64
Views
1
CrossRef citations to date
0
Altmetric
Original Article

Intestinal, Segmented, Filamentous Bacteria and Colonisation Resistance of Mice to Pathogenic Bacteria

, , , , &
Pages 299-307 | Received 05 May 1992, Published online: 11 Jul 2009

References

  • Abrams GD. Microbial effects on mucosal structure and function. American Journal of Clinical Nutrition 1977; 30: 1880–1886
  • Blumershine RVH, Savage DC. Filamentous microbes indigenous to the murine small bowel: a scanning electron microscopic study of their morphology and attachment to the epithelium. Microbial Ecology 1978; 4: 95–103
  • Carter Ph B, Collins FM. The route of enteric infection in normal mice. Journal of Experimental Medicine 1974; 139: 1189–1203
  • Chase DG, Erlandsen SL. Evidence for a complex life cycle and endospore formation in the attached, filamentous, segmented bacterium from murine ileum. Journal of Bacteriology 1976; 127: 572–583
  • Davis CP, Savage DC. Habitat, succession, attachment, and morphology of segmented, filamentous microbes indigenous to the murine gastrointestinal tract. Infection and Immunity 1974; 10: 948–956
  • Garland CD, Lee A, Dickson MR. Segmented filamentous bacteria in the rodent small intestine: their colonization of growing animals and possible role in host resistance to Salmonella. Microbial Ecology 1982; 8: 181–190
  • Glick B, Holbrook KA, Olah I, Perkins WD, Stinson R. A scanning electron microscope study of the caecal tonsil: the identification of a bacterial attachment to the villi of the caecal tonsil and the possible presence of lymphatics in the caecal tonsil. Poultry Science 1978; 57: 1408–1416
  • Hohmann AW, Schmidt G, Rowley D. Intestinal colonization and virulence of Salmonella in mice. Infection and Immunity 1978; 11: 763–770
  • Käufer I, Sobiraj A. Vorkommen und mögliche Bedeutung von Darmepithelassoziierten Bakterien beim Huhn. Fortschritte der Veterinär-medizin 35. Paul Parey Verlag, Berlin 1982; 195–200
  • Klaasen HLBM, Koopman JP, Van den Brink ME, Van Wezel HPN, Beynen AC. Mono-association of mice with non-cultivable, intestinal, segmented, filamentous bacteria. Archives of Microbiology 1991; 156: 148–151
  • Klaasen HLBM, Koopman JP, Vollaard EJ, Theeuwes AGM, Van den Brink ME, Scholten PM, Bakker HM, Beynen AC. Influence of antimicrobial drugs on segmented filamentous bacteria in the ileum of mice. Microbial Ecology in Health and Disease 1991; 4: 391–397
  • Koopman JP, Kennis HM, Nouws JFM, Morse H. Evidence for antibacterial substances in diets for laboratory animals. Zeitschrift für Versuchstierkunde 1986; 28: 179–186
  • Koopman JP, Van den Brink ME, Scholten PM, Van der Logt JTM, Simons HJA. Etat microbiologique d'une colonie, maintenue sous barrière, de petits rongeurs. Sciences et Techniques de l'Animal de Laboratoire 1989; 14: 263–269
  • Mayrhofer G. Physiology of the intestinal immune system. Local Immune Responses of the Gut, TJ Newby, CR Stokes. CRC Press, Boca Raton 1984; 2–96
  • Merrell BR, Walker RI, Gillmore JD, Porvaznik M. Scanning electron microscopy observations on the effects of hyperbaric stress on the populations of segmented filamentous intestinal flora in normal mice. Scanning Electron Microscopy/1979/III, AMF O'Hare. SEM Incorporated, Chicago 1979; 29–32
  • Newby TJ. Protective immune responses in the intestinal tract. Local Immune Responses of the Gut, TJ Newby, CR Stokes. CRC Press, Boca Raton 1984; 143–198
  • Porvaznik M, Walker RI, Gillmore JD. Reduction of the indigenous filamentous microorganisms in rat ilea following gamma-radiation. Scanning Electron Microscopy/ 1979/111, AMF O'Hare. SEM Incorporated, Chicago 1979; 15–22
  • Simon GL, Gorbach SL. Intestinal flora in health and disease. Gastroenterology 1984; 86: 174–193
  • Tannock GW, Crichton CM, Savage DC. A method for harvesting non-cultivable filamentous segmented microbes inhabiting the ileum of mice. FEMS Microbiology Ecology 1987; 45: 329–332
  • Van den Broek MF, Van Bruggen MCJ, Van de Putte LBA, Van den Berg WB. T cell responses to streptococcal antigens in rats: relation to susceptibility to streptococcal cell wall-induced arthritis. Cellular Immunology 1988; 116: 216–229