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Original Articles

Effect of type 1 fimbriae of Salmonellaenterica serotype Enteritidis on bacteraemia and reproductive tract infection in laying hens

Pages 314-320 | Received 08 Apr 2003, Accepted 02 Mar 2004, Published online: 19 Oct 2010

References

  • Allen-Vercoe, E, and Woodward, MJ, 1999a. Colonization of the chicken caecum by afimbriate and aflagellate derivatives of Salmonella enterica serotype Enteritidis, Veterinary Microbiology 29 (1999a), pp. 265–275.
  • Allen-Vercoe, E, and Woodward, MJ, 1999b. The role of flagella, but not fimbriae, in the adherence of Salmonella enterica serotype Entertidis to chick gut explant, Journal of Medical Microbiology 48 (1999b), pp. 771–780.
  • Allen-Vercoe, E, Sayers, AR, and Woodward, MJ, 1999. Virulence of Samonella enterica serotype Enteritidis aflagellate and afimbriate mutants in a day-old chick model, Epidemiology and Infection 122 (1999), pp. 395–402.
  • Angulo, FJ, and Swerdlow, DL, 1999. "The emergence of grade A eggs as a major source of Salmonella enterica serovar Enteritidis infections in the United States". In: Salmonella enterica serovar Enteritidis in Humans and Animals. Ames. 1999, In A. Saeed (Ed.),, 1st edn.
  • Bichler, LA, Nagaraja, KV, and Halvorson, DA, 1996. Salmonella Enteritidis in eggs, cloacal swab specimens, and internal organs of experimentally infected White Leghorn chickens, American Journal of Veterinary Research 57 (1996), pp. 489–495.
  • Craven, SE, Cox, NA, Bailey, JS, and Blankenship, LC, 1992. Binding of Salmonella strains to immobilized intestinal mucosal preparations from Broiler Chickens, Avian Diseases 36 (1992), pp. 296–303.
  • De Buck, J, Van Immerseel, F, Meulemans, G, Haesebrouck, F, and Ducatelle, R, 2003. Adhesion of Salmonella enterica serovar Enteritidis isolates to chicken isthmal glandular secretions, Veterinary Microbiology 93 (2003), pp. 223–233.
  • Desmidt, M, Ducatelle, R, Haesebrouck, F, Degroot, PA, Verlinden, M, Wijffels, R, Hinton, M, Bale, JA, and Allen, VM, 1996. Detection of antibodies to Salmonella Enteritidis in sera and yolks from experimentally and naturally infected chickens, Veterinary Record 9 (1996), pp. 223–226.
  • Dibb-Fuller, MP, Allen-Vercoe, E, Thorns, CJ, and Woodward, MJ, 1999. Fimbriae- and flagella-mediated association with and invasion of cultured epithelial cells by Salmonella Enteritidis, Microbiology 145 (1999), pp. 1023–1031.
  • Duguid, JP, Anderson, E, and Campbell, I, 1966. Fimbriae and adhesive properties in Salmonella, Journal of Pathology and Bacteriology 92 (1966), pp. 107–138.
  • Gast, RK, and Holt, PS, 2000. Deposition of phage type 4 and 13a Salmonella Enteritidis strains in the yolk and albumen of eggs laid by experimentally infected hens, Avian Diseases 44 (2000), pp. 706–710.
  • Gast, RK, Guard-Petter, J, and Holt, PS, 2002. Characteristics of Salmonella Enteritidis contamination in eggs after oral, aerosol, and intravenous inoculation of laying hens, Avian Diseases 46 (2002), pp. 629–635.
  • Guard-Petter, J, 1998. Variants of smooth Salmonella enterica serovar Enteritidis that grow to higher cell density than the wild type are more virulent, Applied and Environmental Microbiology 64 (1998), pp. 2166–2172.
  • Guard-Petter, J, Henzler, DJ, Rahman, MM, and Carlson, RW, 1997. On-farm monitoring of mouse-invasive Salmonella enterica serovar Enteritidis and a model for its association with the production of contaminated eggs, Applied and Environmental Microbiology 63 (1997), pp. 1588–1593.
  • Hoop, RK, and Pospischil, A, 1993. Bacteriological, serological, histological and immunohistochemical findings in laying hens with naturally acquired Salmonella Enteritidis phage type 4 infection, Veterinary Record 133 (1993), pp. 391–393.
  • Humphrey, TJ, Baskerville, A, Mawer, S, Rowe, B, and Hopper, S, 1989. Salmonella Enteritidis phage type 4 from the contents of intact eggs: a study involving naturally infected hens, Epidemiology and Infection 103 (1989), pp. 415–423.
  • Humphrey, TJ, Chart, H, Baskerville, A, and Rowe, B, 1991a. The influence of age on the response of SPF hens to infection with Salmonella Enteritidis PT4, Epidemiology and Infection 106 (1991a), pp. 33–43.
  • Humphrey, TJ, Whithead, A, and Gawler, AH, 1991b. Numbers of Salmonella Enteritidis in the contents of naturally contaminated hens’ eggs, Epidemiology and Infection 106 (1991b), pp. 489–496.
  • Keller, LH, Benson, CE, Krotec, K, and Eckroade, RJ, 1995. Salmonella Enteritidis colonization of the reproductive tract and forming and freshly laid eggs, Infection and Immunity 63 (1995), pp. 2443–2449.
  • Klemm, P, and Christiansen, G, 1990. The fimD gene required for cell surface localization of Escherichia coli type 1 fimbriae, Molecular and General Genetics 220 (1990), pp. 334–338.
  • Leunk, RD, and Moon, RJ, 1982. Association of type 1 pili with the ability of livers to clear Salmonella Typhimurium, Infection and Immunity 36 (1982), pp. 1168–1174.
  • Lockman, HA, and Curtiss III, R, 1992. Virulence of non-type 1 fimbriated nonflagellated Salmonella Typhimurium mutants in murine typhoid fever, Infection and Immunity 60 (1992), pp. 491–496.
  • Miyamoto, T, Baba, E, Tanaka, T, Sasai, K, Fukata, T, and Arakawa, A, 1997. Salmonella Enteritidis contamination of eggs from hens inoculated by vaginal, cloacal and intravenous routes, Avian Diseases 41 (1997), pp. 296–303.
  • Ofek, I, and Sharon, N, 1988. Lectinophagocytosis: a molecular mechanism of recognition between cell surface sugars and lectins in the phagocytosis of bacteria, Infection and Immunity 56 (1988), pp. 539–547.
  • Okamura, M, Kamijima, Y, Miyamoto, T, Tani, H, Sasai, K, and Baba, E, 2001a. Differences among six Salmonella serovars in abilities to colonize reproductive organs and to contaminate eggs in laying hens, Avian Diseases 45 (2001a), pp. 61–69.
  • Okamura, M, Miyamoto, T, Kamijima, Y, Tani, H, Sasai, K, and Baba, E, 2001b. Differences in abilities to colonize reproductive organs and to contaminate eggs in intravaginally inoculated hens and in vitro adherences to vaginal explants between Salmonella Enteritidis and other Salmonella serovars, Avian Diseases 45 (2001b), pp. 962–971.
  • Old, DC, and Duguid, JP, 1970. Selective outgrowth of fimbriate bacteria in static liquid medium, Journal of Bacteriology 103 (1970), pp. 447–456.
  • Parker, CT, Liebana, E, Henzler, DJ, and Guard-Petter, J, 2001. Lipopolysaccharide O-antigen microheterogeneity of Salmonella Enteritidis and Typhimurium, Applied and Environmental Microbiology 3 (2001), pp. 332–342.
  • Perry, A, and Ofek, I, 1984. Inhibition of blood clearance and hepatic tissue binding of Escherichia coli by liver lectin-specific sugars and glycoproteins, Infection and Immunity 43 (1984), pp. 257–262.
  • Petter, JG, 1993. Detection of two smooth colony phenotypes in a Salmonella Enteritidis isolate which vary in their ability to contaminate eggs, Applied and Environmental Microbiology 59 (1993), pp. 2884–2890.
  • Pourbakhsh, SA, Boulianne, M, Martineau-Doizé, B, and Fairbrother, JM, 1997a. Virulence mechanisms of avian fimbriated Escherichia coli in experimentally inoculated chickens, Veterinary Microbiology 58 (1997a), pp. 195–213.
  • Pourbakhsh, SA, Dho-Moulin, M, Bree, A, Martineau-Doizé, B, and Fairbrother, JM, 1997b. Localization of the in vivo expression of P and F1 fimbriae in chickens experimentally inoculated with pathogenic Escherichia coli, Microbial Pathogenesis 22 (1997b), pp. 331–341.
  • Rajashekara, G, Munir, S, Alexeyev, MF, Halvorson, DA, Wells, CL, and Nagaraja, KV, 2000. Pathogenic role of SEF14, SEF17, and SEF21 fimbriae in Salmonella enterica serovar enteritidis infection of chickens, Applied and Environmental Microbiology 66 (2000), pp. 1759–1763.
  • Rodrigues-Ortega, M, Ofek, I, and Sharon, N, 1987. Membrane glycoproteins of human polymorphonuclear leukocytes that act as receptors for mannose-specific Escherichia coli, Infection and Immunity 55 (1987), pp. 968–973.
  • Rumelt, S, Metzger, Z, Kariv, N, and Rosenberg, M, 1988. Clearance of Serratia marcescens form the blood in mice: role of hydrophobic versus mannose-sensitive interactions, Infection and Immunity 56 (1988), pp. 1167–1170.
  • Saukkonen, KMJ, Nowicki, B, and Leinonen, M, 1988. Role of type 1 and S fimbriae in the pathogenesis of Escherichia coli O18:K1 bacteremia and meningitis in the infant rat, Infection and Immunity 56 (1988), pp. 892–897.
  • Thiagarajan, D, Saeed, AM, and Asem, EK, 1994. Mechanism of transovarian transmission of Salmonella Enteritidis in laying hens, Poultry Science 73 (1994), pp. 89–98.
  • Thiagarajan, D, Saeed, M, Turek, J, and Asem, E, 1996a. In vitro attachment and invasion of chicken ovarian granulosa cells by Salmonella Enteritidis phage type 8, Infection and Immunity 64 (1996a), pp. 5015–5021.
  • Thiagarajan, D, Thacker, HL, and Saeed, AM, 1996b. Experimental infection of laying hens with Salmonella Enteritidis strains that express different type of fimbriae, Poultry Science 75 (1996b), pp. 1365–1372.
  • Tinker, JK, and Clegg, S, 2000. Characterisation of FimY as a coactivator of type 1 fimbrial expression in Salmonella enterica serovar Typhimurium, Infection and Immunity 68 (2000), pp. 3305–3313.
  • Tinker, JK, and Clegg, S, 2001. Control of FimY translation and type 1 fimbrial production by the arginine tRNA encoded by fimU in Salmonella enterica serovar Typhimurium, Molecular Microbiology 40 (2001), pp. 757–768.
  • Tinker, J, Hancox, LS, and Clegg, S, 2001. FimW is a negative regulator affecting type 1 fimbrial expression in Salmonella enterica Serovar Typhimurium, Journal of Bacteriology 183 (2001), pp. 435–442.
  • Walker, SL, Sojka, M, Dibb-Fuller, M, and Woodward, MJ, 1999. Effect of pH, temperature and surfacer contact on the elaboration of fimbriae and flagella by Salmonella serotype Enteritidis, Journal of Medical Microbiology 48 (1999), pp. 253–261.

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