.Google Scholar
Fauve, R. M., Pierce-Chase, C. H. & Dubos, R. J. (1964). Corynebacterial pseudotuberculosis in mice. II Activation of natural and experimental latent infections. Journal of Experimental Medicine 120, 283.CrossRefGoogle ScholarPubMed
Fauve, R. M. & Pierce-Chase, C. H. (1967). Comparative effects of corticosteroids on host resistance to infection in relation to chemical structure. Journal of Experimental Medicine 125, 807.CrossRefGoogle ScholarPubMed
Hirst, R. G. & Camebell, Rosalie (1977). Mechanisms of resistance to Corynebacterium kutscheri in mice. Infection and Immunity 17, 319.CrossRefGoogle ScholarPubMed
Hirst, R. G. & Olds, R. J. (1978). Serological and biochemical relationships between the alleged avirulent variant of Corynebacterium kutscheri and streptococci of group N. Journal of Hygiene 80, 357.CrossRefGoogle ScholarPubMed
Hirst, R. G. & Wallace, M. E. (1975). Resistance to a natural bacterial pathogen. Mouse News Letter 53, 20.Google Scholar
Hirst, R. G. & Wallace, M. E. (1976). Inherited resistance to Corynebacterium kutscheri in mice. Infection and Immunity 14, 475.CrossRefGoogle ScholarPubMed
Lynch, C. J., Pierce-Chase, C. H. & Dubos, R. J. (1965). A genetic study of susceptibility to experimental tuberculosis in mice infected with mammalian tubercle bacilli. Journal of Experimental Medicine 121, 1051.CrossRefGoogle ScholarPubMed
LeMaistre, C. & Tomsett, R. (1952). The emergence of pseudotuberculosis in rats given cortisone. Jornal of Experimental Medicine 95, 393.CrossRefGoogle ScholarPubMed
Perkins, F. T., Darlow, H. M. & Short, D. J. (1967). Further experience with Tego as a disinfectant in the animal house. Journal of the Institute of Animal Technicians 18, 83.Google Scholar
Pierce-Chase, C. H., Fauve, R. M. & Dubos, R. J. (1964). Corynebacterial pseudotuberculosis in mice. I. Comparative susceptibility of mouse strains to experimental infection with Corynebacterium kutscheri. Journal of Experimental Medicine 120, 267.CrossRefGoogle ScholarPubMed
Reed, L. J. & Muench, H. (1938). A simple method for estimating fifty percent end points. American Journal of Hygiene 27, 493.Google Scholar
Schaedler, R. W., Dubos, R. & Costello, R. (1965). The development of the bacterial flora in the gastrointestinal tract of mice. Journal of Experimental Medicine 122, 59.CrossRefGoogle ScholarPubMed
Shechmeister, I. L. & Adler, F. L. (1953). Activation of pseudotuberculosis in mice exposed to sublethal total body irradiation. Journal of Infectious Diseases 92, 228.CrossRefGoogle Scholar
Topley, W. W. C. & Wilson, G. S. (1922). The spread of bacterial infection. The problem of herd immunity. Journal of Hygiene 21, 243.CrossRefGoogle Scholar