Weissella viridescens S40 is a bacterium that was isolated from Food.
Bacteria| @ref 20215 |
|
|
| Domain Bacteria |
| Phylum Bacillota |
| Class Bacilli |
| Order Lactobacillales |
| Family Lactobacillaceae |
| Genus Weissella |
| Species Weissella viridescens |
| Full scientific name Weissella viridescens (Niven and Evans 1957) Collins et al. 1994 |
| Synonyms (1) |
| @ref | Name | Growth | Composition | Medium link | |
|---|---|---|---|---|---|
| 34829 | MEDIUM 41- for Lactobacillus, Leuconostoc, Weissella, Pediococcus, Sporolactobacillus inulinus | Distilled water make up to (1000.000 ml);Man Rogosa Sharp broth (55.000 g) | |||
| 34829 | CIP Medium 41 | Medium recipe at CIP |
| @ref | Growth | Type | Temperature (°C) | |
|---|---|---|---|---|
| 34829 | positive | growth | 30 |
| @ref | pathway | enzyme coverage | annotated reactions | external links | |
|---|---|---|---|---|---|
| 66794 | acetoin degradation | 100 | 3 of 3 | ||
| 66794 | palmitate biosynthesis | 100 | 22 of 22 | ||
| 66794 | ppGpp biosynthesis | 100 | 4 of 4 | ||
| 66794 | vitamin K metabolism | 100 | 5 of 5 | ||
| 66794 | cis-vaccenate biosynthesis | 100 | 2 of 2 | ||
| 66794 | coenzyme A metabolism | 100 | 4 of 4 | ||
| 66794 | teichoic acid biosynthesis | 100 | 1 of 1 | ||
| 66794 | CDP-diacylglycerol biosynthesis | 100 | 2 of 2 | ||
| 66794 | folate polyglutamylation | 100 | 1 of 1 | ||
| 66794 | anapleurotic synthesis of oxalacetate | 100 | 1 of 1 | ||
| 66794 | UDP-GlcNAc biosynthesis | 100 | 3 of 3 | ||
| 66794 | peptidoglycan biosynthesis | 93.33 | 14 of 15 | ||
| 66794 | chorismate metabolism | 88.89 | 8 of 9 | ||
| 66794 | ketogluconate metabolism | 87.5 | 7 of 8 | ||
| 66794 | glycine betaine biosynthesis | 80 | 4 of 5 | ||
| 66794 | acetate fermentation | 75 | 3 of 4 | ||
| 66794 | butanoate fermentation | 75 | 3 of 4 | ||
| 66794 | photosynthesis | 71.43 | 10 of 14 | ||
| 66794 | cardiolipin biosynthesis | 71.43 | 5 of 7 | ||
| 66794 | phenylalanine metabolism | 69.23 | 9 of 13 | ||
| 66794 | aspartate and asparagine metabolism | 66.67 | 6 of 9 | ||
| 66794 | formaldehyde oxidation | 66.67 | 2 of 3 | ||
| 66794 | CO2 fixation in Crenarchaeota | 66.67 | 6 of 9 | ||
| 66794 | cyanate degradation | 66.67 | 2 of 3 | ||
| 66794 | purine metabolism | 64.89 | 61 of 94 | ||
| 66794 | glycolysis | 64.71 | 11 of 17 | ||
| 66794 | pyrimidine metabolism | 64.44 | 29 of 45 | ||
| 66794 | pentose phosphate pathway | 63.64 | 7 of 11 | ||
| 66794 | C4 and CAM-carbon fixation | 62.5 | 5 of 8 | ||
| 66794 | 6-hydroxymethyl-dihydropterin diphosphate biosynthesis | 62.5 | 5 of 8 | ||
| 66794 | NAD metabolism | 61.11 | 11 of 18 | ||
| 66794 | glycogen metabolism | 60 | 3 of 5 | ||
| 66794 | threonine metabolism | 60 | 6 of 10 | ||
| 66794 | propanol degradation | 57.14 | 4 of 7 | ||
| 66794 | valine metabolism | 55.56 | 5 of 9 | ||
| 66794 | non-pathway related | 55.26 | 21 of 38 | ||
| 66794 | lipid metabolism | 51.61 | 16 of 31 | ||
| 66794 | ethanol fermentation | 50 | 1 of 2 | ||
| 66794 | gluconeogenesis | 50 | 4 of 8 | ||
| 66794 | phenylmercury acetate degradation | 50 | 1 of 2 | ||
| 66794 | glycolate and glyoxylate degradation | 50 | 3 of 6 | ||
| 66794 | adipate degradation | 50 | 1 of 2 | ||
| 66794 | sulfopterin metabolism | 50 | 2 of 4 | ||
| 66794 | isoleucine metabolism | 50 | 4 of 8 | ||
| 66794 | tetrahydrofolate metabolism | 50 | 7 of 14 | ||
| 66794 | degradation of sugar alcohols | 50 | 8 of 16 | ||
| 66794 | flavin biosynthesis | 46.67 | 7 of 15 | ||
| 66794 | isoprenoid biosynthesis | 46.15 | 12 of 26 | ||
| 66794 | vitamin B1 metabolism | 46.15 | 6 of 13 | ||
| 66794 | oxidative phosphorylation | 46.15 | 42 of 91 | ||
| 66794 | serine metabolism | 44.44 | 4 of 9 | ||
| 66794 | d-mannose degradation | 44.44 | 4 of 9 | ||
| 66794 | reductive acetyl coenzyme A pathway | 42.86 | 3 of 7 | ||
| 66794 | glutathione metabolism | 42.86 | 6 of 14 | ||
| 66794 | ubiquinone biosynthesis | 42.86 | 3 of 7 | ||
| 66794 | mevalonate metabolism | 42.86 | 3 of 7 | ||
| 66794 | methionine metabolism | 42.31 | 11 of 26 | ||
| 66794 | ethylmalonyl-CoA pathway | 40 | 2 of 5 | ||
| 66794 | 3-chlorocatechol degradation | 40 | 2 of 5 | ||
| 66794 | metabolism of amino sugars and derivatives | 40 | 2 of 5 | ||
| 66794 | glycine metabolism | 40 | 4 of 10 | ||
| 66794 | arachidonate biosynthesis | 40 | 2 of 5 | ||
| 66794 | degradation of pentoses | 39.29 | 11 of 28 | ||
| 66794 | glutamate and glutamine metabolism | 35.71 | 10 of 28 | ||
| 66794 | arginine metabolism | 33.33 | 8 of 24 | ||
| 66794 | degradation of aromatic, nitrogen containing compounds | 33.33 | 4 of 12 | ||
| 66794 | selenocysteine biosynthesis | 33.33 | 2 of 6 | ||
| 66794 | octane oxidation | 33.33 | 1 of 3 | ||
| 66794 | degradation of hexoses | 33.33 | 6 of 18 | ||
| 66794 | enterobactin biosynthesis | 33.33 | 1 of 3 | ||
| 66794 | lipid A biosynthesis | 33.33 | 3 of 9 | ||
| 66794 | IAA biosynthesis | 33.33 | 1 of 3 | ||
| 66794 | L-lactaldehyde degradation | 33.33 | 1 of 3 | ||
| 66794 | acetyl CoA biosynthesis | 33.33 | 1 of 3 | ||
| 66794 | alanine metabolism | 31.03 | 9 of 29 | ||
| 66794 | lysine metabolism | 30.95 | 13 of 42 | ||
| 66794 | urea cycle | 30.77 | 4 of 13 | ||
| 66794 | sulfate reduction | 30.77 | 4 of 13 | ||
| 66794 | Entner Doudoroff pathway | 30 | 3 of 10 | ||
| 66794 | starch degradation | 30 | 3 of 10 | ||
| 66794 | propionate fermentation | 30 | 3 of 10 | ||
| 66794 | tryptophan metabolism | 28.95 | 11 of 38 | ||
| 66794 | citric acid cycle | 28.57 | 4 of 14 | ||
| 66794 | cysteine metabolism | 27.78 | 5 of 18 | ||
| 66794 | dolichyl-diphosphooligosaccharide biosynthesis | 27.27 | 3 of 11 | ||
| 66794 | proline metabolism | 27.27 | 3 of 11 | ||
| 66794 | metabolism of disaccharids | 27.27 | 3 of 11 | ||
| 66794 | vitamin B6 metabolism | 27.27 | 3 of 11 | ||
| 66794 | d-xylose degradation | 27.27 | 3 of 11 | ||
| 66794 | cyclohexanol degradation | 25 | 1 of 4 | ||
| 66794 | lactate fermentation | 25 | 1 of 4 | ||
| 66794 | glycogen biosynthesis | 25 | 1 of 4 | ||
| 66794 | dTDPLrhamnose biosynthesis | 25 | 2 of 8 | ||
| 66794 | CMP-KDO biosynthesis | 25 | 1 of 4 | ||
| 66794 | androgen and estrogen metabolism | 25 | 4 of 16 | ||
| 66794 | phenylpropanoid biosynthesis | 23.08 | 3 of 13 | ||
| 66794 | leucine metabolism | 23.08 | 3 of 13 | ||
| 66794 | ascorbate metabolism | 22.73 | 5 of 22 | ||
| 66794 | molybdenum cofactor biosynthesis | 22.22 | 2 of 9 | ||
| 66794 | nitrate assimilation | 22.22 | 2 of 9 | ||
| 66794 | arachidonic acid metabolism | 22.22 | 4 of 18 | ||
| 66794 | tyrosine metabolism | 21.43 | 3 of 14 |
| 34829 | Sample typeFood |
| @ref | Biosafety level | Biosafety level comment | |
|---|---|---|---|
| 34829 | 1 | Risk group (French classification) |
| #20215 | Parte, A.C., Sardà Carbasse, J., Meier-Kolthoff, J.P., Reimer, L.C. and Göker, M.: List of Prokaryotic names with Standing in Nomenclature (LPSN) moves to the DSMZ. IJSEM ( DOI 10.1099/ijsem.0.004332 ) |
| #34829 | Collection of Institut Pasteur ; Curators of the CIP; CIP 66.29 |
| #66794 | Antje Chang, Lisa Jeske, Sandra Ulbrich, Julia Hofmann, Julia Koblitz, Ida Schomburg, Meina Neumann-Schaal, Dieter Jahn, Dietmar Schomburg: BRENDA, the ELIXIR core data resource in 2021: new developments and updates. Nucleic Acids Res. 49: D498 - D508 2020 ( DOI 10.1093/nar/gkaa1025 , PubMed 33211880 ) |
| #126262 | A. Lissin, I. Schober, J. F. Witte, H. Lüken, A. Podstawka, J. Koblitz, B. Bunk, P. Dawyndt, P. Vandamme, P. de Vos, J. Overmann, L. C. Reimer: StrainInfo—the central database for linked microbial strain identifiers. ( DOI 10.1093/database/baaf059 ) |
You found an error in BacDive? Please tell us about it!
Note that changes will be reviewed and judged. If your changes are legitimate, changes will occur within the next BacDive update. Only proposed changes supported by the according reference will be reviewed. The BacDive team reserves the right to reject proposed changes.
Successfully sent
If you want to cite this particular strain cite the following doi:
https://doi.org/10.13145/bacdive135650.20251217.10
When using BacDive for research please cite the following paper
BacDive in 2025: the core database for prokaryotic strain data