Expression of the Bacillus subtilis sacB gene leads to sucrose sensitivity in the gram-positive bacterium Corynebacterium glutamicum but not in Streptomyces lividans

Jäger W, Schäfer A, Pühler A, Labes G, Wohlleben W (1992)
JOURNAL OF BACTERIOLOGY 174(16): 5462-5465.

Zeitschriftenaufsatz | Veröffentlicht | Englisch
 
Download
Es wurden keine Dateien hochgeladen. Nur Publikationsnachweis!
Autor*in
Jäger, W; Schäfer, A; Pühler, AlfredUniBi ; Labes, G; Wohlleben, W
Erscheinungsjahr
1992
Zeitschriftentitel
JOURNAL OF BACTERIOLOGY
Band
174
Ausgabe
16
Seite(n)
5462-5465
ISSN
0021-9193
Page URI
https://pub.uni-bielefeld.de/record/1647665

Zitieren

Jäger W, Schäfer A, Pühler A, Labes G, Wohlleben W. Expression of the Bacillus subtilis sacB gene leads to sucrose sensitivity in the gram-positive bacterium Corynebacterium glutamicum but not in Streptomyces lividans. JOURNAL OF BACTERIOLOGY. 1992;174(16):5462-5465.
Jäger, W., Schäfer, A., Pühler, A., Labes, G., & Wohlleben, W. (1992). Expression of the Bacillus subtilis sacB gene leads to sucrose sensitivity in the gram-positive bacterium Corynebacterium glutamicum but not in Streptomyces lividans. JOURNAL OF BACTERIOLOGY, 174(16), 5462-5465.
Jäger, W, Schäfer, A, Pühler, Alfred, Labes, G, and Wohlleben, W. 1992. “Expression of the Bacillus subtilis sacB gene leads to sucrose sensitivity in the gram-positive bacterium Corynebacterium glutamicum but not in Streptomyces lividans”. JOURNAL OF BACTERIOLOGY 174 (16): 5462-5465.
Jäger, W., Schäfer, A., Pühler, A., Labes, G., and Wohlleben, W. (1992). Expression of the Bacillus subtilis sacB gene leads to sucrose sensitivity in the gram-positive bacterium Corynebacterium glutamicum but not in Streptomyces lividans. JOURNAL OF BACTERIOLOGY 174, 5462-5465.
Jäger, W., et al., 1992. Expression of the Bacillus subtilis sacB gene leads to sucrose sensitivity in the gram-positive bacterium Corynebacterium glutamicum but not in Streptomyces lividans. JOURNAL OF BACTERIOLOGY, 174(16), p 5462-5465.
W. Jäger, et al., “Expression of the Bacillus subtilis sacB gene leads to sucrose sensitivity in the gram-positive bacterium Corynebacterium glutamicum but not in Streptomyces lividans”, JOURNAL OF BACTERIOLOGY, vol. 174, 1992, pp. 5462-5465.
Jäger, W., Schäfer, A., Pühler, A., Labes, G., Wohlleben, W.: Expression of the Bacillus subtilis sacB gene leads to sucrose sensitivity in the gram-positive bacterium Corynebacterium glutamicum but not in Streptomyces lividans. JOURNAL OF BACTERIOLOGY. 174, 5462-5465 (1992).
Jäger, W, Schäfer, A, Pühler, Alfred, Labes, G, and Wohlleben, W. “Expression of the Bacillus subtilis sacB gene leads to sucrose sensitivity in the gram-positive bacterium Corynebacterium glutamicum but not in Streptomyces lividans”. JOURNAL OF BACTERIOLOGY 174.16 (1992): 5462-5465.

70 Zitationen in Europe PMC

Daten bereitgestellt von Europe PubMed Central.

An update of the suicide plasmid-mediated genome editing system in Corynebacterium glutamicum.
Wang T, Li Y, Li J, Zhang D, Cai N, Zhao G, Ma H, Shang C, Ma Q, Xu Q, Chen N., Microb Biotechnol 12(5), 2019
PMID: 31180185
Mu-driven transposition of recombinant mini-Mu unit DNA in the Corynebacterium glutamicum chromosome.
Gorshkova NV, Lobanova JS, Tokmakova IL, Smirnov SV, Akhverdyan VZ, Krylov AA, Mashko SV., Appl Microbiol Biotechnol 102(6), 2018
PMID: 29392386
Building a genome engineering toolbox in nonmodel prokaryotic microbes.
Freed E, Fenster J, Smolinski SL, Walker J, Henard CA, Gill R, Eckert CA., Biotechnol Bioeng 115(9), 2018
PMID: 29750332
Recombineering using RecET in Corynebacterium glutamicum ATCC14067 via a self-excisable cassette.
Huang Y, Li L, Xie S, Zhao N, Han S, Lin Y, Zheng S., Sci Rep 7(1), 2017
PMID: 28801604
Genome sequence of the soil bacterium Corynebacterium callunae type strain DSM 20147(T).
Persicke M, Albersmeier A, Bednarz H, Niehaus K, Kalinowski J, Rückert C., Stand Genomic Sci 10(), 2015
PMID: 26203323
Reducing lactate secretion by ldhA Deletion in L-glutamate- producing strain Corynebacterium glutamicum GDK-9.
Zhang D, Guan D, Liang J, Guo C, Xie X, Zhang C, Xu Q, Chen N., Braz J Microbiol 45(4), 2014
PMID: 25763057
From zero to hero - production of bio-based nylon from renewable resources using engineered Corynebacterium glutamicum.
Kind S, Neubauer S, Becker J, Yamamoto M, Völkert M, Abendroth Gv, Zelder O, Wittmann C., Metab Eng 25(), 2014
PMID: 24831706
Production of L-lysine on different silage juices using genetically engineered Corynebacterium glutamicum.
Neuner A, Wagner I, Sieker T, Ulber R, Schneider K, Peifer S, Heinzle E., J Biotechnol 163(2), 2013
PMID: 22898177
NrdH-redoxin of Mycobacterium tuberculosis and Corynebacterium glutamicum dimerizes at high protein concentration and exclusively receives electrons from thioredoxin reductase.
Van Laer K, Dziewulska AM, Fislage M, Wahni K, Hbeddou A, Collet JF, Versées W, Mateos LM, Tamu Dufe V, Messens J., J Biol Chem 288(11), 2013
PMID: 23362277
Metabolic engineering and flux analysis of Corynebacterium glutamicum for L-serine production.
Lai S, Zhang Y, Liu S, Liang Y, Shang X, Chai X, Wen T., Sci China Life Sci 55(4), 2012
PMID: 22566084
Effective expression of human proteins on bacterial magnetic particles in an anchor gene deletion mutant of Magnetospirillum magneticum AMB-1.
Kanetsuki Y, Tanaka M, Tanaka T, Matsunaga T, Yoshino T., Biochem Biophys Res Commun 426(1), 2012
PMID: 22846572
Construction of in vitro transcription system for Corynebacterium glutamicum and its use in the recognition of promoters of different classes.
Holátko J, Silar R, Rabatinová A, Sanderová H, Halada P, Nešvera J, Krásný L, Pátek M., Appl Microbiol Biotechnol 96(2), 2012
PMID: 22885668
From zero to hero--design-based systems metabolic engineering of Corynebacterium glutamicum for L-lysine production.
Becker J, Zelder O, Häfner S, Schröder H, Wittmann C., Metab Eng 13(2), 2011
PMID: 21241816
Efficient markerless gene replacement in Corynebacterium glutamicum using a new temperature-sensitive plasmid.
Okibe N, Suzuki N, Inui M, Yukawa H., J Microbiol Methods 85(2), 2011
PMID: 21362445
Tools for genetic manipulations in Corynebacterium glutamicum and their applications.
Nešvera J, Pátek M., Appl Microbiol Biotechnol 90(5), 2011
PMID: 21519933
Factors enhancing L-valine production by the growth-limited L-isoleucine auxotrophic strain Corynebacterium glutamicum DeltailvA DeltapanB ilvNM13 (pECKAilvBNC).
Denina I, Paegle L, Prouza M, Holátko J, Pátek M, Nesvera J, Ruklisha M., J Ind Microbiol Biotechnol 37(7), 2010
PMID: 20364396
Random transposon vectors pUTTns for the markerless integration of exogenous genes into gram-negative eubacteria chromosomes.
Li R, Wang G, Shen B, Wang R, Song Y, Li S, Jiang J., J Microbiol Methods 79(2), 2009
PMID: 19778558
Metabolic engineering of the tricarboxylic acid cycle for improved lysine production by Corynebacterium glutamicum.
Becker J, Klopprogge C, Schröder H, Wittmann C., Appl Environ Microbiol 75(24), 2009
PMID: 19820141
DivIVA is required for polar growth in the MreB-lacking rod-shaped actinomycete Corynebacterium glutamicum.
Letek M, Ordóñez E, Vaquera J, Margolin W, Flärdh K, Mateos LM, Gil JA., J Bacteriol 190(9), 2008
PMID: 18296522
Curing of four different plasmids in Yersinia pestis using plasmid incompatibility.
Ni B, Du Z, Guo Z, Zhang Y, Yang R., Lett Appl Microbiol 47(4), 2008
PMID: 19241516
A novel method to generate unmarked gene deletions in the intracellular pathogen Rhodococcus equi using 5-fluorocytosine conditional lethality.
van der Geize R, de Jong W, Hessels GI, Grommen AW, Jacobs AA, Dijkhuizen L., Nucleic Acids Res 36(22), 2008
PMID: 18984616
Metabolic engineering of Corynebacterium glutamicum for cadaverine fermentation.
Mimitsuka T, Sawai H, Hatsu M, Yamada K., Biosci Biotechnol Biochem 71(9), 2007
PMID: 17895539
Characterization and use of catabolite-repressed promoters from gluconate genes in Corynebacterium glutamicum.
Letek M, Valbuena N, Ramos A, Ordóñez E, Gil JA, Mateos LM., J Bacteriol 188(2), 2006
PMID: 16385030
Temperature-sensitive cloning vector for Corynebacterium glutamicum.
Nakamura J, Kanno S, Kimura E, Matsui K, Nakamatsu T, Wachi M., Plasmid 56(3), 2006
PMID: 16828161
Feedback-resistant acetohydroxy acid synthase increases valine production in Corynebacterium glutamicum.
Elisáková V, Pátek M, Holátko J, Nesvera J, Leyval D, Goergen JL, Delaunay S., Appl Environ Microbiol 71(1), 2005
PMID: 15640189
Analysis of genes involved in arsenic resistance in Corynebacterium glutamicum ATCC 13032.
Ordóñez E, Letek M, Valbuena N, Gil JA, Mateos LM., Appl Environ Microbiol 71(10), 2005
PMID: 16204540
Multiple large segment deletion method for Corynebacterium glutamicum.
Suzuki N, Nonaka H, Tsuge Y, Okayama S, Inui M, Yukawa H., Appl Microbiol Biotechnol 69(2), 2005
PMID: 15843930
Manipulating corynebacteria, from individual genes to chromosomes.
Vertès AA, Inui M, Yukawa H., Appl Environ Microbiol 71(12), 2005
PMID: 16332735
Metabolic engineering of Corynebacterium glutamicum for fuel ethanol production under oxygen-deprivation conditions.
Inui M, Kawaguchi H, Murakami S, Vertès AA, Yukawa H., J Mol Microbiol Biotechnol 8(4), 2004
PMID: 16179801
Streptomyces lividans and Brevibacterium lactofermentum as heterologous hosts for the production of X22 xylanase from Aspergillus nidulans.
Díaz M, Adham SA, Ramón D, Gil JA, Santamaría RI., Appl Microbiol Biotechnol 65(4), 2004
PMID: 15168093
PorA represents the major cell wall channel of the Gram-positive bacterium Corynebacterium glutamicum.
Costa-Riu N, Burkovski A, Krämer R, Benz R., J Bacteriol 185(16), 2003
PMID: 12896997
Unmarked gene deletion mutagenesis of kstD, encoding 3-ketosteroid Delta1-dehydrogenase, in Rhodococcus erythropolis SQ1 using sacB as counter-selectable marker.
van der Geize R, Hessels GI, van Gerwen R, van der Meijden P, Dijkhuizen L., FEMS Microbiol Lett 205(2), 2001
PMID: 11750802
Targeted disruption of the kstD gene encoding a 3-ketosteroid delta(1)-dehydrogenase isoenzyme of Rhodococcus erythropolis strain SQ1.
van Der Geize R, Hessels GI, van Gerwen R, Vrijbloed JW, van Der Meijden P, Dijkhuizen L., Appl Environ Microbiol 66(5), 2000
PMID: 10788377
High efficiency gene replacement in Salmonella enteritidis: chimeric fimbrins containing a T-cell epitope from Leishmania major.
White AP, Collinson SK, Burian J, Clouthier SC, Banser PA, Kay WW., Vaccine 17(17), 1999
PMID: 10367948
Counterselectable markers: untapped tools for bacterial genetics and pathogenesis.
Reyrat JM, Pelicic V, Gicquel B, Rappuoli R., Infect Immun 66(9), 1998
PMID: 9712740
Characterization of the basic replicon of Rhodococcus plasmid pSOX and development of a Rhodococcus-Escherichia coli shuttle vector.
Denis-Larose C, Bergeron H, Labbé D, Greer CW, Hawari J, Grossman MJ, Sankey BM, Lau PC., Appl Environ Microbiol 64(11), 1998
PMID: 9797291
The sacB gene cannot be used as a counter-selectable marker in Pasteurella multocida.
Jost BH, Homchampa P, Strugnell RA, Adler B., Mol Biotechnol 8(2), 1997
PMID: 9406189
Expression of the Bacillus subtilis sacB gene confers sucrose sensitivity on mycobacteria.
Pelicic V, Reyrat JM, Gicquel B., J Bacteriol 178(4), 1996
PMID: 8576057
Mutational analysis of the Streptomyces scabies esterase signal peptide.
Hale VA, Schottel JL., Appl Microbiol Biotechnol 45(1-2), 1996
PMID: 8920191
Expression in bacteria other than Escherichia coli.
Billman-Jacobe H., Curr Opin Biotechnol 7(5), 1996
PMID: 8939623
Direct selection of cloned DNA in Bacillus subtilis based on sucrose-induced lethality.
Bramucci MG, Nagarajan V., Appl Environ Microbiol 62(11), 1996
PMID: 8899981
l-Isoleucine Production with Corynebacterium glutamicum: Further Flux Increase and Limitation of Export.
Morbach S, Sahm H, Eggeling L., Appl Environ Microbiol 62(12), 1996
PMID: 16535457
Recent advances in the physiology and genetics of amino acid-producing bacteria.
Jetten MS, Sinskey AJ., Crit Rev Biotechnol 15(1), 1995
PMID: 7736600
Corynebacterium glutamicum DNA is subjected to methylation-restriction in Escherichia coli.
Tauch A, Kirchner O, Wehmeier L, Kalinowski J, Pühler A., FEMS Microbiol Lett 123(3), 1994
PMID: 7988915

11 References

Daten bereitgestellt von Europe PubMed Central.

Positive selection procedure for entrapment of insertion sequence elements in gram-negative bacteria.
Gay P, Le Coq D, Steinmetz M, Berkelman T, Kado CI., J. Bacteriol. 164(2), 1985
PMID: 2997137
Pleiotropic mutations affecting sporulation conditions and the syntheses of extracellular enzymes in Bacillus subtilis 168.
Kunst F, Pascal M, Lepesant-Kejzlarova J, Lepesant JA, Billault A, Dedonder R., Biochimie 56(11-12), 1974
PMID: 4219582
Nucleotide sequence and exact localization of the neomycin phosphotransferase gene from transposon Tn5.
Beck E, Ludwig G, Auerswald EA, Reiss B, Schaller H., Gene 19(3), 1982
PMID: 6295884
[Genetic analysis of sacB, the structural gene of a secreted enzyme, levansucrase of Bacillus subtilis Marburg].
Steinmetz M, Le Coq D, Djemia HB, Gay P., Mol. Gen. Genet. 191(1), 1983
PMID: 6412036
Cloning of antibiotic resistance and nutritional genes in streptomycetes.
Thompson CJ, Ward JM, Hopwood DA., J. Bacteriol. 151(2), 1982
PMID: 6284706
High-frequency conjugal plasmid transfer from gram-negative Escherichia coli to various gram-positive coryneform bacteria.
Schafer A, Kalinowski J, Simon R, Seep-Feldhaus AH, Puhler A., J. Bacteriol. 172(3), 1990
PMID: 2106514
Export

Markieren/ Markierung löschen
Markierte Publikationen

Open Data PUB

Web of Science

Dieser Datensatz im Web of Science®
Quellen

PMID: 1644774
PubMed | Europe PMC

Suchen in

Google Scholar