Improved production, by means of biomolecular engineering methods, of substances for: ‐ animal husbandry (particularly vaccines and hormones),‐ agro-food industries
Chapter
Keywords
Bovine Leukemia Virus Infectious Bronchitis Virus Scientific Staff Milk Protein Gene Infectious Bronchitis Virus Strain
These keywords were added by machine and not by the authors. This process is experimental and the keywords may be updated as the learning algorithm improves.
Preview
Unable to display preview. Download preview PDF.
References
- Gubler, U. and Hoffman, B.J. (1983). Gene 25, 263–269.PubMedGoogle Scholar
- Okayama, H. and Berg, P. (1982). Molecular and Cellular Biology 2, 161–170.PubMedGoogle Scholar
- Ruther, U. and Muller-Hill, B. (1983). EMBO Journal 2, 1791–1794.Google Scholar
- Bountiff, L., Britton, P. and Millson, G.C. (1984). “Cloning of Transmissible Gastroenteritis Virus mRNA Species”, 100th Meeting of the Society for Microbiology.Google Scholar
- Bountiff, L., Garwes, D.J., Millson, G.C. and Baird, G.D. (1984). The genome of transmissible gastroenteritis virus (TGEV). In Molecular Biology and Pathogenesis of Coronaviruses, pp. 225–226. Plenum Publishing Corp., N.Y.Google Scholar
- Britton, P., Garwes, D.J., Bountiff, L. and Millson, G.C. (1984). “Identification of the Immunogenic Antigen of Porcine Transmissible Gastroenteritis Virus”. Cold Spring Harbor Meeting on Modern Approaches to Vaccines. Abstract 41, p. 41.Google Scholar
- Britton, P., Garwes, D.J., Page, K.W., Millson, G.C., Bountiff, L. and Hunter, G.D. (1985). “Genetic Manipulation and Expression of Porcine Transmissible Gastroenteritis Virus Genes”. 13th International Congress of Biochemistry, Amsterdam, Holland. Abstract MO-113, p. 54.Google Scholar
- Britton, P., Page, K., Garwes, D.J. and Baird, G.D. (1985). “Instability of Large Transmissible Gastroenteritis Virus cDNA Inserts in Recombinant Plasmids”. CEC Symposium on Plasmid Instability, Heraklion, Crete, pp. 4–5.Google Scholar
- Garwes, D.J., Bountiff, L., Millson, G.C. and Elleman, C.J. (1984). Defective Replication of Porcine Transmissible Gastroenteritis Virus in a Continuous Cell line. In Molecular Biology and Pathogenesis of Coronaviruses, pp 79–94. Plenum Publishing Corp., N.Y.Google Scholar
- Garwes, D.J., Britton, P., Bountiff, L., Millson, G.C. and Elleman, C.J. (1984). “Studies on the immunogenic antigen of Porcine Transmissible Gastroenteritis Virus”. 6th International Congress of Virology, Sendai, Japan. Abstract p. 22–32, p. 218.Google Scholar
- Garwes, D.J., Britton, P., Bountiff, L., Millson, G.C. and Stewart, F. (1984). “Epitope Identification and Gene Manipulation in Porcine Transmissible Gastroenteritis Virus”. CEC Symposium on Biomolecular Engineering for Animal Husbandry, Rijswijk, Holland, p. 19.Google Scholar
- Garwes, D.J., Britton, P., Stewart, F. and Page, K. (1985). “Antigenic Structure and Genetic Organisation of Porcine Transmissible Gastroenteritis Virus”. International Meeting on Advances in Virology, Catania, Italy. Abstract p. 29.Google Scholar
- M.J. Francis, C.M. Fry, D.J. Rowlands, F. Brown, J.L. Bittie, R.A. Houghten and R.A. Lerner ‐ “ Immunological Priming with Synthetic Peptides of Food-and-Mouth Disease Virus” - J. gen. Virol 66 2347–2354 (1985)PubMedGoogle Scholar
- N.R. Parry, E.J. Ouldridge, P.V. Barnett, D.J. Rowlands, F. Brown, - “Identification of Neutralizing Epitopes of Foot-and-Mouth Disease Virus” - Vaccines 85. Editors: R.A. Lerner, R.M. Chanock and F. Brown 211–216 (1985).Google Scholar
- E. J. Ouldridge, N.R. Parry, P.V. Barnett, C. Bolwell, D.J. Rowlands, F. Brown, J.L. Bittle. Houghten and R.A. Lerner– “Comparison of the Structure of the major Antigenic Site of Foot-and-Mouth Disease Viruses of two different Serotypes” - Vaccines 86. Editors: F. Brown, R.M. Chanock and R.A. Lerner (1986).Google Scholar
- M.J. Francis, C.M. Fry, D.J. Rowlands, F. Brown, J.L. Bittle, R.A. Houghten and R.A. Lerner – “Priming with Peptides of Foot-and-Mouth Disease Virus” - Vaccines 85. Editors: R.A. Lerner, R.M. Chanock and F. Brown 203–210 (1985).Google Scholar
- M.J. Francis, C.M. Fry, D.J. Rowlands, F. Brown, J.L. Bittle, R.A. Houghten and R.A. Lerner–“Immune Response to Uncoupled Peptides of Foot-and-Mouth Disease Virus” - Submitted to Journal of Immunology.Google Scholar
- Brown, T.D.K, and Boursnell, M.E.G. (1984). Avian infectious bronchitis virus genomic RNA contains sequence homologies at the intergenic boundaries. Virus Res. 1, 15–24.Google Scholar
- Boursnell, M.E.G. and Brown, T.D.K. (1984). Sequencing of Coronavirus IBV genomic RNA: a 195-base open reading frame encoded by mRNA B. Gene 29, 87–92.PubMedGoogle Scholar
- Boursnell, M.E.G., Brown, T.D.K, and Binns, M.M. (1984). Sequence of the membrane protein gene from avian Coronavirus IBV. Virus Res. 1, 303–313.Google Scholar
- Brown, T.D.K., Boursnell, M.E.G. and Binns, M.M. (1984). A leader sequence is present on mRNA A of avian infectious bronchitis virus. J. gen. Virol. 65, 1437–1442.PubMedGoogle Scholar
- Boursnell, M.E.G., Binns, M.M., Foulds, I.J. and Brown, T.D.K. (1985). Sequences of the nucleocapsid genes from two strains of avian infectious bronchitis virus. J. gen. Virol. 66, 573–580.PubMedGoogle Scholar
- Binns, M.M., Boursnell, M.E.G., Cavanagh, D., Pappin, D.C. and Brown, T.D.K. (1985). Cloning and sequencing of the gene encoding the spike protein of Coronavirus IBV J. gen. Virol. 66, 719–726.PubMedGoogle Scholar
- Boursnell, M.E.G., Binns, M.M. and Brown, T.D.K. (1985). Sequencing of the Coronavirus IBV genomic RNA: three open reading frames in the 5′ “unique” region of mRNA D. J. gen. Virol. 66, 2253–2258.PubMedGoogle Scholar
- Binns, M.M., Boursnell, M.E.G., Foulds, I.F. and Brown, T.D.K. (1985). The use of a random priming procedure to generate cDNA libraries of infectious bronchitis virus, a large RNA virus. J. Virological Methods 11, 265–269.Google Scholar
- Cavanagh, D., Davis, P.J., Pappin, D.J.C., Binns, M.M., Boursnell, M.E.G. and Brown, T.D.K. (1986). Coronavirus IBV: partial amino terminal sequencing of spike polypeptide S2 identifies the sequence Arg-Arg-Phe-Arg-Arg at the cleavage site of the spike precursor propolypeptide of IBV strains Beaudette and M41. Virus Research 4, 133–143.PubMedGoogle Scholar
- Brown, T.D.K., Boursnell, M.E.G., Binns, M.M. and Tomley, F.M. (1986). Cloning and sequencing of 5f terminal sequences from avian infectious bronchitis virus genomic RNA. J. gen. Virol. 67, 221–228.PubMedGoogle Scholar
- Infectious bronchitis virus spike protein. M.M. Binns, M.E.G. Boursnell, T.D.K. Brown & F.M. Tomley. PCT/GB86/D0181.Google Scholar
- (1).
- (2).
- (3).
- (4).Maniatis, T. et al. (1982). Molecular Cloning: A Laboratory Manual, Cold Spring Harbor.Google Scholar
- (5).
- (6).
- (7).
- (8).Hohn, B. and Murray, K. (1977). Proc. Natl. Acad. Sci., 74, 3259.Google Scholar
- (9).Advanced Methods in Recombinant DNA Techniques - EMB0 Practical Course, (ed. John Collins), B.G.F.Google Scholar
- (10).Powell, R. et al (1986). Nuc. Acids Res., 14, 1541.Google Scholar
- (11).Lusky, M. et al. (1983). Mol. Cell Biol., 3, 1108–1122.PubMedGoogle Scholar
- (12).Palmiter, R.D. et al. (1983). Science 222, 809–814.PubMedGoogle Scholar
- (13).Stuart, G.W. et al. (1984). Proc. Natl. Acad. Sci., 81, 7318–7323.PubMedGoogle Scholar
- (14).Yano, T. et al. (1981). J. Biochem., 90, 773–777.PubMedGoogle Scholar
- (15).Chourrout, D. et al. (1986). Aquaculture 51, 143–150.Google Scholar
- Powell, R., Neilan, J. and Gannon, F. (1986). Plaque dot assay. Nucleic Acids Research 14, 1541.Google Scholar
- Gannon, F. (1986). Exploiting new technologies. Oxford University Press. (In press). (Transgenics).Google Scholar
- 1.The use of genetic recombination for constructing novel strains of a picornavirus (1983). Mccahon, D., King, A.M.Q., Saunders, K., Slade, W.R. and Newman, J.W.I. Cold Spring Harbor Symposium on “Modern Approaches to Vaccines”, September 1983 (Chanock, R. and Lerner, R., eds. ), pp. 45–51.Google Scholar
- 2.Isolation and biochemical characterisation of intertypic recombinants of foot-and-mouth disease virus (1985). McCahon, D., King, A.M.Q., Roe, D.S., Slade, W.R., Newman, J.W.I, and Cleary, A.M. Virus Research 3, 87–100.Google Scholar
- 3.Multiple sites of recombination within the RNA genome of foot-and-mouth disease virus (1985). King, A.M.Q., McCahon, D., Saunders, K., Newman, J.W.I, and Slade, W.R. Virus Research 3, 373–384.PubMedGoogle Scholar
- 4.Recombination and oligonucleotide analysis of guanidine resistant foot-and-mouth disease virus mutants (1985). Saunders, K., King, A.M.Q., McCahon, D., Newman, J.W.I., Slade, W.R. and Forss, S. J.Virol. 56, 921–929.PubMedGoogle Scholar
- 1.McCrae, M.A. and Faulkner-Valle, G.P. (1981). J. Virol. 39 490–496.PubMedGoogle Scholar
- 2.McCrae, M.A. and McCorquodale, J.G. (1982). J. Virol. 44 1076–1079.Google Scholar
- 3.Zabeau, M. and Stanley, K.K. (1982). Embo J. 1 1217–1224.PubMedGoogle Scholar
- 4.Stanley, K.K. and Luzio, J.P. (1984). Embo J. 3 1429–1434.PubMedGoogle Scholar
- Mercier, J.C., Gaye, P., Soulier, S., Hue-Delahaie, D. & Vilotte,J.L (1985) “Construction and identification of recombinant plasmids carrying cDNAs coding for ovine OCsy, αs1-, αs2-, β-, K-casein and β-lactoglobulin. Nucleotide sequence of α s1 -casein cDNA.” Biochimie, 67, 959–971.PubMedGoogle Scholar
- Boisnard, M. & Pétrissant, G. (1985) “Complete sequence of ovine as2-casein messenger RNA.” Biochimie, 67, 1043–1051.PubMedGoogle Scholar
- Gaye, P., Hue-Delahaie, D., Mercier, J.C., Soulier, S., Vilotte, J.L. & Furet, J.P. (1986) “Complete sequence of ovine a-lactalbumin mRNA.” Biochimie, submitted.Google Scholar
- Furet, J.P., Mercier, J.C., Soulier, S., Gaye, P., Vilotte, J.L. & Hue-Delahaie, D. (1986) “Séquence de I’ARN-messager de la caséine Kovine.” Biochimie, manuscript in preparation.Google Scholar
- Pétrissant, G., Boisnard, M., Brignon, G., Gaye, P., Soulier, S. & Mercier, J.C. (1986) “Structural studies of two non allelic forms of ovine α s2 casein mRNAs and of the relevant polypeptides.” Nucleic Acids Res., manuscript in preparation.Google Scholar
- Vilotte, J.L., Soulier, S., Mercier, J.C., Gaye, P., Hue-Delahaie, D. & Furet, J.P. (1986) “Nucleotide sequence of the bovine a-lactalbumin gene. Comparaison with its rat counterpart.” Biochimie, manuscript in preparation.Google Scholar
- Gaye, P., Mercier, J.C., Pétrissant, G., Vilotte, J.L. & Popescu, P. (1986) “Structure des ADN complémentaires des lactoprotéines: application à la recherche des gènes et à leur localisation chromosomique.” Reprod. Nutr. Develop. 26, (2B)Google Scholar
- Dusanter-Fourt, I., Djiane, J., Kelly, P.A., Houdebine, L.M. and Teyssot, B. Differential biological activities between mono- and bivalent fragments of anti-prolactin receptor antibodies. Endocrinology (1984) 114, 1021–1027.PubMedGoogle Scholar
- Edery, M., Houdebine, L.M., Djiane, J. and Kelly, P.A. Studies of β-casein content of normal and neoplastic rat mammary tissues by a homologous radioimmunoassay. Mol. Cell. Endocr. (1984) 34, 145–151.Google Scholar
- Ferland, L.H., Djiane, J., Houdebine, L.M. and Kelly, P.A. Intracellular transformation of prolactin following internalization into rat liver. Mol. Cell. Endocr. (1984) 35, 25–31.Google Scholar
- Ferland, L.H., Djiane, J., Houdebine, L.M. and Kelly, P.A. The effect of chloroquine on lysosomal prolactin receptors in rat liver. Endocrinology (1984) US, 1842–1849.Google Scholar
- Houdebine, L.M., Djiane, J., Kelly, P.A., Katoh, M., Dusanter-Fourt, I. and Martel, P. The mechanism of action of prolactin on casein gene expression. Proceedings of the 7th International Congress of Endocrinology, Quebec City (1984), pp. 203–206 (edited by F. Labrie and L. Proulx, Elsevier Science Publishing Company Inc.).Google Scholar
- Kelly, P.A., Djiane, J., Katoh, M., Ferland, L.H., Houdebine, L.M., Teyss0t, B. and Dusanter-Fourt, I. The interaction of prolactin with its receptors in target tissues and its mechanism of action. Rec. Progr. Horm. Res. (1984) 40, 379–439.PubMedGoogle Scholar
- Houdebine, L.M., Djiane, J., Dusanter-Fourt, I., Martel, P., Kelly, P.A., Devinoy, E. and Servely, J.L. Hormonal action controlling mammary activity. J. Dairy Sci. (1985) 68, 489–500.PubMedGoogle Scholar
- Kelly, P.A., Katoh, M., Djiane, J,, Houdebine, L.M. and Dusanter-Fourt,I. Characterization of antisera to prolactin receptors. Methods in Enzymology (1985) 109, 667–676.PubMedGoogle Scholar
- Rosa, A.A.M., Ferland, L.H., Djiane, J., Houdebine, L.M. and Kelly, P.A. Maintenance of prolactin binding sites in rat liver cells in suspension culture: effect of prolactin and of inhibitors of various cellular functions. Endocrinology (1985) 116, 1288–1294.PubMedGoogle Scholar
- Houdebine, L.M. Régulation hormonale de la glande mammaire normale. Bull. Cancer (1985) 72, 121–141.PubMedGoogle Scholar
- Houdebine, L.M. Contrôle hormonal du développement et de l’activité de la glande mammaire. Reprod. Nutr. Develop. (1986) 26 (sous presse).Google Scholar
- Benchaibi M., 1984. Transfert de gènes dans des cellules eucaryotiques au moyen d’un retrovirus aviaire. Thèse de 3éne cycle. Université Claude Bernard Lyon I.Google Scholar
- Xiao J.H., 1984. Utilisation de retrovirus pour le transfert de gènes dans les cellules eucaryotiques. Diplôme d’études approfondies. Université Claude Bernard Lyon I.Google Scholar
- Flamant F., 1986. Utilisation de vecteurs dérivés du virus de 1’érythroblastose aviaire (AEV) pour le transfert de gènes chez les embryons de poulet. Thèse de 3éme cycle. Université Claude Bernard Lyon I.Google Scholar
- Samarut J., Benchaibi M., Xiao J.H. et Nigon V.M. 1984. Vecteurs de clonage ou d’expression comportant le génome du virus de 1’érythroblastose aviaire et cellules transfectées par ces virus. Demande de brevet français No 84 15764 déposée le 15/10/84.Google Scholar
- Samarut J., Verdier G., Benchaibi M., Savatier P., Poncet D., Flamant F., Xiao J.H., Thqraval P., Chambqnnet F. et Nigon V.M. 1985. Vecteurs de clonage ou d’expression comportant le virus de l’érythroblastose aviaire et cellules transfectées par ces vecteurs. Demande de brevet européen No 60708 D. 10912 déposée le 15/10/85.Google Scholar
- Jurdic P., Gandrillon O., Samarut J. et Nigon V.M. 1986. Procédé pour la préparation de cultures à long terme de cellules. Demande de brevet français No 86 04999 déposée le 8/4/86.Google Scholar
- (1).Mettenleiter, T.C., N. Lukäcs, H.-J. Rziha. 1983. Investigation of herpesvirus (Pseudorabies virus) -specific mRNAs coding for an immunogenic glycoprotein. CEC-meeting, Abstr., Louvain-La-Neuve.Google Scholar
- (2).Lukàcs, N., H.-J. Thiel, T.C. Mettenleiter, H.-J. Rziha. 1983. Characterization of the glycoproteins of Pseudorabies virus using monoclonal antibodies. Zbl. Bakt. Hyg., I. Abt. Orig. A 254 Google Scholar
- (3).Rziha, H.-J., T.C. Mettenleiter, N. Lukàcs, H.-J. Thiel. 1984. Genetic engineering of vaccines, hormones, and genes for animal husbandry. CEC-meeting, Abstr., Rijswijk.Google Scholar
- (4).Mettenleiter, T.C., N. Lukäcs, H.-J. Rziha. 1985. Mapping of the structural gene of Pseudorabies virus glycoprotein A and identification of two non-glycosylated precursor polypeptides. J.Virol. 53, 52–57.PubMedGoogle Scholar
- (5).Lukàcs, N., H.-J. Thiel, T.C. Mettenleiter, H.-J. Rziha. 1985. Demonstration of three major species of Pseudorabies virus glycoproteins and identification of a disulfide-linked glycoprotein complex. J.Virol. 53, 166–173.PubMedGoogle Scholar
- (6).Mettenleiter, T.C., N. Lukàcs, H.-J. Rziha. 1985. Pseudorabies virus avirulent strains fail to express a major glycoprotein. J.Virol. 56, 307–311.PubMedGoogle Scholar
- (6).Mettenleiter, T.C., N. Lukàcs, H.-J. Rziha. 1985. Pseudorabies virus avirulent strains fail to express a major glycoprotein. J.Virol. 56, 307–311.PubMedGoogle Scholar
- (8).Mettenleiter, T.C., C. Schreurs, H.-J. Thiel, H.-J. Rziha. Variability of Pseudorabies virus glycoprotein I expression. Submitted for publication, J.Virol.Google Scholar
- (9).Van Oirschot, I.T., H.-J. Rziha, P.I.L.M. Moonen, J.M.A. Pol, D. van Zoone. 1886. Differentiation of serum antibodies from pigs vaccinated or infected with Aujesky’s diseases virus by a competitive enzyme immunoassay. J. gen. Virol., in press.Google Scholar
- J.M. Vlak and J.A.R. Keus. Engineering and selection of baculovirus recombinants for production in cultured insect cells. Abstract CEC Meeting on Biomolecular Engineering for Animal Husbandry. Rijswijk (1984), p. 36.Google Scholar
- J.M. Vlak and J.A.R. Keus. Engineering and selection of baculovirus recombinants for production in cultured insect cells. CEC Progress Report, Research and Training Programme in Biomolecular Engineering. (1984), p. 241–246.Google Scholar
- J. Roosien, M. Usmany, E.C. Klinge-Roode and J.M. Vlak. Engineering and selection of baculovirus recombinants. Abstract CEC meeting on Genetic Engineering of Virus and Cellular Genes Important in Animal Husbandry. Cambridge (1986) p. 42–43Google Scholar
- J. Roosien, M. Usmany, E.C. Klinge-Roode and J.M. Vlak. Engineering and selection of baculovirus recombinants. Abstract CEC meeting on Genetic Engineering of Virus and Cellular Genes Important in Animal Husbandry. Cambridge (1986) p. 42–43Google Scholar
- 1.Hill, C., Daly, C. and Fitzgerald, G.F. (1985). FEMS Microbiol. Lett. 30, 115–119.Google Scholar
- 2.Fitzgerald, G.F. and Clewell, D.B. (1985). Infect. Immun. 47, 415–420.PubMedGoogle Scholar
- 3.Fitzgerald, G.F., Daly, C., Brown, L.R. and Gingeras, T.R. (1982). Nucl. Acid. Res. 10, 8171–8179.Google Scholar
- 4.Daly, C., Fitzgerald, G.F., Mullins, E., Hayes, F., Coveney, J., Costello, V., Murphy, M., Hill, C. and Lennon, S. (1986). BEP Meeting “Genetic Engineering of Microorganisms important for Agro-Food Industries”, Cork, Ireland, pp. 56–57.Google Scholar
- Fitzgerald, G.F., Daly, C., Brown, L.R. and Gingeras, T.R. (1982). ScrFI: A new sequence specific endonuclease from Streptococcus cremoris. Nucl. Acid Res. 10: 8171,Google Scholar
- Hill, C., Daly, C. and Fitzgerald, G.F. (1985). Conjugative transfer of the transposon Tn919 to lactic acid bacteria. FEMS Microbiol. Lett. 30: 115.Google Scholar
- Baumgartner, A., Murphy, M., Daly, C. and Fitzgerald, G.F. (1986). Conjugative co-transfer of lactose and bacteriophage resistance plasmids from Streptococcus cremoris UC653. FEMS Microbiol. Lett, (accepted for publication).Google Scholar
- Hill, C., Daly, C. and G.F. Fitzgerald (1986). Development of a high frequency delivery system for the transposon Tn919 in lactic streptococci: Random insertion in Streptococcus lactis subsp. diacetylactis 18–16. Submitted to Appl. Environ, Microbiol.Google Scholar
- Daly, C, (1985). Advances in starter culture technology. Proceedings of Biotech. f85 Europe, Geneva, May 1985. Online Conferences Ltd. London, p. 239–251.Google Scholar
- Daly, C. (1983). Starter Culture Developments in Ireland. Irish Journal of Food Science and Technology 7: 39–48,Google Scholar
- Daly, C. (1983). The use of multiple strain starter cultures in the dairy industry. Antoine Van Leuwoenhoek 49: 3, 297–312.Google Scholar
- Coveney, J., Fitzgerald, G.F. and Daly, C. (1984). Restriction of bacteriophage DNA in the lactic streptococci, p.68. IN: Proc. of the Commission of the European Communities, Biomolecular Engineering Programme, Marseilles, France.Google Scholar
- Costello, V., Fitzgerald, G.F., Daly, C. and O’Reilly, P. (1984). Biochemical and genetic aspects of bacteriophage DNA restriction in Streptococcus cremoris. Ir. J. Food Sci. Technol. 8: 154.Google Scholar
- Hill, C., Willis, W.D. and Daly, C. (1984). Hie involvement of plasmid DNA in proteinase activity of Streptococcus cremoris. Ir. J. Food Sci. Technol. 8: 153.Google Scholar
- Hayes, F., Fitzgerald, G.F. and Daly, C. (1985). Genetic analysis of proteinase activity in Streptococcus cremoris 17. Ir. J. Food Sci. Technol, 9: 77.Google Scholar
- Hill, C., Daly, C. and Fitzgerald, G.F. (1985). Conjugative transfer of the gram positive transposon Tn919 to lactic acid bacteria. Ir. J. Food Sci. Technol. 9: 77.Google Scholar
- Willis, W.D., Hill, C., Fitzgerald, G.F. and Daly, C. (1984). Genetics of proteinase production in Streptococcus cremoris, p.66. IN: Proc. of the Commission of the European Communities, Biomolecular Engineering Programme, Marseille, France.Google Scholar
- Lyne, J., Daly, C. and Cogan, T.M. (1984). Bacteriophage release by Streptococcus cremoris during growth at controlled pH. Ir. J, Food Sci. Technol. 8: 153.Google Scholar
- Hill, C.J. Role of plasmid DNA in proteinase activity of Streptococcus cremoris 077. National University of Ireland (University College, Cork ). MSc Degree awarded November 1984.Google Scholar
- W.M. de Vos (1985) EEC-BEP Meeting Plasmid InstabilityGoogle Scholar
- (2).A.Frischauf et al. (1983) J. Mol. Biol. 170: 827PubMedGoogle Scholar
- (3).W.A.Loenen & W.J.Brammer (1980) Gene 10: 249PubMedGoogle Scholar
- (4).P.Buckel & E.Zehelein (1981) Gene 16: 149PubMedGoogle Scholar
- (5).W.M. de Vos (1985) CEC-BEP Progress Report 1984: 257Google Scholar
- (6).S.Visser et al. (1983) Neth.Milk Dairy J. 30: 95Google Scholar
- (7).W.M. de Vos & F.L.Davies (1984) Third European Congress on Biotechnology Volume 111, 201Google Scholar
- (8).A.F.M. Simons et al. (1985) Ant. v.Leeuwenhoek 51: 565Google Scholar
- (9).W.M. de Vos et al. (1984) FEMS Microbiol.Lett. 23: 175Google Scholar
- (10).M.J Gasson (1983) J.Bacteriol. 154: 1PubMedGoogle Scholar
- (11).W.M. de Vos (1986) CEC-BEP Final Meeting Cork,54Google Scholar
- U.M. de Vos, H.Ü. Underwood & F.L. Davies, Plasmid DNA Encoded Bacteriophage Resistance in S. cremoris SK11. FEMS Microbiol. Lett. 23 (1984), 175–178Google Scholar
- W.M. de Vos & F.L. Davies, Plasmid DNA in Lactic Streptococci: Bacteriophage and Proteinase Plasmids in S. cremoris SK11. Third European Congress on Biotechnology, Verlag Chemie Volume III (1984), 201–206Google Scholar
- A.F.M. Simons, F.A. Exterkate, S. Visser & W.M. de Vos, Ant. v. Leeuwenhoek 51 (1985), 565–566Google Scholar
- A.F.M. Simons & W.M. de Vos, Melkzuurbacterien met Verbeterde Eigenschappen. Chemisch Magazine 12 (1985), 813–817Google Scholar
- A.F.M. Simons & W.M. de Vos, Melkzuurbacterien met Verbeterde Eigenschappen. Chemisch Magazine 12 (1985), 813–817Google Scholar
- W.M. de Vos, Identification, Physical Mapping and Molecular Cloning of a Plasmid Coding for Proteinase Production in S. cremoris SK11. Abstract CEC-BEP Meeting Agro-Food Marseille (1984), 58–59Google Scholar
- W.M. de Vos, Genetic Improvement of Starter Streptococci by the Cloning and Expression of the Gene Coding for a Non-Bitter Proteinase. CEC-BEP Report 1984 I (1985) 257–263Google Scholar
- W.M. de Vos, Stability of Lactic Streptococcal Vectors and Genes in S. lactis, B. subtilis and E. coli. Abstract CEC-BEP Meeting Plasmid Instability Heraklion (1985), 78–79Google Scholar
- W.M. de Vos, G.Simons, H. de Haard, G.Rutten & M. Lexmond, Gene Cloning in Lactic Streptococci. Abstract CEC-BEP Final Meeting Agro-Food Cork (1986) 54–55Google Scholar
- W.M. de Vos, G.Simons, H. de Haard, G.Rutten & M. Lexmond, Gene Cloning in Lactic Streptococci. Abstract CEC-BEP Final Meeting Agro-Food Cork (1986) 54–55Google Scholar
- A.F.M. Simons & W.M. de Vos, Development of Expression Vectors for Lactic Streptococci. AbstractGoogle Scholar
- Symposium on the Genetics of Industrial Micro-organisms Split (1986) in pressGoogle Scholar
- 1.Gunge,N. et al., J.Bacterid. 145, 382–390 (1981)Google Scholar
- 2.Wesolowki,W. et al., Current Genetics 5, 191–197 (1982)Google Scholar
- 3.Sor F. and Fukuhara,H., Current Genetics 9, 147–150 (1985)Google Scholar
- 4.Stark,M. et al., Nucl.Acids Res. 12, 6011–6031 (1985)Google Scholar
- 5.Hishinuma,F. et al., Nucl.Acids Res. 12, 7581–7597 (1985)Google Scholar
- 6.Falcone,C. et al., Plasmid, in the press.Google Scholar
- 7.Chen, X.J. et al., Submitted for publication.Google Scholar
- 8.Hartley, J.L. and Donelson, J.E., Nature 286, 860–864 (1980)PubMedGoogle Scholar
- 9.Toh-e, A. et al., Nucl. Acids Res. 13, 4267–4283 (1985)Google Scholar
- 10.Araki, H. et al., J. Mol. Biol. 182, 191–203 (1985)PubMedGoogle Scholar
- 11.Broach, J.R. and Hicks, J. B., Cell 21, 501–508 (1980)PubMedGoogle Scholar
- 12.de Louvencourt, L. et al., J. Bacteriol. 154, 737–742 (1982 or 83)PubMedGoogle Scholar
- 1.Gunge, N. et al., J. Bacterid. 145, 382–390 (1981)Google Scholar
- 2.Wesolowski, W. et al., Current Genetics 5, 191–197 (1982)Google Scholar
- 3.Sor F. and Fukuhara, H., Current Genetics 9, 147–15 (1985)Google Scholar
- 4.Stark, M. et al., Nucl. Acids Res. 12, 6011–6031 (1985)Google Scholar
- 5.Hishinuma,F. et al., Nucl. Acids Res. 12, 7581–7597 (1985)Google Scholar
- 6.Falcone, C. et al., Plasmid, in the press.Google Scholar
- 7.Chen X.J. et al., Submitted for publication.Google Scholar
- 8.Hartley, J.L. and Donelson, J.E., Nature 286, 860–864 (1980)PubMedGoogle Scholar
- 9.Toh-e, A. et al., Nucl. Acids Res. 13, 4267–4283 (1985)Google Scholar
- 10.Araki, H. et al., J. Mol. Biol. 182, 191–203 (1985)PubMedGoogle Scholar
- 11.Broach, J.R. and Hicks, J.B., Cell 21, 501–508 (1980)PubMedGoogle Scholar
- 12.de Louvencourt, L. et al., J. Bacteriol. 154,737–742 (1982 or 83)Google Scholar
- Gasson, M.J. & Anderson, P.H. (1985) Highcopy number plasmid vectors for use in lactic streptococci. FEMS Microbiol. Lett. 30, 193–196Google Scholar
- Maeda, S. & Gasson, M.J. (1986) Cloning expression and location of the S.lactis gene for phospho-3-D-galactosidase. J. Gen. Microbiol. 132 331–340PubMedGoogle Scholar
- Maeda, S. & Gasson, M.J. (1986) Cloning expression and location of the S.lactis gene for phospho-3-D-galactosidase. J. Gen. Microbiol. 132 331–340PubMedGoogle Scholar
- Youngman, R.J., Götz, F., and Elstner, E. 1984. Role of oxygen activation in adriamycin-mediated DNA strand scission and the effect of binding on the redox properties of the drug. In: Oxygen Radicals in Chemistry and Biology. Eds. W. Bors, M. Saran, and D. Tait, Walter de Gruyter, Ber¬lin, New York, pp 131–135.Google Scholar
- Sedewitz, B., Schleifer, K.H., and Götz, F. 1984. Purification and biochemical characterization of pyruvate oxidase from Lactobacillus plantarum. J. Bacterioi. 160, 273–278.Google Scholar
- Sedewitz, B., Schleifer, K.H., and Götz, F. 1984. Physiological role of pyruvate oxidase in the aerobic metabolism of Lactobacillus plantarum. J. Bacterioi. 160, 462–465.Google Scholar
- Zitzelsberger, W., Götz, F., and Schleifer, K.H. 1984. Distri-bution of superoxide dismutases, oxidases, and NADH per-oxidase in various streptococci. FEMS Microbiol. Letters 21, 243–246.Google Scholar
- Uhlen, M., Guss, B., Nilsson, B., Götz, F., and Lindberg, M. 1984. Expression of the gene encoding protein A in Sta-phylococcus aureus and coagulase-negative staphylococci. J. Bacterioi. 159, 713–719.Google Scholar
- Kreutz, B., and Götz, F. 1984. Construction of Staphylococcus plasmid vector pCA43 conferring resistance to chloramphe-nicol, arsenate, arsenite and antimony. Gene 32, 301 — 304.Google Scholar
- Keller, G., Schleifer, K.H., and Götz, F. 1984. Cloning of the ribokinase gene of Staphylococcus hyicus subsp. hyicus in Staphylococcus carnosus. Arch. Microbiol. 140, 218– 224.Google Scholar
- Götz, F., Popp, F., and Schleifer, K.H. 1984. Isolation and characterization of a virulent bacteriophage from Staphylococcus carnosus. FEMS Microbiol. Letters 23, 303– 307.Google Scholar
- Thudt, K., Schleifer, K.H., and Götz, F. 1985. Cloning and expression of amylase gene of Bacillus stearothermo- philus in various species of Staphylococcus. Gene 37, 163–169.PubMedGoogle Scholar
- Götz, F., Popp, F., Korn, E., and Schleifer, K.H. 1985. Com-plete nucleotide sequence of the lipase gene from Sta-phylococcus hyicus cloned in Staphylococcus carnosus. Nucleic Acids Res. 13, 5895–5906.PubMedGoogle Scholar
- Liebl, W., and F. Götz, 1986. Lipase directed export of Esche-richia coli ß-lactamase in Staphylococcus carnosus. MGG.Google Scholar
- 1.Orr-Weaver,T.L., Szostak, J.U. & Rothstein, R.J. (1981) Proc. Nat. Acad. Sci. USA 78, 6354–6356Google Scholar
- 2.Grenson, M. (1983) Eur. J. Biochem. 133, 135–139PubMedGoogle Scholar
- 3.Grenson, M. (1983) Eur. J. Biochem. 133, 141–144PubMedGoogle Scholar
- 4.Vandenbol, M., Jauniaux, J.-C., Vissers, S. and Grenson, M. (1986) Journal of Molecular Biology, SubmittedGoogle Scholar
- Vandenbol, M., Jauniaux, J.-C., Vissers, S. and Grenson, M. (1986) Positive and Negative Control of Ammonia-Sensitive Amino-Acid Permeases in the Yeast Saccharomyces cerevisiae: Isolation and RNA Analysis of the NPR1 Gene, Effects of NPI1 and NPR1 Gene Dose on General Amino-Acid Permease Activity. Journal of Molecular Biology, SubmittedGoogle Scholar
- Vandenbol, M., Vissers, S., Jauniaux, J.-C. and Grenson, M. Cloning of a yeast DNA fragment which complements the NPR1 function implicated in the pleiotropic activation of several ammonia-sensitive uptake systems in S. cerevisiae, BEP meeting, Marseille 1984Google Scholar
- Vandenbol, M., Vissers, S., Jauniaux, J.-C. and Grenson, M. (1985) Cloning of the nitrogen permease regulator gene NPR1 of S. cerevisiae. Arch. Int. Physiol. Biochim. 93., B172Google Scholar
- Vissers, S. Cloning of the GDHA gene implicated in the regulation of the permeases submitted to the ammonia- dependent catabolic repression in S. cerevisiae. BEP Meeting, Marseille, 1984Google Scholar
- Grenson, M., Jauniaux, J.-C., Vissers, S. and Vandenbol, M. Study of plasmid stability in chemostat-grown cultures of S. cerevisiae. BEP Meeting, Heraklion 1985Google Scholar
- Grenson, M., Vandenbol, M., Jauniaux, J.-C., Vissers, S. and Broman, K. Construction of transformed yeast strains for agro-food applications and development of systems for stabilizing the genetic material introduced by genetic engineering into the food yeast Saccharomyces cerevisiae. BEP Meeting, Cork, 1986Google Scholar
- Grenson, M., Vandenbol, M., Jauniaux, J.-C., Vissers, S. and Broman, K. Construction of transformed yeast strains for agro-food applications and development of systems for stabilizing the genetic material introduced by genetic engineering into the food yeast Saccharomyces cerevisiae. BEP Meeting, Cork, 1986Google Scholar
- J-L. Pernodet, J.M. Simonet and M. Guerineau (1984): Plasmids in different strains of Streptomyces ambofaciens. Free and integrated forms of plasmids pSAM2. Mol. Gen. Genet. JJ98: 35–41.Google Scholar
- J-L. Pernodet, J.M. Simonet, M. Guerineau (1984): Caracterisation d’un plasmide de Streptomyces ambofciens pouvant exister sous forme libre ou intégrée dans le chromosome. In: Génétique des Microorganismes Industriels. H. Heslot, ed. Société française de Microbiologie, Paris, 293–297.Google Scholar
- M. Guerineau, J-L. Pernodet et J.M. Simonet (1984): Caractérisation d’un plasmide libre et/ou intégré dans S. ambofaciens. XV° Rencontres de Méribel.Google Scholar
- J.M. Simonet, J-L. Pernodet, M. GUERINEAU (1985): Instabilité génétique et amplification chez S. ambofaciens. XVI° Rencontres de Méribel.Google Scholar
- J.M. Simonet, J-L. Pernodet, J. Gagnat, M. GUERINEAU: Excision and integration of a self-transmissible replicon of Streptomyces ambofaciens soumis nour publication.Google Scholar
- C S Stewart, J Gilmour and M L McConville in “New Developments and Future Perspectives in Research on Rumen Function”. Editor A Niemann, CEC Brussels (1985).Google Scholar
- Budde-Niekiel, A., Möller, V., Lembke, J. und Teuber, M. (1985): Ökologie von Bakteriophagen in einer Frischkäserei. MLlchwissenschaft 40: 477–481.Google Scholar
- Geis, A., Neve, H. and Teuber, M. (1985): Stability of Plasmids in mesophilic lactic acid streptococci during conjugation. BEP-Report: Plasmid instability; Heraklion. p. 68–70.Google Scholar
- Teuber, M. (1986): Genetic engineering with Lactobacteria. Swiss Biotech. 4: 16–17.Google Scholar
- Teuber, M. (1986): Mikrobiologie fermentierter Milchprodukte. Chem. MLkro- biol. Technol. Lebensm. 9: 162–172.Google Scholar
- J. Kok, J.M.B.M. van der Vossen and G. Venema. Construction of plasmid cloning vectors for lactic streptococci which also replicate in Bacillus subti1is and Escherichia coli. Appl.Environ.Microbiol. 48, 726–731 (1904).Google Scholar
- J. Kok, J.M. van Dijl, J.M.B.M. van der Vossen and G. Venema. Cloning and expression of a Streptococcus cremoris proteinase in Baci11us subti1is and Streptococcus lactis. Appl.Environ.Microbiol. 50, 94–101 (1985).PubMedGoogle Scholar
- J.M.B.M. van der Vossen, J. Kok and G. Venema. Construction of cloning, promoter-screening, and terminator-screening shuttle vectors for Baci11us subtilis and Streptococcus lactis. Appl.Environ.Microbiol. 50, 540–542 (1985).PubMedGoogle Scholar
- J. Kok, W.M. de Vos, B. Vosman, J.M. van Dijl and G. Venema. Genetic marking of cryptic Streptococcus cremoris plasmids for the development of a transformation system. CEC Research and Training Program Biomol- ecular Engineering Contractants Meeting, Louvain-la-Neuve, Book of Abstracts, p 92 (1982).Google Scholar
- J. Kok, J.M.B.M. van der Vossen and G. Venema. Development of host-vector systems in lactic acid bacteria. CEC Research and Training Programme in Biomolecular Engineering, Progress Report, 319–325 (1984).Google Scholar
- J. Kok, J.M.B.M. van der Vossen and G. Venema. Construction of plasmid cloning vectors for lactic acid streptococci, also replicating in B. subti1is and E. coli. Abstract 7th European Meeting on Genetic Transformation, Paris, 1984, p. 106.Google Scholar
- J. Kok, J.M.B.M. van der Vossen and G. Venema. Construction of plasmid cloning vecotrs for lactic streptococci. CEC Meeting on Genetic Engineering of Microorganisms important for the Agro-food industries, Marseille, 1984, p 80.Google Scholar
- G. Venema, J. Kok, J.M.B.M. van der Vossen and S. Bron. Plasmid instability in Baci1lus subti1 is and the use of B. subti1is as an intermediate host for gene cloning in lactic streptococci. In: Molecular Breeding of Microorganisms. 4th Toyobo Biotechnology Foundation Symposion, Tokyo, 1–5 (1985).Google Scholar
- J. Kok, J. Maat, J.M.B.M. van der Vossen and G. Venema. International Patent Application PCT/EP85/00077 (1985).Google Scholar
Copyright information
© ECSC, EEC, EAEC, Brussels-Luxemburg 1986