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Bordetella bronchiseptica

Antoine, R. and Locht, C. (1992) Isolation and molecular characterization of a novel broad-host-range plasmid from Bordetella bronchiseptica with sequence similarities to plasmids from Gram-positive organisms. Molecular Microbiology, 6, 1785-1799. [Pg.281]

Bordetella bronchiseptica 76 1 Prof. A. N. Chakrabarty, Calcutta University College of Medicine, Calcutta... [Pg.78]

Chitosan molecular weight has also been reported to influence drug release. Jiang et al. [94] studied Bordetella bronchiseptica dermonecrotoxin (BBD) release from chitosan microspheres prepared by tripolyphosphate ionic gelation. It has been shown that the BBD release rate increased with chitosan molecular weight decrease. It has been explained by the weaker BBD interaction with chitosan of lower molecular weight and lower content of free amine groups, responsible for their interaction. [Pg.661]

Microspheres Ionic gelation with tripolyphosphate Bordetella, bronchiseptica, dermonecrotoxin Chitosan In mice Systemic and mucosal immune responses induced 21... [Pg.669]

Arico B, Rappuoli R (1987) Bordetella parapertussis and Bordetella bronchiseptica contain transcriptionnally silent pertussis toxin genes. In J. Bacterial. 169 2847-2853. [Pg.46]

Bordetella bronchiseptica Tetracycline Trimethoprim-sulphonamide chloramphenicol gentamicin... [Pg.231]

Traditionally methods of viable counting and microscopy have been used to study phagocytosis of bacteria and subsequent survival or destruction." However, such indirect methods give an underestimate of bacterial survival within cells. It has been shown that bioluminescence acts as a convenient real-time method for monitoring survival of Bordetella bronchiseptica in vitro, whilst a dual gfp-luxABCDE operon has been used to monitor real-time replication of Staphylococcus aureus. The use of clinically important bacteria transformed with the lux cassette overcomes the problems with viable but non-culturable bacteria, as the expression of lux genes depends on the functional biochemistry of the bacteria. ""... [Pg.365]

Forde CB, Parton R, Coote JG. Bioluminescence as a reporter on intracellular survival of Bordetella bronchiseptica in murine phagocytes. Infect Immun 1998 66 3198-207. [Pg.368]

Parkhill, J., Sebaihia, M., Preston, A., et al. (2003) Comparative analysis of the genome sequences of Bordetella pertussis, Bordetella parapertussis and Bordetella bronchiseptica. Nat. Genet. 35, 32 10. [Pg.74]

Siciliano NA. Skinner JA, Yuk MH. Bordetella bronchiseptica modulates macrophage phenotype leading to the inhibition of CD4+ T-cell proliferation and the initiation of a 1hl7 immune response. J Immunol 2006 177(10) 7131-7138. [Pg.13]

Kang, M.L., Jiang, H.L., Kang, S.G. et al. 2007. Pluronic F127 enhances the effect as an adjuvant of chitosan microspheres in the intranasal deUvery of Bordetella bronchiseptica antigens containing dermonecro-toxin. Vaccine. 25 4602-4610. [Pg.355]

Horiguchi Y, Inoue N, Masuda M, Kashimoto T, Katahira J, Sugimoto N, Matsuda M (1997) Bordetella bronchiseptica dermonecrotizing toxin induces reorganization of actin stress fibers through deamidation of Gln-63 of the GTP binding protein Rho. Proc Natl Acad Sci USA 94 11623-11626... [Pg.237]

Feline bordetellosis Bordetella bronchiseptica) Bacteria Intranasal... [Pg.266]

Streptococcus sanguis Escherichia coli K99 Escherichia coli, S-fimbriae (newborn human meningitis) Bordetella bronchiseptica Pseudomonas aeruginosa Helicobacter (Campylobacter) pylori... [Pg.38]

Ishikawa, H., and Isayama, Y., 1987, Evidence for sialyl glycoconjugates as receptors for Bordetella bronchiseptica on swine nasal mucosa. Infect. Immun. 55 1607-1609. [Pg.55]


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See also in sourсe #XX -- [ Pg.8 ]




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