| NCIMB number | NCIMB 9134 |
| Deposit type | Bacteria |
| Type strain | Yes |
| GMO | No |
| Taxon name | Bacillus thuringiensis |
| Depositor designation | N.R.Smith996 Mattes |
| Preservation method | Lyophilised |
| Price band | A |
| Media | 001 |
| Gas regime | aerobic |
| Incubation period | 3 days |
| Growth factors (and/or information) | CM3, 30C, 1d: soft consistency, protein crystals seen. |
| ACDP category | 1 |
| Colony Edge | Irregular |
| Colony Surface | Rough |
| Colony Shape | Circular |
| Colony Elevation | Flat |
| Colony Colour | Grey |
| Colony Opacity | Opaque |
| Cellular Shape | Group 1A Stout Rods |
| Cellular Size | short |
| Cellular Motility | Yes |
| Gram stain | Gram Positive |
| Cell inclusion bodies | Spores |
| Cellular (Other) | Straight Axis, Parallel Sides, Rounded Ends |
| Depositor Name | Clark |
| Depositor Company | American Type Culture Collection (ATCC) |
| Depositor Address | 12301 Parklawn Drive Rockville Maryland 20852 U.S.A. |
| Source | Mediterranean flour moth (Ephestia kuhniella) |
| Date of Accession | 31/05/1960 |
| History | E.A.Steinhaus -- O.Mattes |
| Other collection IDs | ATCC10792 CCEB457 CECT197 CIP53.137 CN3624 DSM2046 IAM12077 LBGB4034 NCIMB9207 NCDO1146 |
| Yeast? | False |
| K12 | No |
| References | Z. angew. Ent. (1915) 2 p29 Proom H. and Knight B.C.J.G. (1955) J. gen. Microbiol. 13 p474 Ikezawa H. and Taguchi R. (1981) Meth. Enzym. 71 pp731-741. Phosphatidylinositol-specific phospholipase C from Bacillus cereus and Bacillus thuringiensis. The tmRNA website: reductive evolution of tmRNA in plastids and other endosymbionts, Nucleic Acids Res 32(Databaseissue), D104-D108, 2004 (Unknown), The aerobic endospore-forming bacteria, Academic press, London , 217-239, 1981 (Unknown), Int J Syst Bacteriol 45, 443, 1995 (Unknown), Int J Syst Bacteriol 30, 258, 1980 Bacillus amylolyticus sp. nov., nom. rev., Bacillus lautus sp. nov., nom. rev., Bacillus pabuli sp. nov., nom. rev., and Bacillus validus sp. nov., nom. rev, Int J Syst Bacteriol 34, 224-226, 1984 Molecular identification of rRNA group 3 bacilli (Ash, Farrow, Wallbanks and Collins) using a PCR probe test. Proposal for the creation of a new genus Paenibacillus, Antonie Van Leeuwenhoek 64(3-4), 253-260, 1993 A numerical classification of the genus Bacillus, J Gen Microbiol 134(7), 1847-1882, 1988 Approved Lists of Bacterial Names, Int J Syst Bacteriol 30, 225-420, 1980 Bacillus anthracis diverges from related clades of the Bacillus cereus group in 16S-23S ribosomal DNA intergenic transcribed spacers containing tRNA genes, Appl Environ Microbiol 69(1), 33-40, 2003 Cloning and nucleotide sequence analysis of gyrB of Bacillus cereus, B. thuringiensis, B. mycoides, and B. anthracis and their application to the detection of B. cereus in rice, Appl Environ Microbiol 65(4), 1483-1490, 1999 Development of a real-time PCR assay for detection and quantification of enterotoxigenic members of Bacillus cereus group in food samples, Int J Food Microbiol 135(1), 15-21, 2009 DnaJ sequences of Bacillus cereus strains isolated from outbreaks of hospital infection are highly similar to Bacillus anthracis, Diagn Microbiol Infect Dis 70(3), 307-315, 2011 Evaluation of low molecular weight RNA profiles and ribotyping to differentiate some Bacillus species, Syst Appl Microbiol 18, 582-589, 1995 Genomic characterization of the Bacillus cereus sensu lato species: Backdrop to the evolution of Bacillus anthracis, Genome Res 22(8), 1512-1524, 2012 Oligonucleotide microarray for identification of Bacillus anthracis based on intergenic transcribed spacers in ribosomal DNA, FEMS Microbiol Lett 240(2), 215-223, 2004 PCR assay of the groEL gene for detection and differentiation of Bacillus cereus group cells, Appl Environ Microbiol 69(8), 4502-4510, 2003 Phylogenetic heterogeneity of the genus bacillus revealed by comparative analysis of small subunit ribosomal RNA sequences, Lett Appl Microbiol 13, 202-206, 1991 Rapid identification of closely related probiotic Bacillus cereus strains and differentiation from wild type Bacilli, Arch Lebensmittelhyg 53, 52-59, 2002 The DNA base composition of the type strains of the genus Bacillus, Syst Appl Microbiol 6, 60-65, 1985 Rapid species identification of seafood spoilage and pathogenic Gram-positive bacteria by MALDI-TOF mass fingerprinting, Electrophoresis 32(21), 2951-2965, 2011 Phylogeny of spore-forming lactic acid bacteria based on 16S rRNA gene sequences, FEMS Microbiol Lett 115(1), 13-17, 1994 Widespread occurrence of non-phosphorylating glyceraldehyde-3-phosphate dehydrogenase among gram-positive bacteria, Int Microbiol 8(4), 251-258, 2005 Fluorescent Amplified Fragment Length Polymorphism Analysis of Norwegian Bacillus cereus and Bacillus thuringiensis Soil Isolates, Appl Environ Microbiol 67(10), 4863-4873, 2001 Molecular characterization and sequence of phosphatidylinositol-specific phospholipase C of Bacillus thuringiensis, Mol Microbiol 3(5), 621-626, 1989 Sequence of the Bacillus thuringiensis phosphatidylinositol specific phospholipase C, Nucleic Acids Res 16(21), 10383, 1988 |
| NCIMB number | NCIMB 9134 |
| Deposit type | Bacteria |
| Type strain | Yes |
| GMO | No |
| Taxon name | Bacillus thuringiensis |
| Depositor designation | N.R.Smith996 Mattes |
| Preservation method | Lyophilised |
| Price band | A |
| Media | 001 |
| Gas regime | aerobic |
| Incubation period | 3 days |
| Growth factors (and/or information) | CM3, 30C, 1d: soft consistency, protein crystals seen. |
| ACDP category | 1 |
| Colony Edge | Irregular |
| Colony Surface | Rough |
| Colony Shape | Circular |
| Colony Elevation | Flat |
| Colony Colour | Grey |
| Colony Opacity | Opaque |
| Cellular Shape | Group 1A Stout Rods |
| Cellular Size | short |
| Cellular Motility | Yes |
| Gram stain | Gram Positive |
| Cell inclusion bodies | Spores |
| Cellular (Other) | Straight Axis, Parallel Sides, Rounded Ends |
| Depositor Name | Clark |
| Depositor Company | American Type Culture Collection (ATCC) |
| Depositor Address | 12301 Parklawn Drive Rockville Maryland 20852 U.S.A. |
| Source | Mediterranean flour moth (Ephestia kuhniella) |
| Date of Accession | 31/05/1960 |
| History | E.A.Steinhaus -- O.Mattes |
| Other collection IDs | ATCC10792 CCEB457 CECT197 CIP53.137 CN3624 DSM2046 IAM12077 LBGB4034 NCIMB9207 NCDO1146 |
| Yeast? | False |
| K12 | No |
| References | Z. angew. Ent. (1915) 2 p29 Proom H. and Knight B.C.J.G. (1955) J. gen. Microbiol. 13 p474 Ikezawa H. and Taguchi R. (1981) Meth. Enzym. 71 pp731-741. Phosphatidylinositol-specific phospholipase C from Bacillus cereus and Bacillus thuringiensis. The tmRNA website: reductive evolution of tmRNA in plastids and other endosymbionts, Nucleic Acids Res 32(Databaseissue), D104-D108, 2004 (Unknown), The aerobic endospore-forming bacteria, Academic press, London , 217-239, 1981 (Unknown), Int J Syst Bacteriol 45, 443, 1995 (Unknown), Int J Syst Bacteriol 30, 258, 1980 Bacillus amylolyticus sp. nov., nom. rev., Bacillus lautus sp. nov., nom. rev., Bacillus pabuli sp. nov., nom. rev., and Bacillus validus sp. nov., nom. rev, Int J Syst Bacteriol 34, 224-226, 1984 Molecular identification of rRNA group 3 bacilli (Ash, Farrow, Wallbanks and Collins) using a PCR probe test. Proposal for the creation of a new genus Paenibacillus, Antonie Van Leeuwenhoek 64(3-4), 253-260, 1993 A numerical classification of the genus Bacillus, J Gen Microbiol 134(7), 1847-1882, 1988 Approved Lists of Bacterial Names, Int J Syst Bacteriol 30, 225-420, 1980 Bacillus anthracis diverges from related clades of the Bacillus cereus group in 16S-23S ribosomal DNA intergenic transcribed spacers containing tRNA genes, Appl Environ Microbiol 69(1), 33-40, 2003 Cloning and nucleotide sequence analysis of gyrB of Bacillus cereus, B. thuringiensis, B. mycoides, and B. anthracis and their application to the detection of B. cereus in rice, Appl Environ Microbiol 65(4), 1483-1490, 1999 Development of a real-time PCR assay for detection and quantification of enterotoxigenic members of Bacillus cereus group in food samples, Int J Food Microbiol 135(1), 15-21, 2009 DnaJ sequences of Bacillus cereus strains isolated from outbreaks of hospital infection are highly similar to Bacillus anthracis, Diagn Microbiol Infect Dis 70(3), 307-315, 2011 Evaluation of low molecular weight RNA profiles and ribotyping to differentiate some Bacillus species, Syst Appl Microbiol 18, 582-589, 1995 Genomic characterization of the Bacillus cereus sensu lato species: Backdrop to the evolution of Bacillus anthracis, Genome Res 22(8), 1512-1524, 2012 Oligonucleotide microarray for identification of Bacillus anthracis based on intergenic transcribed spacers in ribosomal DNA, FEMS Microbiol Lett 240(2), 215-223, 2004 PCR assay of the groEL gene for detection and differentiation of Bacillus cereus group cells, Appl Environ Microbiol 69(8), 4502-4510, 2003 Phylogenetic heterogeneity of the genus bacillus revealed by comparative analysis of small subunit ribosomal RNA sequences, Lett Appl Microbiol 13, 202-206, 1991 Rapid identification of closely related probiotic Bacillus cereus strains and differentiation from wild type Bacilli, Arch Lebensmittelhyg 53, 52-59, 2002 The DNA base composition of the type strains of the genus Bacillus, Syst Appl Microbiol 6, 60-65, 1985 Rapid species identification of seafood spoilage and pathogenic Gram-positive bacteria by MALDI-TOF mass fingerprinting, Electrophoresis 32(21), 2951-2965, 2011 Phylogeny of spore-forming lactic acid bacteria based on 16S rRNA gene sequences, FEMS Microbiol Lett 115(1), 13-17, 1994 Widespread occurrence of non-phosphorylating glyceraldehyde-3-phosphate dehydrogenase among gram-positive bacteria, Int Microbiol 8(4), 251-258, 2005 Fluorescent Amplified Fragment Length Polymorphism Analysis of Norwegian Bacillus cereus and Bacillus thuringiensis Soil Isolates, Appl Environ Microbiol 67(10), 4863-4873, 2001 Molecular characterization and sequence of phosphatidylinositol-specific phospholipase C of Bacillus thuringiensis, Mol Microbiol 3(5), 621-626, 1989 Sequence of the Bacillus thuringiensis phosphatidylinositol specific phospholipase C, Nucleic Acids Res 16(21), 10383, 1988 |