865
Views
18
CrossRef citations to date
0
Altmetric
Report

<p class="p1"> Efficacy of a Lactococcus lactis <span class="s1">Δ</span>pyrG vaccine delivery platform expressing chromosomally integrated hly from Listeria monocytogenes

Pages 66-74 | Received 18 Sep 2009, Accepted 09 Oct 2009, Published online: 01 Jan 2010

References

  • Meng J, Doyle MP. Emerging issues in microbiological food safety. Annu Rev Nutr 1997; 17:255 - 275
  • Vazquez-Boland JA, Kuhn M, Berche P, Chakraborty T, Dominguez-Bernal G, Goebel W, et al. Listeria pathogenesis and molecular virulence determinants. Clin Microbiol Rev 2001; 14:584 - 640
  • Bahey-El-Din M, Griffin BT, Gahan CGM. Sleator R, Hill C. Attack and counter-attack: Targeted immunomodulation using bacterial virulence factors. Patho-Biotechnology 2008; Austin Landes Bioscience 163 - 172
  • Pamer EG. Immune responses to Listeria monocytogenes. Nat Rev Immunol 2004; 4:812 - 823
  • Nouaille S, Ribeiro LA, Miyoshi A, Pontes D, Le Loir Y, Oliveira SC, et al. Heterologous protein production and delivery systems for Lactococcus lactis. Genet Mol Res 2003; 2:102 - 111
  • Bahey-El-Din M, Casey PG, Griffin BT, Gahan CG. Lactococcus lactis-expressing listeriolysin O (LLO) provides protection and specific CD8(+) T cells against Listeria monocytogenes in the murine infection model. Vaccine 2008; 26:5304 - 5314
  • Bahey-El-Din M, Griffin BT, Gahan CG. Nisin inducible production of listeriolysin O in Lactococcus lactis NZ9000. Microb Cell Fact 2008; 7:24
  • van der Vossen JM, van der Lelie D, Venema G. Isolation and characterization of Streptococcus cremoris Wg2-specific promoters. Appl Environ Microbiol 1987; 53:2452 - 2457
  • Cotter PD, Hill C, Ross RP. A food-grade approach for functional analysis and modification of native plasmids in Lactococcus lactis. Appl Environ Microbiol 2003; 69:702 - 706
  • Leenhouts K, Buist G, Bolhuis A, ten Berge A, Kiel J, Mierau I, et al. A general system for generating unlabelled gene replacements in bacterial chromosomes. Mol Gen Genet 1996; 253:217 - 224
  • Wadskov-Hansen SL, Willemoes M, Martinussen J, Hammer K, Neuhard J, Larsen S. Cloning and verification of the Lactococcus lactis pyrG gene and characterization of the gene product, CTP synthase. J Biol Chem 2001; 276:38002 - 38009
  • Ahmad SI, Kirk SH, Eisenstark A. Thymine metabolism and thymineless death in prokaryotes and eukaryotes. Annu Rev Microbiol 1998; 52:591 - 625
  • Steidler L, Neirynck S, Huyghebaert N, Snoeck V, Vermeire A, Goddeeris B, et al. Biological containment of genetically modified Lactococcus lactis for intestinal delivery of human interleukin 10. Nat Biotechnol 2003; 21:785 - 789
  • Horton RM, Cai ZL, Ho SN, Pease LR. Gene splicing by overlap extension: tailor-made genes using the polymerase chain reaction. Biotechniques 1990; 8:528 - 535
  • van Asseldonk M, Rutten G, Oteman M, Siezen RJ, de Vos WM, Simons G. Cloning of usp45, a gene encoding a secreted protein from Lactococcus lactis subsp. lactis MG1363. Gene 1990; 95:155 - 160
  • Glaser P, Frangeul L, Buchrieser C, Rusniok C, Amend A, Baquero F, et al. Comparative genomics of Listeria species. Science 2001; 294:849 - 852
  • Holo H, Nes IF. High-frequency transformation, by electroporation, of Lactococcus lactis subsp. cremoris grown with glycine in osmotically stabilized media. Appl Environ Microbiol 1989; 55:3119 - 3123
  • Piard JC, Hautefort I, Fischetti VA, Ehrlich SD, Fons M, Gruss A. Cell wall anchoring of the Streptococcus pyogenes M6 protein in various lactic acid bacteria. J Bacteriol 1997; 179:3068 - 3072
  • Kohda C, Kawamura I, Baba H, Nomura T, Ito Y, Kimoto T, et al. Dissociated linkage of cytokine-inducing activity and cytotoxicity to different domains of listeriolysin O from Listeria monocytogenes. Infect Immun 2002; 70:1334 - 1341
  • Hess J, Grode L, Gentschev I, Fensterle J, Dietrich G, Goebel W, et al. Secretion of different listeriolysin cognates by recombinant attenuated Salmonella typhimurium: superior efficacy of haemolytic over nonhaemolytic constructs after oral vaccination. Microbes Infect 2000; 2:1799 - 1806
  • Poolman B, Konings WN. Relation of growth of Streptococcus lactis and Streptococcus cremoris to amino acid transport. J Bacteriol 1988; 170:700 - 707
  • Carvalho LH, Hafalla JC, Zavala F. ELISPOT assay to measure antigen-specific murine CD8(+) T cell responses. J Immunol Methods 2001; 252:207 - 218
  • Stack HM, Sleator RD, Bowers M, Hill C, Gahan CG. Role for HtrA in stress induction and virulence potential in Listeria monocytogenes. Appl Environ Microbiol 2005; 71:4241 - 4247
  • Thatte J, Rath S, Bal V. Analysis of immunization route-related variation in the immune response to heat-killed Salmonella typhimurium in mice. Infect Immun 1995; 63:99 - 103
  • Gutt CN, Hollander D, Brier CH, Kim ZG, Lorenz M. Influence of laparoscopy and laparotomy on systemic and peritoneal T lymphocytes in a rat model. Int J Colorectal Dis 2001; 16:216 - 220
  • Pavlidis TE. Cellular changes in association with defense mechanisms in intra-abdominal sepsis. Minerva Chir 2003; 58:777 - 781
  • Jorgensen CM, Hammer K, Martinussen J. CTP limitation increases expression of CTP synthase in Lactococcus lactis. J Bacteriol 2003; 185:6562 - 6574
  • Law J, Buist G, Haandrikman A, Kok J, Venema G, Leenhouts K. A system to generate chromosomal mutations in Lactococcus lactis which allows fast analysis of targeted genes. J Bacteriol 1995; 177:7011 - 7018
  • Gasson MJ. Plasmid complements of Streptococcus lactis NCDO 712 and other lactic streptococci after protoplast-induced curing. J Bacteriol 1983; 154:1 - 9
  • Maguin E, Duwat P, Hege T, Ehrlich D, Gruss A. New thermosensitive plasmid for gram-positive bacteria. J Bacteriol 1992; 174:5633 - 5638