Dysgonomonas mossii DSM 22836 is an anaerobe, rod-shaped bacterium that was isolated from human, abdominal drainage.
rod-shaped anaerobe genome sequence 16S sequence Bacteria| @ref 20215 |
|
|
| Domain Bacteria |
| Phylum Bacteroidota |
| Class Bacteroidia |
| Order Bacteroidales |
| Family Dysgonomonadaceae |
| Genus Dysgonomonas |
| Species Dysgonomonas mossii |
| Full scientific name Dysgonomonas mossii Lawson et al. 2002 |
| BacDive ID | Other strains from Dysgonomonas mossii (2) | Type strain |
|---|---|---|
| 152242 | D. mossii CCUG 46193 | |
| 152243 | D. mossii CCUG 46194 |
| @ref | Name | Growth | Medium link | Composition | |
|---|---|---|---|---|---|
| 16541 | PYG MEDIUM (MODIFIED) (DSMZ Medium 104) | Medium recipe at MediaDive | Name: PYG MEDIUM (modified) (DSMZ Medium 104) Composition: Yeast extract 10.0 g/l Peptone 5.0 g/l Trypticase peptone 5.0 g/l Beef extract 5.0 g/l Glucose 5.0 g/l L-Cysteine HCl x H2O 0.5 g/l NaHCO3 0.4 g/l NaCl 0.08 g/l K2HPO4 0.04 g/l KH2PO4 0.04 g/l MgSO4 x 7 H2O 0.02 g/l CaCl2 x 2 H2O 0.01 g/l Hemin 0.005 g/l Ethanol 0.0038 g/l Resazurin 0.001 g/l Tween 80 Vitamin K1 NaOH Distilled water | ||
| 16541 | COLUMBIA BLOOD MEDIUM (DSMZ Medium 693) | Medium recipe at MediaDive | Name: COLUMBIA BLOOD MEDIUM (DSMZ Medium 693) Composition: Defibrinated sheep blood 50.0 g/l Columbia agar base | ||
| 33044 | MEDIUM 6 - Columbia agar with 10 % horse blood | Distilled water make up to (1000.000 ml);Columbia agar (39.000 g);Horseblood (100.000 ml) | |||
| 121148 | CIP Medium 6 | Medium recipe at CIP |
| @ref | Chebi-ID | Metabolite | Utilization activity | Kind of utilization tested | |
|---|---|---|---|---|---|
| 68380 | 29016 ChEBI | arginine | - | hydrolysis | from API rID32A |
| 121148 | 17057 ChEBI | cellobiose | + | degradation | |
| 68367 | 17057 ChEBI | cellobiose | + | builds acid from | from API 20A |
| 68377 | 15824 ChEBI | D-fructose | + | builds acid from | from API NH |
| 68377 | 17634 ChEBI | D-glucose | + | builds acid from | from API NH |
| 121148 | 17634 ChEBI | D-glucose | + | degradation | |
| 68367 | 17634 ChEBI | D-glucose | + | builds acid from | from API 20A |
| 68380 | 16024 ChEBI | D-mannose | + | fermentation | from API rID32A |
| 68367 | 16024 ChEBI | D-mannose | + | builds acid from | from API 20A |
| 121148 | 65327 ChEBI | D-xylose | + | degradation | |
| 68367 | 65327 ChEBI | D-xylose | + | builds acid from | from API 20A |
| 121148 | 4853 ChEBI | esculin | + | hydrolysis | |
| 68367 | 4853 ChEBI | esculin | + | hydrolysis | from API 20A |
| 68367 | 5291 ChEBI | gelatin | - | hydrolysis | from API 20A |
| 68380 | 29985 ChEBI | L-glutamate | - | degradation | from API rID32A |
| 121148 | 17716 ChEBI | lactose | + | degradation | |
| 68367 | 17716 ChEBI | lactose | + | builds acid from | from API 20A |
| 68377 | 17306 ChEBI | maltose | + | builds acid from | from API NH |
| 121148 | 17306 ChEBI | maltose | + | degradation | |
| 68367 | 17306 ChEBI | maltose | + | builds acid from | from API 20A |
| 68380 | 17632 ChEBI | nitrate | - | reduction | from API rID32A |
| 121148 | 17632 ChEBI | nitrate | - | reduction | |
| 121148 | 17632 ChEBI | nitrate | + | respiration | |
| 121148 | 16301 ChEBI | nitrite | - | reduction | |
| 68377 | 18257 ChEBI | ornithine | - | degradation | from API NH |
| 68380 | 16634 ChEBI | raffinose | + | fermentation | from API rID32A |
| 68367 | 16634 ChEBI | raffinose | + | builds acid from | from API 20A |
| 121148 | 17814 ChEBI | salicin | + | degradation | |
| 68367 | 17814 ChEBI | salicin | + | builds acid from | from API 20A |
| 121148 | 17992 ChEBI | sucrose | + | degradation | |
| 68367 | 17992 ChEBI | sucrose | + | builds acid from | from API 20A |
| 68367 | 27082 ChEBI | trehalose | + | builds acid from | from API 20A |
| 68380 | 27897 ChEBI | tryptophan | - | energy source | from API rID32A |
| 68367 | 27897 ChEBI | tryptophan | + | energy source | from API 20A |
| 68380 | 16199 ChEBI | urea | - | hydrolysis | from API rID32A |
| 68367 | 16199 ChEBI | urea | - | hydrolysis | from API 20A |
| @ref | ChEBI | Metabolite | Is sensitive | Is resistant | |
|---|---|---|---|---|---|
| 121148 | 6909 | metronidazole |
| @ref | Value | Activity | Ec | |
|---|---|---|---|---|
| 68382 | acid phosphatase | + | 3.1.3.2 | from API zym |
| 68380 | alanine arylamidase | + | 3.4.11.2 | from API rID32A |
| 68382 | alkaline phosphatase | + | 3.1.3.1 | from API zym |
| 68380 | alkaline phosphatase | + | 3.1.3.1 | from API rID32A |
| 68377 | alkaline phosphatase | + | 3.1.3.1 | from API NH |
| 68380 | alpha-arabinosidase | - | 3.2.1.55 | from API rID32A |
| 68382 | alpha-chymotrypsin | + | 3.4.21.1 | from API zym |
| 68382 | alpha-fucosidase | - | 3.2.1.51 | from API zym |
| 68380 | alpha-fucosidase | - | 3.2.1.51 | from API rID32A |
| 68382 | alpha-galactosidase | + | 3.2.1.22 | from API zym |
| 68380 | alpha-galactosidase | + | 3.2.1.22 | from API rID32A |
| 68382 | alpha-glucosidase | + | 3.2.1.20 | from API zym |
| 68380 | alpha-glucosidase | + | 3.2.1.20 | from API rID32A |
| 68382 | alpha-mannosidase | - | 3.2.1.24 | from API zym |
| 121148 | amylase | + | ||
| 68380 | arginine dihydrolase | - | 3.5.3.6 | from API rID32A |
| 68382 | beta-galactosidase | + | 3.2.1.23 | from API zym |
| 121148 | beta-galactosidase | - | 3.2.1.23 | |
| 68380 | beta-galactosidase | + | 3.2.1.23 | from API rID32A |
| 68382 | beta-glucosidase | + | 3.2.1.21 | from API zym |
| 68380 | beta-glucosidase | + | 3.2.1.21 | from API rID32A |
| 68367 | beta-glucosidase | + | 3.2.1.21 | from API 20A |
| 68382 | beta-glucuronidase | - | 3.2.1.31 | from API zym |
| 68380 | beta-glucuronidase | - | 3.2.1.31 | from API rID32A |
| 121148 | caseinase | - | 3.4.21.50 | |
| 121148 | catalase | - | 1.11.1.6 | |
| 68382 | cystine arylamidase | - | 3.4.11.3 | from API zym |
| 121148 | DNase | - | ||
| 68382 | esterase lipase (C 8) | + | from API zym | |
| 121148 | gelatinase | - | ||
| 68367 | gelatinase | - | from API 20A | |
| 68380 | glutamate decarboxylase | - | 4.1.1.15 | from API rID32A |
| 68380 | glutamyl-glutamate arylamidase | + | from API rID32A | |
| 68380 | glycin arylamidase | - | from API rID32A | |
| 68380 | histidine arylamidase | - | from API rID32A | |
| 68380 | L-arginine arylamidase | - | from API rID32A | |
| 121148 | lecithinase | - | ||
| 68382 | leucine arylamidase | - | 3.4.11.1 | from API zym |
| 68380 | leucine arylamidase | - | 3.4.11.1 | from API rID32A |
| 68380 | leucyl glycin arylamidase | + | 3.4.11.1 | from API rID32A |
| 121148 | lipase | - | ||
| 68377 | lipase | + | from API NH | |
| 68382 | lipase (C 14) | - | from API zym | |
| 68382 | N-acetyl-beta-glucosaminidase | + | 3.2.1.52 | from API zym |
| 68382 | naphthol-AS-BI-phosphohydrolase | + | from API zym | |
| 68377 | ornithine decarboxylase | - | 4.1.1.17 | from API NH |
| 121148 | oxidase | - | ||
| 68380 | phenylalanine arylamidase | - | from API rID32A | |
| 68377 | proline-arylamidase | - | 3.4.11.5 | from API NH |
| 68380 | proline-arylamidase | - | 3.4.11.5 | from API rID32A |
| 121148 | protease | - | ||
| 68380 | pyrrolidonyl arylamidase | - | 3.4.19.3 | from API rID32A |
| 68380 | serine arylamidase | - | from API rID32A | |
| 68382 | trypsin | - | 3.4.21.4 | from API zym |
| 68380 | tryptophan deaminase | - | 4.1.99.1 | from API rID32A |
| 121148 | tween esterase | - | ||
| 68380 | tyrosine arylamidase | - | from API rID32A | |
| 121148 | urease | - | 3.5.1.5 | |
| 68380 | urease | - | 3.5.1.5 | from API rID32A |
| 68367 | urease | - | 3.5.1.5 | from API 20A |
| 68382 | valine arylamidase | - | from API zym |
| @ref | pathway | enzyme coverage | annotated reactions | external links | |
|---|---|---|---|---|---|
| 66794 | ceramide biosynthesis | 100 | 1 of 1 | ||
| 66794 | coenzyme A metabolism | 100 | 4 of 4 | ||
| 66794 | adipate degradation | 100 | 2 of 2 | ||
| 66794 | glycogen metabolism | 100 | 5 of 5 | ||
| 66794 | cis-vaccenate biosynthesis | 100 | 2 of 2 | ||
| 66794 | CDP-diacylglycerol biosynthesis | 100 | 2 of 2 | ||
| 66794 | UDP-GlcNAc biosynthesis | 100 | 3 of 3 | ||
| 66794 | suberin monomers biosynthesis | 100 | 2 of 2 | ||
| 66794 | methylglyoxal degradation | 100 | 5 of 5 | ||
| 66794 | palmitate biosynthesis | 100 | 22 of 22 | ||
| 66794 | starch degradation | 100 | 10 of 10 | ||
| 66794 | ppGpp biosynthesis | 100 | 4 of 4 | ||
| 66794 | folate polyglutamylation | 100 | 1 of 1 | ||
| 66794 | tetrahydrofolate metabolism | 100 | 14 of 14 | ||
| 66794 | anapleurotic synthesis of oxalacetate | 100 | 1 of 1 | ||
| 66794 | vitamin B1 metabolism | 92.31 | 12 of 13 | ||
| 66794 | d-mannose degradation | 88.89 | 8 of 9 | ||
| 66794 | chorismate metabolism | 88.89 | 8 of 9 | ||
| 66794 | C4 and CAM-carbon fixation | 87.5 | 7 of 8 | ||
| 66794 | propanol degradation | 85.71 | 6 of 7 | ||
| 66794 | photosynthesis | 85.71 | 12 of 14 | ||
| 66794 | vitamin B6 metabolism | 81.82 | 9 of 11 | ||
| 66794 | pentose phosphate pathway | 81.82 | 9 of 11 | ||
| 66794 | O-antigen biosynthesis | 80 | 4 of 5 | ||
| 66794 | peptidoglycan biosynthesis | 80 | 12 of 15 | ||
| 66794 | lipoate biosynthesis | 80 | 4 of 5 | ||
| 66794 | threonine metabolism | 80 | 8 of 10 | ||
| 66794 | cellulose degradation | 80 | 4 of 5 | ||
| 66794 | flavin biosynthesis | 80 | 12 of 15 | ||
| 66794 | aspartate and asparagine metabolism | 77.78 | 7 of 9 | ||
| 66794 | pyrimidine metabolism | 77.78 | 35 of 45 | ||
| 66794 | lipid A biosynthesis | 77.78 | 7 of 9 | ||
| 66794 | glycogen biosynthesis | 75 | 3 of 4 | ||
| 66794 | acetate fermentation | 75 | 3 of 4 | ||
| 66794 | sulfopterin metabolism | 75 | 3 of 4 | ||
| 66794 | isoleucine metabolism | 75 | 6 of 8 | ||
| 66794 | CMP-KDO biosynthesis | 75 | 3 of 4 | ||
| 66794 | gluconeogenesis | 75 | 6 of 8 | ||
| 66794 | NAD metabolism | 72.22 | 13 of 18 | ||
| 66794 | cardiolipin biosynthesis | 71.43 | 5 of 7 | ||
| 66794 | citric acid cycle | 71.43 | 10 of 14 | ||
| 66794 | glycolysis | 70.59 | 12 of 17 | ||
| 66794 | purine metabolism | 70.21 | 66 of 94 | ||
| 66794 | propionate fermentation | 70 | 7 of 10 | ||
| 66794 | Entner Doudoroff pathway | 70 | 7 of 10 | ||
| 66794 | myo-inositol biosynthesis | 70 | 7 of 10 | ||
| 66794 | glutamate and glutamine metabolism | 67.86 | 19 of 28 | ||
| 66794 | vitamin B12 metabolism | 67.65 | 23 of 34 | ||
| 66794 | acetoin degradation | 66.67 | 2 of 3 | ||
| 66794 | octane oxidation | 66.67 | 2 of 3 | ||
| 66794 | serine metabolism | 66.67 | 6 of 9 | ||
| 66794 | valine metabolism | 66.67 | 6 of 9 | ||
| 66794 | histidine metabolism | 65.52 | 19 of 29 | ||
| 66794 | heme metabolism | 64.29 | 9 of 14 | ||
| 66794 | d-xylose degradation | 63.64 | 7 of 11 | ||
| 66794 | proline metabolism | 63.64 | 7 of 11 | ||
| 66794 | 6-hydroxymethyl-dihydropterin diphosphate biosynthesis | 62.5 | 5 of 8 | ||
| 66794 | phenylalanine metabolism | 61.54 | 8 of 13 | ||
| 66794 | leucine metabolism | 61.54 | 8 of 13 | ||
| 66794 | degradation of hexoses | 61.11 | 11 of 18 | ||
| 66794 | metabolism of amino sugars and derivatives | 60 | 3 of 5 | ||
| 66794 | arachidonate biosynthesis | 60 | 3 of 5 | ||
| 66794 | isoprenoid biosynthesis | 57.69 | 15 of 26 | ||
| 66794 | ubiquinone biosynthesis | 57.14 | 4 of 7 | ||
| 66794 | degradation of pentoses | 57.14 | 16 of 28 | ||
| 66794 | CO2 fixation in Crenarchaeota | 55.56 | 5 of 9 | ||
| 66794 | alanine metabolism | 55.17 | 16 of 29 | ||
| 66794 | lipid metabolism | 54.84 | 17 of 31 | ||
| 66794 | methionine metabolism | 53.85 | 14 of 26 | ||
| 66794 | tryptophan metabolism | 52.63 | 20 of 38 | ||
| 66794 | lysine metabolism | 52.38 | 22 of 42 | ||
| 66794 | ethanol fermentation | 50 | 1 of 2 | ||
| 66794 | aminopropanol phosphate biosynthesis | 50 | 1 of 2 | ||
| 66794 | dTDPLrhamnose biosynthesis | 50 | 4 of 8 | ||
| 66794 | pantothenate biosynthesis | 50 | 3 of 6 | ||
| 66794 | coenzyme M biosynthesis | 50 | 5 of 10 | ||
| 66794 | glycolate and glyoxylate degradation | 50 | 3 of 6 | ||
| 66794 | kanosamine biosynthesis II | 50 | 1 of 2 | ||
| 66794 | degradation of aromatic, nitrogen containing compounds | 50 | 6 of 12 | ||
| 66794 | biotin biosynthesis | 50 | 2 of 4 | ||
| 66794 | non-pathway related | 50 | 19 of 38 | ||
| 66794 | butanoate fermentation | 50 | 2 of 4 | ||
| 66794 | ketogluconate metabolism | 50 | 4 of 8 | ||
| 66794 | selenocysteine biosynthesis | 50 | 3 of 6 | ||
| 66794 | sulfate reduction | 46.15 | 6 of 13 | ||
| 66794 | oxidative phosphorylation | 46.15 | 42 of 91 | ||
| 66794 | phenylpropanoid biosynthesis | 46.15 | 6 of 13 | ||
| 66794 | metabolism of disaccharids | 45.45 | 5 of 11 | ||
| 66794 | cysteine metabolism | 44.44 | 8 of 18 | ||
| 66794 | degradation of sugar acids | 44 | 11 of 25 | ||
| 66794 | reductive acetyl coenzyme A pathway | 42.86 | 3 of 7 | ||
| 66794 | glycine metabolism | 40 | 4 of 10 | ||
| 66794 | hydrogen production | 40 | 2 of 5 | ||
| 66794 | phenylacetate degradation (aerobic) | 40 | 2 of 5 | ||
| 66794 | glycine betaine biosynthesis | 40 | 2 of 5 | ||
| 66794 | polyamine pathway | 39.13 | 9 of 23 | ||
| 66794 | tyrosine metabolism | 35.71 | 5 of 14 | ||
| 66794 | cyanate degradation | 33.33 | 1 of 3 | ||
| 66794 | arginine metabolism | 33.33 | 8 of 24 | ||
| 66794 | acetyl CoA biosynthesis | 33.33 | 1 of 3 | ||
| 66794 | IAA biosynthesis | 33.33 | 1 of 3 | ||
| 66794 | formaldehyde oxidation | 33.33 | 1 of 3 | ||
| 66794 | nitrate assimilation | 33.33 | 3 of 9 | ||
| 66794 | L-lactaldehyde degradation | 33.33 | 1 of 3 | ||
| 66794 | arachidonic acid metabolism | 33.33 | 6 of 18 | ||
| 66794 | molybdenum cofactor biosynthesis | 33.33 | 3 of 9 | ||
| 66794 | (5R)-carbapenem carboxylate biosynthesis | 33.33 | 1 of 3 | ||
| 66794 | degradation of sugar alcohols | 31.25 | 5 of 16 | ||
| 66794 | urea cycle | 30.77 | 4 of 13 | ||
| 66794 | phenol degradation | 30 | 6 of 20 | ||
| 66794 | bile acid biosynthesis, neutral pathway | 29.41 | 5 of 17 | ||
| 66794 | benzoyl-CoA degradation | 28.57 | 2 of 7 | ||
| 66794 | glutathione metabolism | 28.57 | 4 of 14 | ||
| 66794 | dolichyl-diphosphooligosaccharide biosynthesis | 27.27 | 3 of 11 | ||
| 66794 | ascorbate metabolism | 27.27 | 6 of 22 | ||
| 66794 | 3-phenylpropionate degradation | 26.67 | 4 of 15 | ||
| 66794 | toluene degradation | 25 | 1 of 4 | ||
| 66794 | cyclohexanol degradation | 25 | 1 of 4 | ||
| 66794 | lactate fermentation | 25 | 1 of 4 | ||
| 66794 | phosphatidylethanolamine bioynthesis | 23.08 | 3 of 13 |
| @ref | Sample type | Host species | Sampling date | Geographic location | Country | Country ISO 3 Code | Continent | |
|---|---|---|---|---|---|---|---|---|
| 16541 | human, abdominal drainage | Homo sapiens | Michigan, Detroit, Holy Cross Hospital | USA | USA | North America | ||
| 55874 | Human abdominal drainage,68-yr-old female | Homo sapiens | 1987 | Michigan,Detroit | USA | USA | North America | |
| 67770 | Human clinical source | Homo sapiens | ||||||
| 121148 | Human, Abdominal drainage | Homo sapiens | Michigan | United States of America | USA | North America |
Global distribution of 16S sequence AJ319867 (>99% sequence identity) for Dysgonomonas from Microbeatlas ![]()
| @ref | Description | Assembly level | INSDC accession | BV-BRC accession | IMG accession | NCBI tax ID | Score | |
|---|---|---|---|---|---|---|---|---|
| 67770 | ASM37640v1 assembly for Dysgonomonas mossii DSM 22836 | contig | 742767 | 73.3 | ||||
| 67770 | Dysg_moss_DSM_V1 assembly for Dysgonomonas mossii DSM 22836 | scaffold | 742767 | 71.74 |
| @ref | Description | Accession | Length | Database | NCBI tax ID | |
|---|---|---|---|---|---|---|
| 20218 | Dysgonomonas mossii 16S-23S ribosomal RNA intergenic spacer, partial sequence; and tRNA-Ile and tRNA-Ala genes, complete sequence | AY704410 | 559 | 742767 | ||
| 16541 | Dysgonomonas mossii partial 16S rRNA gene, type strain CCUG 43457T | AJ319867 | 1451 | 742767 | ||
| 67770 | Dysgonomonas mossii gene for 16S ribosomal RNA, partial sequence, strin: JCM 16699 | AB548676 | 1488 | 742767 |
| @ref | Trait | Model | Prediction | Confidence in % | In training data |
|---|---|---|---|---|---|
| 125439 | oxygen_tolerance | BacteriaNetⓘ | aerobe | 57.40 | no |
| 125439 | gram_stain | BacteriaNetⓘ | negative | 99.33 | no |
| 125439 | motility | BacteriaNetⓘ | no | 77.56 | no |
| 125439 | spore_formation | BacteriaNetⓘ | no | 99.85 | no |
| @ref | Trait | Model | Prediction | Confidence in % | In training data |
|---|---|---|---|---|---|
| 125438 | gram-positive | gram-positiveⓘ | no | 93.49 | yes |
| 125438 | anaerobic | anaerobicⓘ | yes | 67.81 | no |
| 125438 | spore-forming | spore-formingⓘ | no | 91.98 | yes |
| 125438 | aerobic | aerobicⓘ | no | 82.95 | yes |
| 125438 | thermophilic | thermophileⓘ | no | 96.44 | yes |
| 125438 | flagellated | motile2+ⓘ | no | 87.50 | no |
| Topic | Title | Authors | Journal | DOI | Year | |
|---|---|---|---|---|---|---|
| Metabolism | Bacteroidota polysaccharide utilization system for branched dextran exopolysaccharides from lactic acid bacteria. | Nakamura S, Kurata R, Tonozuka T, Funane K, Park EY, Miyazaki T. | J Biol Chem | 10.1016/j.jbc.2023.104885 | 2023 | |
| Metabolism | A polysaccharide utilization locus from the gut bacterium Dysgonomonas mossii encodes functionally distinct carbohydrate esterases. | Kmezik C, Mazurkewich S, Meents T, McKee LS, Idstrom A, Armeni M, Savolainen O, Branden G, Larsbrink J. | J Biol Chem | 10.1016/j.jbc.2021.100500 | 2021 | |
| Metabolism | Two new gene clusters involved in the degradation of plant cell wall from the fecal microbiota of Tunisian dromedary. | Ameri R, Laville E, Potocki-Veronese G, Trabelsi S, Mezghani M, Elgharbi F, Bejar S. | PLoS One | 10.1371/journal.pone.0194621 | 2018 | |
| Phylogeny | DNA Phosphorothioate Modifications Are Widely Distributed in the Human Microbiome. | Sun Y, Kong L, Wu G, Cao B, Pang X, Deng Z, Dedon PC, Zhang C, You D. | Biomolecules | 10.3390/biom10081175 | 2020 | |
| Phylogeny | Bamboo lignocellulose degradation by gut symbiotic microbiota of the bamboo snout beetle Cyrtotrachelus buqueti. | Luo C, Li Y, Chen Y, Fu C, Long W, Xiao X, Liao H, Yang Y. | Biotechnol Biofuels | 10.1186/s13068-019-1411-1 | 2019 | |
| Metabolism | Two new xylanases with different substrate specificities from the human gut bacterium Bacteroides intestinalis DSM 17393. | Hong PY, Iakiviak M, Dodd D, Zhang M, Mackie RI, Cann I. | Appl Environ Microbiol | 10.1128/aem.03176-13 | 2014 | |
| Phylogeny | A primary assessment of the endophytic bacterial community in a xerophilous moss (Grimmia montana) using molecular method and cultivated isolates. | Liu XL, Liu SL, Liu M, Kong BH, Liu L, Li YH. | Braz J Microbiol | 10.1590/s1517-83822014000100022 | 2014 | |
| Enzymology | Xylan utilization in human gut commensal bacteria is orchestrated by unique modular organization of polysaccharide-degrading enzymes. | Zhang M, Chekan JR, Dodd D, Hong PY, Radlinski L, Revindran V, Nair SK, Mackie RI, Cann I. | Proc Natl Acad Sci U S A | 10.1073/pnas.1406156111 | 2014 | |
| Genetics | Metagenome-wide association of microbial determinants of host phenotype in Drosophila melanogaster. | Chaston JM, Newell PD, Douglas AE. | mBio | 10.1128/mbio.01631-14 | 2014 | |
| Cyanobacterial Oxygenic Photosynthesis is Protected by Flavodiiron Proteins. | Allahverdiyeva Y, Isojarvi J, Zhang P, Aro EM. | Life (Basel) | 10.3390/life5010716 | 2015 | ||
| Phylogeny | A 16S rRNA Gene and Draft Genome Database for the Murine Oral Bacterial Community. | Joseph S, Aduse-Opoku J, Hashim A, Hanski E, Streich R, Knowles SCL, Pedersen AB, Wade WG, Curtis MA. | mSystems | 10.1128/msystems.01222-20 | 2021 | |
| Genetics | Isolation of a Novel Low-Temperature-Active and Organic-Solvent-Stable Mannanase from the Intestinal Metagenome of Hermetia illucens. | Kim DG, Lee CM, Lee YS, Yoon SH, Kim SY. | Int J Mol Sci | 10.3390/ijms26010216 | 2024 | |
| Relation between dysbiosis and inborn errors of immunity. | Ozdemir O. | World J Methodol | 10.5662/wjm.v14.i4.96380 | 2024 | ||
| Boosting o-xylene removal and power generation in an airlift microbial fuel cell system. | Chen H, Li Y, Ying Z, Xia Y, You J. | RSC Adv | 10.1039/d3ra02174b | 2023 | ||
| Phylogeny | First case report of bacteremia caused by Dysgonomonas mossii. | Buya Y, Shigoka T, Tahara H, Uehara Y, Motomura R, Sakurai S, Tanimoto K, Matsumoto T. | Anaerobe | 10.1016/j.anaerobe.2018.08.011 | 2018 | |
| Enzymology | Biochemical Characterization of Multimodular Xylanolytic Carbohydrate Esterases from the Marine Bacterium Flavimarina sp. Hel_I_48. | Teune M, Dohler T, Bartosik D, Schweder T, Bornscheuer UT. | Chembiochem | 10.1002/cbic.202500058 | 2025 | |
| Gut dysbiosis patterns in CVID patients with noninfectious complications observed in a germ-free mouse model through fecal microbiota transplantation. | Hajjar J, Voigt AY, Conner ME, Swennes AG, Fowler S, Calarge C, Mendonca DD, Armstrong D, Chang CY, Walter JE, Butte MJ, Savidge T, Oh J, Kheradmand F, Petrosino JF. | J Hum Immun | 10.70962/jhi.20250040 | 2025 | ||
| Metabolism | Understanding the Role of Free-Living Bacteria in the Gut of the Lower Termite Coptotermes gestroi Based on Metagenomic DNA Analysis. | Do TH, Dao TK, Nguyen HD, Truong NH. | Insects | 10.3390/insects14110832 | 2023 | |
| Screening and characterization of a novel cellulase gene from the gut microflora of Hermetia illucens using metagenomic library. | Lee CM, Lee YS, Seo SH, Yoon SH, Kim SJ, Hahn BS, Sim JS, Koo BS. | J Microbiol Biotechnol | 10.4014/jmb.1405.05001 | 2014 | ||
| Genetics | Metagenomic and Culturomics Analysis of Microbial Communities within Surface Sediments and the Prevalence of Antibiotic Resistance Genes in a Pristine River: The Zaqu River in the Lancang River Source Region, China. | Yan Y, Xu J, Huang W, Fan Y, Li Z, Tian M, Ma J, Lu X, Liang J. | Microorganisms | 10.3390/microorganisms12050911 | 2024 | |
| A novel esterase regulates Klebsiella pneumoniae hypermucoviscosity and virulence. | Wang L, Wang Z, Zhang H, Jin Q, Fan S, Liu Y, Huang X, Guo J, Cai C, Zhang JR, Wu H. | PLoS Pathog | 10.1371/journal.ppat.1012675 | 2024 | ||
| Enzymology | First isolation of Dysgonomonas mossii from intestinal juice of a patient with pancreatic cancer. | Matsumoto T, Kawakami Y, Oana K, Honda T, Yamauchi K, Okimura Y, Shiohara M, Kasuga E. | Arch Med Res | 10.1016/j.arcmed.2006.05.002 | 2006 | |
| Phylogeny | Evaluation of the Bruker MALDI Biotyper for Identification of Fastidious Gram-Negative Rods. | Schulthess B, Bloemberg GV, Zbinden A, Mouttet F, Zbinden R, Bottger EC, Hombach M. | J Clin Microbiol | 10.1128/jcm.03107-15 | 2016 | |
| FiberGrowth Pipeline: A Framework Toward Predicting Fiber-Specific Growth From Human Gut Bacteroidetes Genomes. | Colnet B, Sieber CMK, Perraudeau F, Leclerc M. | Front Microbiol | 10.3389/fmicb.2021.632567 | 2021 | ||
| Metabolism | Electro-fermentation triggering population selection in mixed-culture glycerol fermentation. | Moscoviz R, Trably E, Bernet N. | Microb Biotechnol | 10.1111/1751-7915.12747 | 2018 | |
| Multiple conversion between the genes encoding bacterial class-I release factors. | Ishikawa SA, Kamikawa R, Inagaki Y. | Sci Rep | 10.1038/srep12406 | 2015 | ||
| Galactooligosaccharides and Resistant Starch Altered Microbiota and Short-Chain Fatty Acids in an in vitro Fermentation Study Using Gut Contents of Mud Crab (Scylla paramamosain). | Tran NT, Tang Y, Li Z, Zhang M, Wen X, Ma H, Li S. | Front Microbiol | 10.3389/fmicb.2020.01352 | 2020 | ||
| Debromination of Hexabromocyclododecane by Anaerobic Consortium and Characterization of Functional Bacteria. | Peng X, Wei D, Huang Q, Jia X. | Front Microbiol | 10.3389/fmicb.2018.01515 | 2018 | ||
| Genetics | The Planktonic Core Microbiome and Core Functions in the Cattle Rumen by Next Generation Sequencing. | Wirth R, Kadar G, Kakuk B, Maroti G, Bagi Z, Szilagyi A, Rakhely G, Horvath J, Kovacs KL. | Front Microbiol | 10.3389/fmicb.2018.02285 | 2018 | |
| Metabolism | Newly cultured bacteria with broad diversity isolated from eight-week continuous culture enrichments of cow feces on complex polysaccharides. | Ziemer CJ. | Appl Environ Microbiol | 10.1128/aem.03016-13 | 2014 | |
| Phylogeny | Genome-Based Taxonomic Classification of Bacteroidetes. | Hahnke RL, Meier-Kolthoff JP, Garcia-Lopez M, Mukherjee S, Huntemann M, Ivanova NN, Woyke T, Kyrpides NC, Klenk HP, Goker M. | Front Microbiol | 10.3389/fmicb.2016.02003 | 2016 | |
| Phylogeny | Dysgonomonas mossii Strain Shenzhen WH 0221, a New Member of the Genus Dysgonomonas Isolated from the Blood of a Patient with Diabetic Nephropathy, Exhibits Multiple Antibiotic Resistance. | Gao X, Wei J, Hao T, Yang T, Han X, Li M, Li X, Xiong D, Zhang X | Microbiol Spectr | 10.1128/spectrum.02381-21 | 2022 | |
| Phylogeny | Dysgonomonas alginatilytica sp. nov., an alginate-degrading bacterium isolated from a microbial consortium. | Kita A, Miura T, Okamura Y, Aki T, Matsumura Y, Tajima T, Kato J, Nakashimada Y | Int J Syst Evol Microbiol | 10.1099/ijsem.0.000459 | 2015 | |
| Phylogeny | Dysgonomonas oryzarvi sp. nov., isolated from a microbial fuel cell. | Kodama Y, Shimoyama T, Watanabe K | Int J Syst Evol Microbiol | 10.1099/ijs.0.039040-0 | 2012 | |
| Phylogeny | Dysgonomonas mossii sp. nov., from human sources. | Lawson PA, Falsen E, Inganas E, Weyant RS, Collins MD | Syst Appl Microbiol | 10.1078/0723-2020-00107 | 2002 |
| #16541 | Leibniz Institut DSMZ-Deutsche Sammlung von Mikroorganismen und Zellkulturen GmbH ; Curators of the DSMZ; DSM 22836 |
| #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 ) |
| #20218 | Verslyppe, B., De Smet, W., De Baets, B., De Vos, P., Dawyndt P.: StrainInfo introduces electronic passports for microorganisms.. Syst Appl Microbiol. 37: 42 - 50 2014 ( DOI 10.1016/j.syapm.2013.11.002 , PubMed 24321274 ) |
| #33044 | ; Curators of the CIP; |
| #55874 | Culture Collection University of Gothenburg (CCUG) ; Curators of the CCUG; CCUG 43457 |
| #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 ) |
| #67770 | Japan Collection of Microorganism (JCM) ; Curators of the JCM; |
| #68367 | Automatically annotated from API 20A . |
| #68377 | Automatically annotated from API NH . |
| #68380 | Automatically annotated from API rID32A . |
| #68382 | Automatically annotated from API zym . |
| #69479 | João F Matias Rodrigues, Janko Tackmann,Gregor Rot, Thomas SB Schmidt, Lukas Malfertheiner, Mihai Danaila,Marija Dmitrijeva, Daniela Gaio, Nicolas Näpflin and Christian von Mering. University of Zurich.: MicrobeAtlas 1.0 beta . |
| #121148 | Collection of Institut Pasteur ; Curators of the CIP; CIP 107079 |
| #125438 | Julia Koblitz, Lorenz Christian Reimer, Rüdiger Pukall, Jörg Overmann: Predicting bacterial phenotypic traits through improved machine learning using high-quality, curated datasets. 2024 ( DOI 10.1101/2024.08.12.607695 ) |
| #125439 | Philipp Münch, René Mreches, Martin Binder, Hüseyin Anil Gündüz, Xiao-Yin To, Alice McHardy: deepG: Deep Learning for Genome Sequence Data. R package version 0.3.1 . |
| #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 ) |
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BacDive in 2025: the core database for prokaryotic strain data