| NCIMB number | NCIMB 8303 |
| Deposit type | Bacteria |
| Type strain | Yes |
| GMO | No |
| Taxon name | Desulfovibrio vulgaris subsp. vulgaris |
| Depositor designation | Hildenborough |
| Preservation method | Lyophilised |
| Preserved as | Desulfovibrio desulfuricans |
| Price band | B |
| Media | 017 |
| Gas regime | anaerobic |
| Incubation period | 16 days |
| ACDP category | 1 |
| Cellular Motility | Yes |
| Gram stain | Gram Negative |
| Depositor Name | M.E.Adams and K.R.Butlin |
| Depositor Company | NCL |
| Depositor Address | Teddington Middlesex U.K. |
| Source | "Wealden Clay, Hildenborough, Kent, U.K." |
| Isolated by | M.E. Adams |
| Date of Isolation | 01/01/1946 |
| Date of Accession | 01/01/1959 |
| Other collection IDs | ATCC29579 DSM644 |
| Yeast? | False |
| K12 | No |
| References | Nature (1949) 164 p670 Postgate J.R. (1951) J. Gen. Microbiol. 5 pp714-725 Postgate J.R. (1952) J. gen. Microbiol. 6 p128 Postgate J.R. (1952) Research 5 p189 Postgate J.R. (1953) J. gen. Microbiol. 9 p440 Grossman J.P. and Postgate J.R. (1953) Nature 171 p600 Grossman J.P. and Postgate J.R. (1953) Proc. Soc. appl. Bact. 16 pp1-9 Sadana J.C. (1954) J. Bact. 67 p547 Biochim. biophys. Acta (1954) 14 p287 Grossman J.P. and Postgate J.R. (1955) J. gen. Microbiol. 12 p429 Postgate J.R. (1956) J. gen. Microbiol. 14 p545 Sadana J.C. and Jagannathan V. (1956) Biochim. biophys. Acta 19 p440 Gest H. and Peck H.D. (1956) J. Bact. 71 p70 Littlewood D. and Postgate J.R. (1957) J. gen. Microbiol. 17 p378 Biochim. biophys. Acta (1959) 32 p592 Proc. Nat. Acad. Sci. (Wash.) (1959) 45 p701 Le Gall J. et al (1959) J. Bact. 96 p223 Kadota H. et al (1960) Mem. of Res. Inst. for Food Sci. Kyoto Univ. 22 p20 Mechalas B.J. and Rittenberg (1960) J. Bact. 80 p501 Booth G.H. (1960) J. appl. Bact. 23 pp125-129 Peck H.D. (1961) J. Bact. 82 p933 Adams M.E. and Postgate J.R. (1961) J. gen. Microbiol. 24 p291 Akagi and Campbell L.L. (1962) J. Bact. 84 pp1194-1201 Baker F.D. et al (1962) J. Bact. 84 p973 MacPherson R. and Miller J.D.A. (1963) J. gen. Microbiol. 31 pp365-373 Sigale N. et al (1963) J. Bact. 85 p1315 Postgate J.R. (1963) Appl. Microbiol. 11(3) pp265-267 Kaplan I.R. and Rittenberg S.C. (1964) J. gen. Microbiol. 34 p195 Kaplan I.R. and Rittenberg S.C. (1964) J. gen. Microbiol. 34 p213 Saunders G.F., Campbell L.L. and Postgate J.R. (1964) J. Bact. 87 p1073 Saleh A.H., MacPherson R. and Miller J.D.A. (1964) J. appl. Bact. 27 p281 Sadana J.C. and Rittenberg D. (1964) Archs Biochem. Biophys. 108 p255 Suh B. and Akagi J.M. (1966) J. Bact. 91 p2281 Postgate J.R. and Campbell L.L. (1966) Bact. Rev. 30 p732 Brown M.S. and Akagi J.M.(1966) J. Bact.92(4) p1273 Ambler R.P. (1968) Proc. Biochem., Soc. 47P Biochem. J. 109. The amino acid sequence of cytochrome C3 from Desulfovibrio vulgaris. Yates M.G. (1969) Biochim. biophys. Acta 171 pp299-310. A non-specific adenine nucleotide deaminase from Desulphovibrio desulphuricans. Brusche M. and Gaer J. (1972) Biochim. biophys. Acta 263 pp279-282 Inorganic Microbial Sulfur Metabolism, Peck, H.D. Jr, LeGall, J. eds 1994, vol 243, pp 26-270 Can. J. Microbiol. Rev. Can. Microbiol. 1993, vol 39, no 4, pp 402-411 J. Gen. Microbiol. 1992, vol 138, no 7, pp 1393-1397 IJSEM (2002) 52:1307 Humphries, A. C. Macaskie, L. E. (2005). Reduction of CrVI by palladized biomass of Desulfovibrio vulgaris NCIMB 8303. J Chem Technol Biotechnol 80 , 1378-1382. Int J Syst Evol Microbiol, Sep 2009; 59: 2208 - 2214 Kinship in the SRP RNA family, RNA Biol 6(5), 508-516, 2009 The tmRDB and SRPDB resources, Nucleic Acids Res 34(Databaseissue), D163-D168, 2006 Phylogenetic analysis reveals multiple lateral transfers of adenosine-5-phosphosulfate reductase genes among sulfate-reducing microorganisms, J Bacteriol 184(1), 278-289, 2002 Polysulfide reduction by Clostridium relatives isolated from sulfate-reducing enrichment cultures, J Biosci Bioeng 109(4), 372-380, 2010 Cadmium accumulation and DNA homology with metal resistance genes in sulfate-reducing bacteria, Appl Environ Microbiol 71(8), 4610-4618, 2005 Genetic diversity and expression of the [NiFe] hydrogenase large-subunit gene of Desulfovibrio spp. in environmental samples, Appl Environ Microbiol 63(11), 4360-4369, 1997 A rubrerythrin operon and nigerythrin gene in Desulfovibrio vulgaris (Hildenborough), J Bacteriol 179(14), 4607-4615, 1997 Cloning and sequencing of the gene for rubrerythrin from Desulfovibrio vulgaris (Hildenborough), Biochemistry 30(46), 11118-11123, 1991 Conservation of the genes for dissimilatory sulfite reductase from Desulfovibrio vulgaris and Archaeoglobus fulgidus allows their detection by PCR, Appl Environ Microbiol 61(1), 290-296, 1995 Hitherto unknown [Fe-Fe]-hydrogenase gene diversity in anaerobes and anoxic enrichments from a moderately acidic fen, Appl Environ Microbiol 76(6), 2027-2031, 2010 Identification of a large family of genes for putative chemoreceptor proteins in an ordered library of the Desulfovibrio vulgaris Hildenborough genome, J Bacteriol 176(2), 351-358, 1994 Induction and partial purification of bacteriophages from Desulfovibrio vulgaris (Hildenborough) and Desulfovibrio desulfuricans ATCC 13541, J Gen Microbiol 137(7), 1545-1549, 1991 ISD1, an insertion element from the sulfate-reducing bacterium Desulfovibrio vulgaris Hildenborough: structure, transposition, and distribution, Appl Environ Microbiol 64(1), 53-61, 1998 Molecular characterization of microbial communities in Canadian pulp and paper activated sludge and quantification of a novel Thiothrix eikelboomii-like bulking filament, Can J Microbiol 52(5), 494-500, 2006 Multi-frequency EPR and high-resolution Mossbauer spectroscopy of a putative [6Fe-6S] prismane-cluster-containing protein from Desulfovibrio vulgaris (Hildenborough). Characterization of a supercluster and superspin model protein, Eur J Biochem 206(3), 705-719, 1992 Primary structure of the assimilatory-type sulfite reductase from Desulfovibrio vulgaris (Hildenborough): cloning and nucleotide sequence of the reductase gene, Biochemistry 30(41), 9900-9907, 1991 Purification and biochemical characterization of a putative [6Fe-6S] prismane-cluster-containing protein from Desulfovibrio vulgaris (Hildenborough), Eur J Biochem 206(3), 697-704, 1992 Reduction of uranium by cytochrome c3 of Desulfovibrio vulgaris, Appl Environ Microbiol 59(11), 3572-3576, 1993 Rubrerythrin and rubredoxin oxidoreductase in Desulfovibrio vulgaris: a novel oxidative stress protection system, J Bacteriol 183(1), 101-108, 2001 The "prismane" protein resolved: X-ray structure at 1.7 A and multiple spectroscopy of two novel 4Fe clusters, J Biol Inorg Chem 3, 81-95, 1998 The dcr gene family of Desulfovibrio: implications from the sequence of dcrH and phylogenetic comparison with other mcp genes, Antonie Van Leeuwenhoek 70(1), 21-29, 1996 The genome sequence of the anaerobic, sulfate-reducing bacterium Desulfovibrio vulgaris Hildenborough, Nat Biotechnol 22(5), 554-559, 2004 The genome sequence of the anaerobic, sulfate-reducing bacterium Desulfovibrio vulgaris Hildenborough, Nature Biotech 22(5), 554-559, 2004 The operon for the Fe-hydrogenase in Desulfovibrio vulgaris (Hildenborough): mapping of the transcript and regulation of expression, FEMS Microbiol Lett 110(1), 85-90, 1993 The primary structure of a protein containing a putative [6Fe-6S] prismane cluster from Desulfovibrio vulgaris (Hildenborough), Eur J Biochem 208(2), 435-442, 1992 |
| PubMed Publication | https://www.ncbi.nlm.nih.gov/m/pubmed/16570313https://www.ncbi.nlm.nih.gov/m/pubmed/15818565https://www.ncbi.nlm.nih.gov/m/pubmed/15604792https://www.ncbi.nlm.nih.gov/m/pubmed/9750334https://www.ncbi.nlm.nih.gov/m/pubmed/1512570https://www.ncbi.nlm.nih.gov/m/pubmed/8388770https://www.ncbi.nlm.nih.gov/m/pubmed/1683398 |
| NCIMB number | NCIMB 8303 |
| Deposit type | Bacteria |
| Type strain | Yes |
| GMO | No |
| Taxon name | Desulfovibrio vulgaris subsp. vulgaris |
| Depositor designation | Hildenborough |
| Preservation method | Lyophilised |
| Preserved as | Desulfovibrio desulfuricans |
| Price band | B |
| Media | 017 |
| Gas regime | anaerobic |
| Incubation period | 16 days |
| ACDP category | 1 |
| Cellular Motility | Yes |
| Gram stain | Gram Negative |
| Depositor Name | M.E.Adams and K.R.Butlin |
| Depositor Company | NCL |
| Depositor Address | Teddington Middlesex U.K. |
| Source | "Wealden Clay, Hildenborough, Kent, U.K." |
| Isolated by | M.E. Adams |
| Date of Isolation | 01/01/1946 |
| Date of Accession | 01/01/1959 |
| Other collection IDs | ATCC29579 DSM644 |
| Yeast? | False |
| K12 | No |
| References | Nature (1949) 164 p670 Postgate J.R. (1951) J. Gen. Microbiol. 5 pp714-725 Postgate J.R. (1952) J. gen. Microbiol. 6 p128 Postgate J.R. (1952) Research 5 p189 Postgate J.R. (1953) J. gen. Microbiol. 9 p440 Grossman J.P. and Postgate J.R. (1953) Nature 171 p600 Grossman J.P. and Postgate J.R. (1953) Proc. Soc. appl. Bact. 16 pp1-9 Sadana J.C. (1954) J. Bact. 67 p547 Biochim. biophys. Acta (1954) 14 p287 Grossman J.P. and Postgate J.R. (1955) J. gen. Microbiol. 12 p429 Postgate J.R. (1956) J. gen. Microbiol. 14 p545 Sadana J.C. and Jagannathan V. (1956) Biochim. biophys. Acta 19 p440 Gest H. and Peck H.D. (1956) J. Bact. 71 p70 Littlewood D. and Postgate J.R. (1957) J. gen. Microbiol. 17 p378 Biochim. biophys. Acta (1959) 32 p592 Proc. Nat. Acad. Sci. (Wash.) (1959) 45 p701 Le Gall J. et al (1959) J. Bact. 96 p223 Kadota H. et al (1960) Mem. of Res. Inst. for Food Sci. Kyoto Univ. 22 p20 Mechalas B.J. and Rittenberg (1960) J. Bact. 80 p501 Booth G.H. (1960) J. appl. Bact. 23 pp125-129 Peck H.D. (1961) J. Bact. 82 p933 Adams M.E. and Postgate J.R. (1961) J. gen. Microbiol. 24 p291 Akagi and Campbell L.L. (1962) J. Bact. 84 pp1194-1201 Baker F.D. et al (1962) J. Bact. 84 p973 MacPherson R. and Miller J.D.A. (1963) J. gen. Microbiol. 31 pp365-373 Sigale N. et al (1963) J. Bact. 85 p1315 Postgate J.R. (1963) Appl. Microbiol. 11(3) pp265-267 Kaplan I.R. and Rittenberg S.C. (1964) J. gen. Microbiol. 34 p195 Kaplan I.R. and Rittenberg S.C. (1964) J. gen. Microbiol. 34 p213 Saunders G.F., Campbell L.L. and Postgate J.R. (1964) J. Bact. 87 p1073 Saleh A.H., MacPherson R. and Miller J.D.A. (1964) J. appl. Bact. 27 p281 Sadana J.C. and Rittenberg D. (1964) Archs Biochem. Biophys. 108 p255 Suh B. and Akagi J.M. (1966) J. Bact. 91 p2281 Postgate J.R. and Campbell L.L. (1966) Bact. Rev. 30 p732 Brown M.S. and Akagi J.M.(1966) J. Bact.92(4) p1273 Ambler R.P. (1968) Proc. Biochem., Soc. 47P Biochem. J. 109. The amino acid sequence of cytochrome C3 from Desulfovibrio vulgaris. Yates M.G. (1969) Biochim. biophys. Acta 171 pp299-310. A non-specific adenine nucleotide deaminase from Desulphovibrio desulphuricans. Brusche M. and Gaer J. (1972) Biochim. biophys. Acta 263 pp279-282 Inorganic Microbial Sulfur Metabolism, Peck, H.D. Jr, LeGall, J. eds 1994, vol 243, pp 26-270 Can. J. Microbiol. Rev. Can. Microbiol. 1993, vol 39, no 4, pp 402-411 J. Gen. Microbiol. 1992, vol 138, no 7, pp 1393-1397 IJSEM (2002) 52:1307 Humphries, A. C. Macaskie, L. E. (2005). Reduction of CrVI by palladized biomass of Desulfovibrio vulgaris NCIMB 8303. J Chem Technol Biotechnol 80 , 1378-1382. Int J Syst Evol Microbiol, Sep 2009; 59: 2208 - 2214 Kinship in the SRP RNA family, RNA Biol 6(5), 508-516, 2009 The tmRDB and SRPDB resources, Nucleic Acids Res 34(Databaseissue), D163-D168, 2006 Phylogenetic analysis reveals multiple lateral transfers of adenosine-5-phosphosulfate reductase genes among sulfate-reducing microorganisms, J Bacteriol 184(1), 278-289, 2002 Polysulfide reduction by Clostridium relatives isolated from sulfate-reducing enrichment cultures, J Biosci Bioeng 109(4), 372-380, 2010 Cadmium accumulation and DNA homology with metal resistance genes in sulfate-reducing bacteria, Appl Environ Microbiol 71(8), 4610-4618, 2005 Genetic diversity and expression of the [NiFe] hydrogenase large-subunit gene of Desulfovibrio spp. in environmental samples, Appl Environ Microbiol 63(11), 4360-4369, 1997 A rubrerythrin operon and nigerythrin gene in Desulfovibrio vulgaris (Hildenborough), J Bacteriol 179(14), 4607-4615, 1997 Cloning and sequencing of the gene for rubrerythrin from Desulfovibrio vulgaris (Hildenborough), Biochemistry 30(46), 11118-11123, 1991 Conservation of the genes for dissimilatory sulfite reductase from Desulfovibrio vulgaris and Archaeoglobus fulgidus allows their detection by PCR, Appl Environ Microbiol 61(1), 290-296, 1995 Hitherto unknown [Fe-Fe]-hydrogenase gene diversity in anaerobes and anoxic enrichments from a moderately acidic fen, Appl Environ Microbiol 76(6), 2027-2031, 2010 Identification of a large family of genes for putative chemoreceptor proteins in an ordered library of the Desulfovibrio vulgaris Hildenborough genome, J Bacteriol 176(2), 351-358, 1994 Induction and partial purification of bacteriophages from Desulfovibrio vulgaris (Hildenborough) and Desulfovibrio desulfuricans ATCC 13541, J Gen Microbiol 137(7), 1545-1549, 1991 ISD1, an insertion element from the sulfate-reducing bacterium Desulfovibrio vulgaris Hildenborough: structure, transposition, and distribution, Appl Environ Microbiol 64(1), 53-61, 1998 Molecular characterization of microbial communities in Canadian pulp and paper activated sludge and quantification of a novel Thiothrix eikelboomii-like bulking filament, Can J Microbiol 52(5), 494-500, 2006 Multi-frequency EPR and high-resolution Mossbauer spectroscopy of a putative [6Fe-6S] prismane-cluster-containing protein from Desulfovibrio vulgaris (Hildenborough). Characterization of a supercluster and superspin model protein, Eur J Biochem 206(3), 705-719, 1992 Primary structure of the assimilatory-type sulfite reductase from Desulfovibrio vulgaris (Hildenborough): cloning and nucleotide sequence of the reductase gene, Biochemistry 30(41), 9900-9907, 1991 Purification and biochemical characterization of a putative [6Fe-6S] prismane-cluster-containing protein from Desulfovibrio vulgaris (Hildenborough), Eur J Biochem 206(3), 697-704, 1992 Reduction of uranium by cytochrome c3 of Desulfovibrio vulgaris, Appl Environ Microbiol 59(11), 3572-3576, 1993 Rubrerythrin and rubredoxin oxidoreductase in Desulfovibrio vulgaris: a novel oxidative stress protection system, J Bacteriol 183(1), 101-108, 2001 The "prismane" protein resolved: X-ray structure at 1.7 A and multiple spectroscopy of two novel 4Fe clusters, J Biol Inorg Chem 3, 81-95, 1998 The dcr gene family of Desulfovibrio: implications from the sequence of dcrH and phylogenetic comparison with other mcp genes, Antonie Van Leeuwenhoek 70(1), 21-29, 1996 The genome sequence of the anaerobic, sulfate-reducing bacterium Desulfovibrio vulgaris Hildenborough, Nat Biotechnol 22(5), 554-559, 2004 The genome sequence of the anaerobic, sulfate-reducing bacterium Desulfovibrio vulgaris Hildenborough, Nature Biotech 22(5), 554-559, 2004 The operon for the Fe-hydrogenase in Desulfovibrio vulgaris (Hildenborough): mapping of the transcript and regulation of expression, FEMS Microbiol Lett 110(1), 85-90, 1993 The primary structure of a protein containing a putative [6Fe-6S] prismane cluster from Desulfovibrio vulgaris (Hildenborough), Eur J Biochem 208(2), 435-442, 1992 |
| PubMed Publication | https://www.ncbi.nlm.nih.gov/m/pubmed/16570313https://www.ncbi.nlm.nih.gov/m/pubmed/15818565https://www.ncbi.nlm.nih.gov/m/pubmed/15604792https://www.ncbi.nlm.nih.gov/m/pubmed/9750334https://www.ncbi.nlm.nih.gov/m/pubmed/1512570https://www.ncbi.nlm.nih.gov/m/pubmed/8388770https://www.ncbi.nlm.nih.gov/m/pubmed/1683398 |