Enterococcus faecalis 10C1 is a microaerophile, Gram-positive, coccus-shaped bacterium of the family Enterococcaceae.
Gram-positive coccus-shaped microaerophile Bacteria| @ref 20215 |
|
|
| Domain Bacteria |
| Phylum Bacillota |
| Class Bacilli |
| Order Lactobacillales |
| Family Enterococcaceae |
| Genus Enterococcus |
| Species Enterococcus faecalis |
| Full scientific name Enterococcus faecalis (Andrewes and Horder 1906) Schleifer and Kilpper-Bälz 1984 |
| Synonyms (1) |
| @ref | Name | Growth | Medium link | Composition | |
|---|---|---|---|---|---|
| 8795 | 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 | ||
| 8795 | TRYPTICASE SOY YEAST EXTRACT MEDIUM (DSMZ Medium 92) | Medium recipe at MediaDive | Name: TRYPTICASE SOY YEAST EXTRACT MEDIUM (DSMZ Medium 92) Composition: Trypticase soy broth 30.0 g/l Agar 15.0 g/l Yeast extract 3.0 g/l Distilled water | ||
| 35733 | MEDIUM 3 - Columbia agar | Columbia agar (39.000 g);distilled water (1000.000 ml) | |||
| 119167 | CIP Medium 29 | Medium recipe at CIP | |||
| 119167 | CIP Medium 6 | Medium recipe at CIP | |||
| 119167 | CIP Medium 3 | Medium recipe at CIP |
| 8795 | Compoundlipoic acid |
| @ref | Salt | Growth | Tested relation | Concentration | |
|---|---|---|---|---|---|
| 119167 | NaCl | positive | growth | 6.5 % |
| @ref | Murein short key | Type | |
|---|---|---|---|
| 8795 | A11.06 | A3alpha L-Lys-L-Ala3 |
| @ref | Chebi-ID | Metabolite | Utilization activity | Kind of utilization tested | |
|---|---|---|---|---|---|
| 68381 | 40585 ChEBI | alpha-cyclodextrin | - | builds acid from | from API rID32STR |
| 68371 | 27613 ChEBI | amygdalin | + | builds acid from | from API 50CH acid |
| 68371 | 18305 ChEBI | arbutin | + | builds acid from | from API 50CH acid |
| 68381 | 29016 ChEBI | arginine | + | hydrolysis | from API rID32STR |
| 68371 | 17057 ChEBI | cellobiose | + | builds acid from | from API 50CH acid |
| 68371 | 17108 ChEBI | D-arabinose | - | builds acid from | from API 50CH acid |
| 68371 | 18333 ChEBI | D-arabitol | - | builds acid from | from API 50CH acid |
| 68381 | 18333 ChEBI | D-arabitol | - | builds acid from | from API rID32STR |
| 68371 | 15824 ChEBI | D-fructose | + | builds acid from | from API 50CH acid |
| 68371 | 28847 ChEBI | D-fucose | - | builds acid from | from API 50CH acid |
| 68371 | 12936 ChEBI | D-galactose | + | builds acid from | from API 50CH acid |
| 68371 | 17634 ChEBI | D-glucose | + | builds acid from | from API 50CH acid |
| 68371 | 62318 ChEBI | D-lyxose | - | builds acid from | from API 50CH acid |
| 68381 | 16899 ChEBI | D-mannitol | + | builds acid from | from API rID32STR |
| 68371 | 16899 ChEBI | D-mannitol | + | builds acid from | from API 50CH acid |
| 68371 | 16024 ChEBI | D-mannose | + | builds acid from | from API 50CH acid |
| 68381 | 16988 ChEBI | D-ribose | + | builds acid from | from API rID32STR |
| 68371 | 16988 ChEBI | D-ribose | + | builds acid from | from API 50CH acid |
| 68371 | 17924 ChEBI | D-sorbitol | + | builds acid from | from API 50CH acid |
| 68371 | 16443 ChEBI | D-tagatose | + | builds acid from | from API 50CH acid |
| 68381 | 16443 ChEBI | D-tagatose | + | builds acid from | from API rID32STR |
| 68371 | 65327 ChEBI | D-xylose | - | builds acid from | from API 50CH acid |
| 68371 | 17113 ChEBI | erythritol | - | builds acid from | from API 50CH acid |
| 68371 | 4853 ChEBI | esculin | + | builds acid from | from API 50CH acid |
| 68371 | 16813 ChEBI | galactitol | - | builds acid from | from API 50CH acid |
| 68371 | 28066 ChEBI | gentiobiose | + | builds acid from | from API 50CH acid |
| 68371 | 24265 ChEBI | gluconate | + | builds acid from | from API 50CH acid |
| 68371 | 17754 ChEBI | glycerol | + | builds acid from | from API 50CH acid |
| 68381 | 28087 ChEBI | glycogen | - | builds acid from | from API rID32STR |
| 68371 | 28087 ChEBI | glycogen | - | builds acid from | from API 50CH acid |
| 68371 | 15443 ChEBI | inulin | - | builds acid from | from API 50CH acid |
| 68381 | 30849 ChEBI | L-arabinose | - | builds acid from | from API rID32STR |
| 68371 | 30849 ChEBI | L-arabinose | - | builds acid from | from API 50CH acid |
| 68371 | 18403 ChEBI | L-arabitol | - | builds acid from | from API 50CH acid |
| 68371 | 18287 ChEBI | L-fucose | - | builds acid from | from API 50CH acid |
| 68371 | 17266 ChEBI | L-sorbose | - | builds acid from | from API 50CH acid |
| 68371 | 65328 ChEBI | L-xylose | - | builds acid from | from API 50CH acid |
| 68371 | 17716 ChEBI | lactose | + | builds acid from | from API 50CH acid |
| 68381 | 17716 ChEBI | lactose | + | builds acid from | from API rID32STR |
| 68381 | 17306 ChEBI | maltose | + | builds acid from | from API rID32STR |
| 68371 | 17306 ChEBI | maltose | + | builds acid from | from API 50CH acid |
| 68381 | 6731 ChEBI | melezitose | + | builds acid from | from API rID32STR |
| 68371 | 6731 ChEBI | melezitose | + | builds acid from | from API 50CH acid |
| 68381 | 28053 ChEBI | melibiose | - | builds acid from | from API rID32STR |
| 68371 | 28053 ChEBI | melibiose | - | builds acid from | from API 50CH acid |
| 68371 | 320061 ChEBI | methyl alpha-D-glucopyranoside | + | builds acid from | from API 50CH acid |
| 68371 | 43943 ChEBI | methyl alpha-D-mannoside | - | builds acid from | from API 50CH acid |
| 68381 | 320055 ChEBI | methyl beta-D-glucopyranoside | + | builds acid from | from API rID32STR |
| 68371 | 74863 ChEBI | methyl beta-D-xylopyranoside | - | builds acid from | from API 50CH acid |
| 68371 | 17268 ChEBI | myo-inositol | - | builds acid from | from API 50CH acid |
| 68371 | 59640 ChEBI | N-acetylglucosamine | + | builds acid from | from API 50CH acid |
| 119167 | 17632 ChEBI | nitrate | - | reduction | |
| 119167 | 16301 ChEBI | nitrite | - | reduction | |
| 68371 | 0 ChEBI | Potassium 2-ketogluconate | - | builds acid from | from API 50CH acid |
| 68371 | 0 ChEBI | Potassium 5-ketogluconate | - | builds acid from | from API 50CH acid |
| 68381 | 27941 ChEBI | pullulan | - | builds acid from | from API rID32STR |
| 68381 | 16634 ChEBI | raffinose | - | builds acid from | from API rID32STR |
| 68371 | 16634 ChEBI | raffinose | - | builds acid from | from API 50CH acid |
| 68371 | 15963 ChEBI | ribitol | - | builds acid from | from API 50CH acid |
| 68371 | 17814 ChEBI | salicin | + | builds acid from | from API 50CH acid |
| 68381 | 30911 ChEBI | sorbitol | + | builds acid from | from API rID32STR |
| 68371 | 28017 ChEBI | starch | + | builds acid from | from API 50CH acid |
| 68381 | 17992 ChEBI | sucrose | + | builds acid from | from API rID32STR |
| 68371 | 17992 ChEBI | sucrose | + | builds acid from | from API 50CH acid |
| 68381 | 27082 ChEBI | trehalose | + | builds acid from | from API rID32STR |
| 68371 | 27082 ChEBI | trehalose | + | builds acid from | from API 50CH acid |
| 68371 | 17151 ChEBI | xylitol | - | builds acid from | from API 50CH acid |
| @ref | Chebi-ID | Metabolite | Production | |
|---|---|---|---|---|
| 68381 | 15688 ChEBI | acetoin | from API rID32STR |
| @ref | Value | Activity | Ec | |
|---|---|---|---|---|
| 68382 | acid phosphatase | + | 3.1.3.2 | from API zym |
| 68381 | Alanyl-Phenylalanyl-Proline arylamidase | - | from API rID32STR | |
| 119167 | alcohol dehydrogenase | + | 1.1.1.1 | |
| 68382 | alkaline phosphatase | + | 3.1.3.1 | from API zym |
| 68382 | alpha-chymotrypsin | + | 3.4.21.1 | from API zym |
| 68382 | alpha-fucosidase | - | 3.2.1.51 | from API zym |
| 68382 | alpha-galactosidase | - | 3.2.1.22 | from API zym |
| 68381 | alpha-galactosidase | - | 3.2.1.22 | from API rID32STR |
| 68382 | alpha-glucosidase | + | 3.2.1.20 | from API zym |
| 68382 | alpha-mannosidase | - | 3.2.1.24 | from API zym |
| 68381 | arginine dihydrolase | + | 3.5.3.6 | from API rID32STR |
| 68382 | beta-galactosidase | + | 3.2.1.23 | from API zym |
| 119167 | beta-galactosidase | + | 3.2.1.23 | |
| 68382 | beta-glucosidase | + | 3.2.1.21 | from API zym |
| 68381 | beta-glucosidase | + | 3.2.1.21 | from API rID32STR |
| 68382 | beta-glucuronidase | - | 3.2.1.31 | from API zym |
| 68381 | beta-glucuronidase | - | 3.2.1.31 | from API rID32STR |
| 68381 | beta-mannosidase | + | 3.2.1.25 | from API rID32STR |
| 8795 | catalase | + | 1.11.1.6 | |
| 119167 | catalase | - | 1.11.1.6 | |
| 68382 | cystine arylamidase | + | 3.4.11.3 | from API zym |
| 8795 | cytochrome-c oxidase | - | 1.9.3.1 | |
| 68382 | esterase (C 4) | + | from API zym | |
| 68382 | esterase lipase (C 8) | + | from API zym | |
| 68381 | glycyl tryptophan arylamidase | + | from API rID32STR | |
| 68382 | leucine arylamidase | + | 3.4.11.1 | from API zym |
| 68382 | lipase (C 14) | - | from API zym | |
| 119167 | lysine decarboxylase | - | 4.1.1.18 | |
| 68382 | N-acetyl-beta-glucosaminidase | + | 3.2.1.52 | from API zym |
| 68382 | naphthol-AS-BI-phosphohydrolase | + | from API zym | |
| 119167 | ornithine decarboxylase | - | 4.1.1.17 | |
| 119167 | oxidase | - | ||
| 68381 | pyrrolidonyl arylamidase | + | 3.4.19.3 | from API rID32STR |
| 68382 | trypsin | - | 3.4.21.4 | from API zym |
| 68382 | valine arylamidase | - | from API zym |
| @ref | ControlQ | GLY | ERY | DARA | LARA | RIB | DXYL | LXYL | ADO | MDX | GAL | GLU | FRU | MNE | SBE | RHA | DUL | INO | MAN | SOR | MDM | MDG | NAG | AMY | ARB | ESC | SAL | CEL | MAL | LAC | MEL | SAC | TRE | INU | MLZ | RAF | AMD | GLYG | XLT | GEN | TUR | LYX | TAG | DFUC | LFUC | DARL | LARL | GNT | 2KG | 5KG | |
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| 119167 | not determinedn.d. | + | - | - | - | + | - | - | - | - | + | + | + | + | - | +/- | - | - | + | + | - | + | + | + | + | + | + | + | + | + | - | + | + | - | + | - | + | - | - | + | +/- | - | + | - | - | - | - | + | - | - |
| @ref | ADH (Arg) | beta GLU | beta GAR | beta GUR | alpha GAL | PAL | RIB | MAN | SOR | LAC | TRE | RAF | SAC | LARA | DARL | Acid from alpha-cyclodextrinCDEX | Acetoin production (Voges Proskauer test)VP | Alanyl-Phenylalanyl-Proline arylamidaseAPPA | beta GAL | Pyrrolidonyl arylamidasePyrA | N-Acetyl-glucosaminidasebeta NAG | Glycyl-tryptophan arylamidaseGTA | HIP | GLYG | PUL | MAL | MEL | MLZ | Acidification of methyl beta-D-glucopyranosideMbeta DG | TAG | beta MAN | URE | |
|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|---|
| 8795 | + | + | - | - | - | + | + | + | + | + | + | - | + | - | - | - | + | - | + | + | + | + | + | - | - | + | - | + | + | + | + | - | |
| 8795 | + | + | - | - | - | - | + | + | + | + | + | - | + | - | - | - | + | - | - | + | - | + | - | - | - | + | - | + | + | + | + | + | |
| 8795 | + | + | + | - | - | + | + | + | + | + | + | - | + | - | - | - | + | - | - | + | - | + | - | - | - | + | - | + | + | + | + | - |
| Topic | Title | Authors | Journal | DOI | Year | |
|---|---|---|---|---|---|---|
| Characterization of the salivary microbiome before and after antibiotic therapy via separation technique. | Pauter-Iwicka K, Railean V, Zloch M, Pomastowski P, Szultka-Mlynska M, Blonska D, Kupczyk W, Buszewski B. | Appl Microbiol Biotechnol | 10.1007/s00253-023-12371-0 | 2023 | ||
| Identification of Bacteria Associated with Post-Operative Wounds of Patients with the Use of Matrix-Assisted Laser Desorption/Ionization Time-of-Flight Mass Spectrometry Approach. | Szultka-Mlynska M, Janiszewska D, Pomastowski P, Zloch M, Kupczyk W, Buszewski B. | Molecules | 10.3390/molecules26165007 | 2021 | ||
| Metabolism | Metabolic Profiling of VOCs Emitted by Bacteria Isolated from Pressure Ulcers and Treated with Different Concentrations of Bio-AgNPs. | Monedeiro F, Railean-Plugaru V, Monedeiro-Milanowski M, Pomastowski P, Buszewski B. | Int J Mol Sci | 10.3390/ijms22094696 | 2021 | |
| A Multifunctional Oxovanadium(V) Schiff Base Complex: Integrated Pyridoxine Sensing and Anticancer and Antimicrobial Activities. | Kohanfekr T, Hosseini HA. | Bioinorg Chem Appl | 10.1155/bca/8974330 | 2025 | ||
| The Effect of Photodynamic Therapy on Enterococcus spp. and Its Application in Dentistry: A Scoping Review | Rubilar-Huenchuman M, Ortega-Villanueva C, Gonzalez I, Palavecino C. | Pharmaceutics | 2024 | |||
| Comparison of the Antibacterial Effect of AH26, Adseal and Beta RCS Root Canal Sealers against Enterococcus Faecalis, an in Vitro Study. | Ghabraei S, Assadian H, Razmi H, Sheikhrezaei MS, Khedmat S, Chitsaz N, Mohammadi Z, Noori F. | Front Dent | 10.18502/fid.v21i5.14853 | 2024 | ||
| Chemical Composition, Molecular Docking Analysis, and Biological Properties of Salvia Mirzayanii. | Mahdizadehdehosta R, Shahbazmohammadi H, Moein S, Soltani N, Malekzadeh K, Moein M. | Adv Biomed Res | 10.4103/abr.abr_220_24 | 2025 | ||
| Dual acid-base catalysis with biologically modified graphene oxide: a sustainable route to polyhydroquinolines with antimicrobial properties. | Amiri-Zirtol L, Emtiazi H, Abootalebi SN, Gholami A. | Sci Rep | 10.1038/s41598-025-94389-0 | 2025 | ||
| Antibacterial efficacy of antibiotic pastes versus calcium hydroxide intracanal dressing: A systematic review and meta-analysis of ex vivo studies. | Vatankhah M, Khosravi K, Zargar N, Shirvani A, Nekoofar MH, Dianat O. | J Conserv Dent | 10.4103/jcd.jcd_183_22 | 2022 | ||
| Pathogenicity | In vitro activity of daptomycin against Enterococcus faecalis under various conditions of growth-phases, inoculum and pH. | Argemi X, Hansmann Y, Christmann D, Lefebvre S, Jaulhac B, Jehl F. | PLoS One | 10.1371/journal.pone.0064218 | 2013 | |
| Anti-bacterial efficacy of Aloe vera against E. Faecalis in comparison to other intracanal medicaments: A systematic review and meta-analysis. | Tariq R, Khurshid Z, Ahmed Farooqui W, Adanir N. | Saudi Dent J | 10.1016/j.sdentj.2023.05.007 | 2023 | ||
| Antimicrobial potential of Indian Cinnamomum species. | Singh B, Nathawat S, Avtar Sharma R. | Saudi J Biol Sci | 10.1016/j.sjbs.2022.103549 | 2023 | ||
| Comparative Evaluation of Anti Microbial effects of Triple Antibiotic Paste and Amox and its derivatives against E. Faecalis: An in vitro study. | Kaur M, Kendre S, Gupta P, Singh N, Sethi H, Gupta N, Acharya R. | J Clin Exp Dent | 10.4317/jced.53053 | 2017 | ||
| Experimental and theoretical investigations of Erbium complex: DNA/BSA interaction, anticancer and antibacterial studies. | Thanoon RD, Ibadi EA, Ahmad I, Alamir HTA, Alwan M, Hashim FS, Khaled DW, Alkhafaji AT, Asiri M, Alsaalamy A. | Front Chem | 10.3389/fchem.2023.1266520 | 2023 | ||
| Comparison of the antibacterial effect of sodium hypochlorite and aloe vera solutions as root canal irrigants in human extracted teeth contaminated with enterococcus faecalis. | Sahebi S, Khosravifar N, Sedighshamsi M, Motamedifar M. | J Dent (Shiraz) | 2014 | |||
| Composition, Cytotoxic and Antimicrobial Activities of Satureja intermedia C.A.Mey Essential Oil. | Sharifi-Rad J, Sharifi-Rad M, Hoseini-Alfatemi SM, Iriti M, Sharifi-Rad M, Sharifi-Rad M. | Int J Mol Sci | 10.3390/ijms160817812 | 2015 | ||
| The ability of triple antibiotic paste and calcium hydroxide in disinfection of dentinal tubules. | Adl A, Hamedi S, Sedigh Shams M, Motamedifar M, Sobhnamayan F. | Iran Endod J | 2014 | |||
| Synthesis of new 2-(5-(5-nitrofuran-2-yl)-1,3,4-thiadiazol-2-ylimino)thiazolidin-4-one derivatives as anti-MRSA and anti-H. pylori agents. | Tabei A, Ejtemaei R, Mahboubi A, Saniee P, Foroumadi A, Dehdari A, Almasirad A. | BMC Chem | 10.1186/s13065-022-00829-7 | 2022 | ||
| Antibacterial Effect of Hydroalcoholic Extract of Punica granatum Linn. Petal on Common Oral Microorganisms. | Hajifattahi F, Moravej-Salehi E, Taheri M, Mahboubi A, Kamalinejad M. | Int J Biomater | 10.1155/2016/8098943 | 2016 | ||
| Chemical Composition, Antioxidant and Antimicrobial Activities of Thymus capitata Essential Oil with Its Preservative Effect against Listeria monocytogenes Inoculated in Minced Beef Meat. | El Abed N, Kaabi B, Smaali MI, Chabbouh M, Habibi K, Mejri M, Marzouki MN, Ben Hadj Ahmed S. | Evid Based Complement Alternat Med | 10.1155/2014/152487 | 2014 | ||
| Characterization and in vitro Analysis of Probiotic-Derived Peptides Against Multi Drug Resistance Bacterial Infections. | Mazumdar A, Haddad Y, Sur VP, Milosavljevic V, Bhowmick S, Michalkova H, Guran R, Vesely R, Moulick A. | Front Microbiol | 10.3389/fmicb.2020.01963 | 2020 | ||
| Design, Synthesis, Biological Evaluation and Molecular Modeling Study of Novel Indolizine-1-Carbonitrile Derivatives as Potential Anti-Microbial Agents. | Faghih-Mirzaei E, Seifi M, Abaszadeh M, Zomorodian K, Helali H. | Iran J Pharm Res | 2018 | |||
| Chemical composition and antimicrobial activities of essential oil of nepeta cataria L. Against common causes of oral infections. | Zomorodian K, Saharkhiz MJ, Rahimi MJ, Shariatifard S, Pakshir K, Khashei R. | J Dent (Tehran) | 2013 | |||
| A novel antibacterial compound from Siegesbeckia glabrescens. | Kim YS, Kim H, Jung E, Kim JH, Hwang W, Kang EJ, Lee S, Ha BJ, Lee J, Park D. | Molecules | 10.3390/molecules171112469 | 2012 | ||
| Metabolism | Alkaline phosphatase reporter transposon for identification of genes encoding secreted proteins in gram-positive microorganisms. | Gibson CM, Caparon MG. | Appl Environ Microbiol | 10.1128/aem.68.02.928-932.2002 | 2002 | |
| Enzymology | Detection of human intestinal catalase-negative, Gram-positive cocci by rRNA-targeted reverse transcription-PCR. | Kubota H, Tsuji H, Matsuda K, Kurakawa T, Asahara T, Nomoto K. | Appl Environ Microbiol | 10.1128/aem.03132-09 | 2010 | |
| Metabolism | Branched-chain alpha-keto acid catabolism via the gene products of the bkd operon in Enterococcus faecalis: a new, secreted metabolite serving as a temporary redox sink. | Ward DE, van Der Weijden CC, van Der Merwe MJ, Westerhoff HV, Claiborne A, Snoep JL. | J Bacteriol | 10.1128/jb.182.11.3239-3246.2000 | 2000 | |
| Enzymology | Catabolism of branched-chain alpha-keto acids in Enterococcus faecalis: the bkd gene cluster, enzymes, and metabolic route. | Ward DE, Ross RP, van der Weijden CC, Snoep JL, Claiborne A. | J Bacteriol | 10.1128/jb.181.17.5433-5442.1999 | 1999 | |
| Metabolism | Contribution of NADH oxidase to aerobic metabolism of Streptococcus pyogenes. | Gibson CM, Mallett TC, Claiborne A, Caparon MG. | J Bacteriol | 10.1128/jb.182.2.448-455.2000 | 2000 | |
| Metabolism | Characterization of Enterococcus faecalis alkaline phosphatase and use in identifying Streptococcus agalactiae secreted proteins. | Lee MH, Nittayajarn A, Ross RP, Rothschild CB, Parsonage D, Claiborne A, Rubens CE. | J Bacteriol | 10.1128/jb.181.18.5790-5799.1999 | 1999 | |
| Genetics | Generation of restriction map of Enterococcus faecalis OG1 and investigation of growth requirements and regions encoding biosynthetic function. | Murray BE, Singh KV, Ross RP, Heath JD, Dunny GM, Weinstock GM. | J Bacteriol | 10.1128/jb.175.16.5216-5223.1993 | 1993 | |
| Metabolism | Purification and characterization of NADH oxidase from Serpulina (Treponema) hyodysenteriae. | Stanton TB, Jensen NS. | J Bacteriol | 10.1128/jb.175.10.2980-2987.1993 | 1993 | |
| Metabolism | The carbamate kinase-like carbamoyl phosphate synthetase of the hyperthermophilic archaeon Pyrococcus furiosus, a missing link in the evolution of carbamoyl phosphate biosynthesis. | Durbecq V, Legrain C, Roovers M, Pierard A, Glansdorff N. | Proc Natl Acad Sci U S A | 10.1073/pnas.94.24.12803 | 1997 | |
| Characterization of the chromosomal aac(6')-Ii gene specific for Enterococcus faecium. | Costa Y, Galimand M, Leclercq R, Duval J, Courvalin P. | Antimicrob Agents Chemother | 10.1128/aac.37.9.1896 | 1993 | ||
| Metabolism | Development of a selective enterococcus medium based on manganese ion deficiency, sodium azide, and alkaline pH. | Efthymiou CJ, Joseph SW. | Appl Microbiol | 10.1128/am.28.3.411-416.1974 | 1974 | |
| Stress | PROBABLE IDENTITY OF A GROUP D HEMOLYSIN WITH A BACTERIOCINE. | BROCK TD, DAVIE JM. | J Bacteriol | 10.1128/jb.86.4.708-712.1963 | 1963 | |
| Biotechnology | Improved isolation and differentiation of enterococci in cheese. | Efthymiou CJ, Baccash P, Labombardi VJ, Epstein DS. | Appl Microbiol | 10.1128/am.28.3.417-422.1974 | 1974 | |
| Metabolism | Action of streptolysin S, the group D hemolysin, and phospholipase C on whole cells and spheroplasts. | Davie JM, Brock TD. | J Bacteriol | 10.1128/jb.91.2.595-600.1966 | 1966 | |
| Stress | SURVEY OF THE BACTERIOCINES OF ENTEROCOCCI. | BROCK TD, PEACHER B, PIERSON D. | J Bacteriol | 10.1128/jb.86.4.702-707.1963 | 1963 | |
| Bacteriostatic Potency of Fe2O3 Against Enterococcus faecalis in Synergy with Antibiotics by DDST Method. | Shahbazi E, Morshedzadeh F, Zaeifi D | Avicenna J Med Biotechnol | 2019 | |||
| Pathogenicity | Photodynamic effect of hypericin on the microorganisms and primary human fibroblasts. | Kashef N, Borghei YS, Djavid GE | Photodiagnosis Photodyn Ther | 10.1016/j.pdpdt.2012.11.007 | 2012 | |
| Enzymology | The role of two families of bacterial enzymes in putrescine synthesis from agmatine via agmatine deiminase. | Landete JM, Arena ME, Pardo I, Manca de Nadra MC, Ferrer S | Int Microbiol | 10.2436/20.1501.01.123 | 2010 | |
| Metabolism | Comparative survey of putrescine production from agmatine deamination in different bacteria. | Landete JM, Arena ME, Pardo I, Manca de Nadra MC, Ferrer S | Food Microbiol | 10.1016/j.fm.2008.06.001 | 2008 | |
| Enzymology | Molecular cloning and analysis of the gene encoding the NADH oxidase from Streptococcus faecalis 10C1. Comparison with NADH peroxidase and the flavoprotein disulfide reductases. | Ross RP, Claiborne A | J Mol Biol | 10.1016/0022-2836(92)90215-6 | 1992 | |
| Enzymology | Cloning, sequence and overexpression of NADH peroxidase from Streptococcus faecalis 10C1. Structural relationship with the flavoprotein disulfide reductases. | Ross RP, Claiborne A | J Mol Biol | 10.1016/0022-2836(91)80180-3 | 1991 | |
| Enzymology | Heterogeneity among the flavin-containing NADH peroxidases of group D streptococci. Analysis of the enzyme from Streptococcus faecalis ATCC 9790. | Miller H, Poole LB, Claiborne A | J Biol Chem | S0021-9258(19)38750-2 | 1990 | |
| Metabolism | Transport of diamines by Enterococcus faecalis is mediated by an agmatine-putrescine antiporter. | Driessen AJ, Smid EJ, Konings WN | J Bacteriol | 10.1128/jb.170.10.4522-4527.1988 | 1988 | |
| Metabolism | Control of enzyme synthesis in the oxalurate catabolic pathway of Streptococcus faecalis ATCC 11700: evidence for the existence of a third carbamate kinase. | Vander Wauven C, Simon JP, Slos P, Stalon V | Arch Microbiol | 10.1007/BF00470876 | 1986 | |
| Enzymology | Enzymes of agmatine degradation and the control of their synthesis in Streptococcus faecalis. | Simon JP, Stalon V | J Bacteriol | 10.1128/jb.152.2.676-681.1982 | 1982 | |
| Enzymology | Control of enzyme synthesis in the arginine deiminase pathway of Streptococcus faecalis. | Simon JP, Wargnies B, Stalon V | J Bacteriol | 10.1128/jb.150.3.1085-1090.1982 | 1982 | |
| Enzymology | Structure and properties of the putrescine carbamoyltransferase of Streptococcus faecalis. | Wargnies B, Lauwers N, Stalon V | Eur J Biochem | 10.1111/j.1432-1033.1979.tb04226.x | 1979 |
| #8795 | Leibniz Institut DSMZ-Deutsche Sammlung von Mikroorganismen und Zellkulturen GmbH ; Curators of the DSMZ; DSM 20409 |
| #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 ) |
| #35733 | ; Curators of the CIP; |
| #68371 | Automatically annotated from API 50CH acid . |
| #68381 | Automatically annotated from API rID32STR . |
| #68382 | Automatically annotated from API zym . |
| #119167 | Collection of Institut Pasteur ; Curators of the CIP; CIP 55.142 |
| #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/bacdive5291.20260601.11
When using BacDive for research please cite the following paper
BacDive in 2025: the core database for prokaryotic strain data