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Pneumococcal pulmonary infection, septicaemia and survival in young zinc–depleted mice*

Published online by Cambridge University Press:  09 March 2007

Tor A. Strand*
Affiliation:
Centre for International Health and Department of Microbiology and Immunology, The Gade Institute, University of Bergen, NorwayN-5021
David E. Briles
Affiliation:
Department of Microbiology, University of Alabama, Birmingham, AL 35294, USA
Håkon K. Gjessing
Affiliation:
Centre for International Health and Department of Microbiology and Immunology, The Gade Institute, University of Bergen, NorwayN-5021
Amund Maage
Affiliation:
Institute of Nutrition, Directorate of Fisheries, Bergen, NorwayN-5024
Maharaj K. Bhan
Affiliation:
Department of Paediatrics, All India Institute of Medical Sciences, 110029 New Delhi, India
Halvor Sommerfelt
Affiliation:
Centre for International Health and Department of Microbiology and Immunology, The Gade Institute, University of Bergen, NorwayN-5021
*
Corresponding author: Dr Tor A. Strand, fax +47 55 974979, email [email protected]
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Abstract

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The aim of the present study was to explore whether mice fed a diet low in Zn (2·0 mg Zn/kg diet) for a relatively short period of time were more prone to severe Streptococcus pneumoniae infection than mice fed a normal diet (25 mg elemental Zn/kg). The Zn-deficient mice were compared with mice in two Zn-adequate control groups; one pair-fed and another with free access to the diet. After 2 weeks feeding, the mice were infected intranasally under anaesthesia with a suspension containing about 107 pneumococci. Clinical status was observed every day and blood samples were examined for S. pneumoniae every second day for a week. All infected mice examined carried the infecting strain intranasally. The survival time and time before positive blood culture were significantly shorter in the Zn-depleted group than in the pair-fed Zn-adequate group (hazard ratios 15·6 and 3·2, P<0·0001 and P=0·045 respectively). At the end of the observation period, ten of the twelve mice in the Zn-deficient group were dead while one of twelve and two of twelve were dead in the two Zn-adequate control groups. This study shows that even acutely-induced Zn deficiency dramatically increases the risk of serious pneumococcal infection in mice.

Type
Research Article
Copyright
Copyright © The Nutrition Society 2001

Footnotes

*

This study has been presented in part: Strand TA, Briles DE, Maage A, Gjessing H, Blomberg B, Bhan Mk & Sommerfelt H (1998) Pneumococcal pulmonary infection and septicemia in zinc deficient mice. Proceedings of the 8th International Congress of Infectious Diseases, Boston, pp. 317, Abstr. 94.019.

References

Aaberge, IS, Michaelsen, TE, Rolstad, AK, Groeng, EC, Solberg, P & Lovik, M (1992) SCID-Hu mice immunized with a pneumococcal vaccine produce specific human antibodies and show increased resistance to infection. Infection and Immunity 60, 41464153.Google Scholar
Brown, KH, Peerson, JM & Allen, LH (1998) Effect of zinc supplementation on children's growth: a meta-analysis of intervention trials. Bibliotheca Nutritio et Dieta 54, 7683.Google Scholar
Cunningham, Rundles, S (1982) Effects of nutritional status on immunological function. American Journal of Clinical Nutrition 35, 12021210.CrossRefGoogle Scholar
Cunningham, Rundles, S (1996) Zinc modulation of immune function: specificity and mechanism of interaction. Journal of Laboratory and Clinical Medicine 128, 911.CrossRefGoogle Scholar
Fraker, PJ, Jardieu, P & Cook, J (1987) Zinc deficiency and immune function. Archives of Dermatology 123, 16991701.Google Scholar
Garenne, M, Ronsmans, C & Campbell, H (1992) The magnitude of mortality from acute respiratory infections in children under 5 years in developing countries. World Health Statistics Quarterly 45, 180191.Google Scholar
International Conference on Acute Respiratory Infections (1998) Acute respiratory infections: the forgotten pandemic. International Journal of Tuberculosis and Lung Disease 2, 24.Google Scholar
Keen, CL & Gershwin, ME (1990) Zinc deficiency and immune function. Annual Review of Nutrition 10, 415431.CrossRefGoogle ScholarPubMed
King, LE & Fraker, PJ (1991) Flow cytometric analysis of the phenotypic distribution of splenic lymphocytes in zinc-deficient adult mice. Journal of Nutrition 121, 14331438.CrossRefGoogle ScholarPubMed
King, LE, Osati Ashtiani, F & Fraker, PJ (1995) Depletion of cells of the B lineage in the bone marrow of zinc-deficient mice. Immunology 85, 6973.Google Scholar
Leowski, J (1986) Mortality from acute respiratory infections in children under 5 years of age: global estimates. World Health Statistics Quarterly 39, 138144.Google ScholarPubMed
Prasad, AS (1985) Clinical and biochemical manifestations of zinc deficiency in human subjects. Journal of the American College of Nutrition 4, 6572.CrossRefGoogle ScholarPubMed
Prasad, AS (1988) Zinc in growth and development and spectrum of human zinc deficiency. Journal of the American College of Nutrition 7, 377384.Google Scholar
Rosner, B (1989) Fundamentals of Biostatistics, 3rd ed., Boston, MA: PWS-KENT Publishing Company.Google Scholar
Sazawal, S, Black, RE, Bhan, MK, Jalla, S, Bhandari, N, Sinha, A & Majumdar, S (1996) Zinc supplementation reduces the incidence of persistent diarrhea and dysentery among low socioeconomic children in India. Journal of Nutrition 126, 443450.CrossRefGoogle ScholarPubMed
Sazawal, S, Black, RE, Jalla, S, Mazumdar, S, Sinha, A & Bhan, MK (1998) Zinc supplementation reduces the incidence of acute lower respiratory infections in infants and preschool children: a double-blind, controlled trial. Pediatrics 102, 15.CrossRefGoogle ScholarPubMed
Sugarman, B (1983) Zinc and infection. Review of Infectious Diseases 5, 137147.CrossRefGoogle ScholarPubMed
UNICEF, United Nations Children's Emergency Fund (1998) The State of the World's Children, New York, NY: Oxford University Press.Google Scholar
Walsh, CT, Sandstead, HH, Prasad, AS, Newberne, PM & Fraker, PJ (1994) Zinc: health effects and research priorities for the 1990s. Environmental Health Perspectives 2, 546.Google Scholar
Wellinghausen, N, Kirchner, H & Rink, L (1997) The immunobiology of zinc. Immunology Today 18, 519521.CrossRefGoogle ScholarPubMed
Wirth, JJ, Fraker, PJ & Kierszenbaum, F (1989) Zinc requirement for macrophage function: effect of zinc deficiency on uptake and killing of a protozoan parasite. Immunology 68, 114119.Google ScholarPubMed