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Bacteriostasis of Escherichia coli by milk: II. Effect of bicarbonate and transferrin on the activity of infant feeds

Published online by Cambridge University Press:  15 May 2009

Jean M. Dolby
Affiliation:
The Clinical Research Centre, Harrow, Middlesex HA 1 3 UJ
Susan Stephens
Affiliation:
The Clinical Research Centre, Harrow, Middlesex HA 1 3 UJ
Pauline Honour
Affiliation:
The Clinical Research Centre, Harrow, Middlesex HA 1 3 UJ
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Fresh human and bovine milk are bacteriostatic in vitro for only some (milk-sensitive) strains of E. coli. The addition of bicarbonate to the test system potentiates the bacteriostasis so that otherwise milk-resistant strains are inhibited. By titration of the bicarbonate in the milk, it is possible to determine the minimum concentration that will activate milk against a milk-resistant strain but be ineffective in boiled milk, i.e. it potentiates a heat-labile system in milk and does not merely exert a direct toxic effect. This concentration is lower for human milk than for cows‘ milk and can be reduced even further by the addition of more iron-binding protein.

Lactoferrin and bicarbonate may be present in the gut of the newborn. In an attempt to imitate conditions in the infant gut, we therefore reinvestigated, in vitro and in the presence of added bicarbonate and transferrin, the bacteriostatic activity against E. coli of fresh breast-milk, commercial bottle-milk, and mixtures of these as fed to infants in this study. The results, and information about events in vivo deduced from the ratio of milk-sensitive to milk-resistant strains of E. coli isolated from babies‘ stools, suggest that neonatal intestinal secretions may contribute to the bacteriostatic activity of their feeds so that (1) in fully breastfed babies all strains of E. coli are inhibited to the same extent; there is no selection on the basis of milk sensitivity and equal numbers of strains resistant and sensitive to milk are found in the stools; (2) in fully bottle-fed babies E. coli is not inhibited since the milk is non-bacteriostatic and again there is no selection; (3) in babies fed at the breast but bottle-milk supplemented, only milk-sensitive strains are inhibited; milk-resistant strains are not, and preferentially colonize the large intestines.

Type
Research Article
Copyright
Copyright © Cambridge University Press 1977

References

REFERENCES

Aisen, P., Aasa, R., Malmström, B. G. & Vänngård, T. (1967). Bicarbonate and the binding of iron to transferrin. Journal of Biological Chemistry 242, 2484.CrossRefGoogle ScholarPubMed
Bullen, J. J., Rogers, H. J. & Leigh, L. (1972). Iron-binding proteins in milk and resistance to Escherichia coli infection in infants. British Medical Journal 1, 69.CrossRefGoogle ScholarPubMed
Delachaume-Salem, E. & Sarles, H. (1970). Fonction de l'âge de la sécrétion pancréatique. Biologie et Gastro-Enterologie 2, 135.Google Scholar
Dolby, J. M., Honour, P. & Valman, H. B. (1977). Bacteriostasis of Escherichia coli by milk. I. Colonization of breast-fed infants by milk-resistant organisms. Journal of Hygiene 78, 85.CrossRefGoogle Scholar
Department of Health (1974). Present-day Practice in Infant Feeding, p. 13. Report on Health and Social Subjects, no. 9. Her Majesty's Stationery Office.Google Scholar
Gibbs, G. E. (1950). Secretin tests with bilumen gastroduodenal drainage in infants and children. Pediatrics 5, 941.Google ScholarPubMed
Gitlin, D. & Biasucci, A. (1969). Development of γG, γA, γM, βIC/βIA, C′1 esterase inhibitor, ceruloplasmin, transferrin, hemopexin, haptoglobin, fibrinogen, plasminogen, and 1-antitrypsin, ovosomucoid, β-lipoprotein, α 2 macroglobulin and prealbumin in the human conceptus. Journal of Clinical Investigation 48, 1433.CrossRefGoogle Scholar
Gothefors, L., Carlsson, B., Ahlstedt, S., Hanson, L.Å. & Winberg, J. (1976). Influence of maternal gut flora and colostral and cord serum antibodies on the presence of Escherichia coli in the faeces of the newborn infant. Acta Pediatrica Scandinavica 65, 225.CrossRefGoogle ScholarPubMed
Hadorn, B., Zoppi, G., Shmerling, D. H., Prader, A., McIntyre, I. & Anderson, C. M. (1968). Quantitative assessment of exocrine pancreatic function in infants and children. Journal of Pediatrics 73, 39.CrossRefGoogle ScholarPubMed
Jenness, R. (1974). Composition of milk. In Lactation, (ed. Larsen, B. L. and Smith, V. R.). Academic Press.Google Scholar
Masson, P. L. & Heremans, J. F. (1968). The metal-combining properties of human lactoferrin (red milk protein). European Journal of Biochemistry 6, 579.CrossRefGoogle ScholarPubMed
Masson, P. L. & Heremans, J. F. (1971). Lactoferrin in milk from different species. Comparative Biochemistry and Physiology 39, 119.Google ScholarPubMed
Masson, P. L., Heremans, J. F., Schonne, E. & Crabbe, P. A. (1969). New data on lactoferrin, the iron-binding-protein of secretions. In Protides of the Biological Fluids; Proceedings of the 16th Colloquium, p. 633.CrossRefGoogle Scholar
Reiter, B., Brock, J. H. & Steel, E. D. (1975). Inhibition of Escherichia coli by bovine colostrum and post-colostral milk. II. The bacteriostatic effect of lactoferrin on a serum susceptible and serum resistant strain of E. coli. Immunology 28, 83.Google ScholarPubMed
Seidom, E. J., Mosovitch, L. L. & Neter, E. (1975). Colonisation by Enterobacteriaceae of the respiratory tract of children with cystic fibrosis of the pancreas and their antibody response. Journal of Pediatrics 87, 528.Google Scholar
Tassovatz, B. & Kotsitoh, A. (1961). Le lait de femme et son action de protection contre les infections intestinales chez le nouveau-né. La semaine des Hopitaux 37, 1649.Google Scholar
Torvanen, P., Rossi, T. & Hirvonen, T. (1969). The concentration of Gc globulin and transferrin in human foetal and infant sera. Scandinavian Journal of Haematology 6, 113.CrossRefGoogle Scholar
Tourville, D. R., Adler, R. H., Bienstock, J. & Tomasi, T. B. (1969). The human secretory immunoglobulin system: immunohistological localisation of γA, secretory ‘piece’ and lactoferrin in normal human tissues. Journal of Experimental Medicine 129, 411.CrossRefGoogle ScholarPubMed