Streptomyces chartreusis DSM 41447 is a bacterium that builds an aerial mycelium.
genome sequence Bacteria| @ref 20215 |
|
|
| Domain Bacteria |
| Phylum Actinomycetota |
| Class Actinomycetes |
| Order Kitasatosporales |
| Family Streptomycetaceae |
| Genus Streptomyces |
| Species Streptomyces chartreusis |
| Full scientific name Streptomyces chartreusis Leach et al. 1953 (Approved Lists 1980) |
| @ref | Colony color | Medium used | |
|---|---|---|---|
| 69277 | Sand yellow (1002) | ISP 2 | |
| 69277 | Sand yellow (1002) | ISP 3 | |
| 69277 | Sand yellow (1002) | ISP 4 | |
| 69277 | Sand yellow (1002) | ISP 6 | |
| 69277 | Sand yellow (1002) | suter with tyrosine | |
| 69277 | Sand yellow (1002) | suter without tyrosine | |
| 69277 | Sand yellow (1002), Beige (1001) | ISP 7 | |
| 69277 | Sand yellow (1002), Light ivory (1015) | ISP 5 |
| @ref | Forms multicellular complex | Complex name | Complex color | Medium name | |
|---|---|---|---|---|---|
| 69277 | Aerial mycelium | ISP 2 | |||
| 69277 | Aerial mycelium | Signal white (9003), squirrel grey (7000) | ISP 3 | ||
| 69277 | Aerial mycelium | Grey white (9002) | ISP 4 | ||
| 69277 | Aerial mycelium | ISP 5 | |||
| 69277 | Aerial mycelium | ISP 6 | |||
| 69277 | Aerial mycelium | Light ivory (1015), agate grey (7038) | ISP 7 | ||
| 69277 | Aerial mycelium | Light ivory (1015) | suter with tyrosine | ||
| 69277 | Aerial mycelium | Light ivory (1015) | suter without tyrosine |
| @ref: | 10312 |
| multimedia content: | DSM_41447.jpg |
| multimedia.multimedia content: | https://www.dsmz.de/microorganisms/photos/DSM_41447.jpg |
| caption: | Medium 84 28°C |
| intellectual property rights: | © Leibniz-Institut DSMZ |
| manual_annotation: | 1 |
| @ref: | 69277 |
| multimedia content: | DSM_41447_image6.jpeg |
| multimedia.multimedia content: | DSM_41447_image6.jpeg |
| caption: | (ISP6, ISP7) |
| intellectual property rights: | Helmholtz-Zentrum für Infektionsforschung GmbH |
| manual_annotation: | 1 |
| @ref: | 69277 |
| multimedia content: | DSM_41447_image7.jpeg |
| multimedia.multimedia content: | DSM_41447_image7.jpeg |
| caption: | (SSM+T, SSM-T) |
| intellectual property rights: | Helmholtz-Zentrum für Infektionsforschung GmbH |
| manual_annotation: | 1 |
| @ref | Name | Growth | Medium link | Composition | |
|---|---|---|---|---|---|
| 10312 | ROLLED OATS MINERAL MEDIUM (DSMZ Medium 84) | Medium recipe at MediaDive | Name: ROLLED OATS MINERAL MEDIUM (DSMZ Medium 84) Composition: Agar 20.0 g/l Rolled oats 20.0 g/l ZnSO4 x 7 H2O 0.001 g/l MnCl2 x 4 H2O 0.001 g/l FeSO4 x 7 H2O 0.001 g/l Distilled water | ||
| 10312 | STARCH - MINERAL SALT - AGAR (STMS) (DSMZ Medium 252) | Medium recipe at MediaDive | Name: STARCH - MINERAL SALT - AGAR (STMS) (DSMZ Medium 252) Composition: Agar 20.0 g/l Starch 10.0 g/l (NH4)2SO4 2.0 g/l CaCO3 2.0 g/l K2HPO4 1.0 g/l MgSO4 x 7 H2O 1.0 g/l NaCl 1.0 g/l FeSO4 x 7 H2O 0.001 g/l MnCl2 x 4 H2O 0.001 g/l ZnSO4 x 7 H2O 0.001 g/l Distilled water |
| @ref | Growth | Type | Temperature (°C) | |
|---|---|---|---|---|
| 10312 | positive | growth | 28 |
| @ref | Oxygen tolerance | Confidence | |
|---|---|---|---|
| 125439 | obligate aerobe | 97.608 |
| @ref | Spore formation | Confidence | |
|---|---|---|---|
| 125438 | 90.726 |
| @ref | Salt | Growth | Tested relation | Concentration | |
|---|---|---|---|---|---|
| 69277 | NaCl | positive | growth | 0-10 % |
| @ref | Chebi-ID | Metabolite | Utilization activity | Kind of utilization tested | |
|---|---|---|---|---|---|
| 69277 | 22599 ChEBI | arabinose | + | growth | |
| 69277 | 62968 ChEBI | cellulose | - | growth | |
| 68379 | 17634 ChEBI | D-glucose | - | fermentation | from API Coryne |
| 68379 | 16899 ChEBI | D-mannitol | - | fermentation | from API Coryne |
| 68379 | 16988 ChEBI | D-ribose | - | fermentation | from API Coryne |
| 68379 | 65327 ChEBI | D-xylose | - | fermentation | from API Coryne |
| 68379 | 4853 ChEBI | esculin | - | hydrolysis | from API Coryne |
| 69277 | 28757 ChEBI | fructose | + | growth | |
| 68379 | 5291 ChEBI | gelatin | + | hydrolysis | from API Coryne |
| 69277 | 17234 ChEBI | glucose | + | growth | |
| 68379 | 28087 ChEBI | glycogen | - | fermentation | from API Coryne |
| 68379 | 17716 ChEBI | lactose | - | fermentation | from API Coryne |
| 68379 | 17306 ChEBI | maltose | - | fermentation | from API Coryne |
| 69277 | 37684 ChEBI | mannose | + | growth | |
| 69277 | 17268 ChEBI | myo-inositol | + | growth | |
| 68379 | 17632 ChEBI | nitrate | - | reduction | from API Coryne |
| 69277 | 16634 ChEBI | raffinose | + | growth | |
| 69277 | 26546 ChEBI | rhamnose | + | growth | |
| 68379 | 17992 ChEBI | sucrose | - | fermentation | from API Coryne |
| 69277 | 17992 ChEBI | sucrose | + | growth | |
| 68379 | 16199 ChEBI | urea | + | hydrolysis | from API Coryne |
| 69277 | 18222 ChEBI | xylose | + | growth |
| @ref | Value | Activity | Ec | |
|---|---|---|---|---|
| 68382 | acid phosphatase | + | 3.1.3.2 | from API zym |
| 68382 | alkaline phosphatase | + | 3.1.3.1 | from API zym |
| 68379 | alkaline phosphatase | + | 3.1.3.1 | from API Coryne |
| 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 |
| 68382 | alpha-glucosidase | + | 3.2.1.20 | from API zym |
| 68379 | alpha-glucosidase | + | 3.2.1.20 | from API Coryne |
| 68382 | alpha-mannosidase | - | 3.2.1.24 | from API zym |
| 68379 | beta-galactosidase | + | 3.2.1.23 | from API Coryne |
| 68379 | beta-glucosidase | - | 3.2.1.21 | from API Coryne |
| 68382 | beta-glucuronidase | - | 3.2.1.31 | from API zym |
| 68379 | beta-glucuronidase | - | 3.2.1.31 | from API Coryne |
| 68382 | esterase lipase (C 8) | - | from API zym | |
| 68379 | gelatinase | + | from API Coryne | |
| 68382 | leucine arylamidase | + | 3.4.11.1 | from API zym |
| 68382 | N-acetyl-beta-glucosaminidase | + | 3.2.1.52 | from API zym |
| 68379 | N-acetyl-beta-glucosaminidase | - | 3.2.1.52 | from API Coryne |
| 68382 | naphthol-AS-BI-phosphohydrolase | + | from API zym | |
| 68379 | pyrazinamidase | - | 3.5.1.B15 | from API Coryne |
| 68379 | pyrrolidonyl arylamidase | - | 3.4.19.3 | from API Coryne |
| 68382 | trypsin | + | 3.4.21.4 | from API zym |
| 68379 | urease | + | 3.5.1.5 | from API Coryne |
| 68382 | valine arylamidase | + | from API zym |
| @ref | Description | Assembly level | INSDC accession | BV-BRC accession | IMG accession | NCBI tax ID | Score | |
|---|---|---|---|---|---|---|---|---|
| 66792 | NRRL3882 assembly for Streptomyces chartreusis NRRL 3882 | complete | 1079985 | 99.8 | ||||
| 66792 | NRRL3882 assembly for Streptomyces chartreusis NRRL 3882 | complete | 1079985 | 99.8 | ||||
| 66792 | Streptomyces chartreusis NRRL 3882 | complete | 1079985 | 99.33 | ||||
| 66792 | Streptomyces chartreusis NRRL 3882 | complete | 1079985 | 94 | ||||
| 66792 | Streptomyces chartreusis NRRL 3882 | complete | 1079985 | 84.8 | ||||
| 66792 | ASM22643v1 assembly for Streptomyces chartreusis NRRL 3882 | scaffold | 1079985 | 0 |
| @ref | Trait | Model | Prediction | Confidence in % | In training data |
|---|---|---|---|---|---|
| 125439 | gram_stain | BacteriaNetⓘ | positive | 97.88 | no |
| 125439 | oxygen_tolerance | BacteriaNetⓘ | obligate aerobe | 97.61 | no |
| 125439 | motility | BacteriaNetⓘ | no | 92.26 | no |
| 125439 | spore_formation | BacteriaNetⓘ | yes | 76.36 | no |
| @ref | Trait | Model | Prediction | Confidence in % | In training data |
|---|---|---|---|---|---|
| 125438 | gram-positive | gram-positiveⓘ | yes | 88.36 | no |
| 125438 | anaerobic | anaerobicⓘ | no | 96.03 | no |
| 125438 | aerobic | aerobicⓘ | yes | 89.31 | no |
| 125438 | spore-forming | spore-formingⓘ | yes | 90.73 | no |
| 125438 | thermophilic | thermophileⓘ | no | 95.00 | yes |
| 125438 | flagellated | motile2+ⓘ | no | 88.00 | no |
| Topic | Title | Authors | Journal | DOI | Year | |
|---|---|---|---|---|---|---|
| Halogenated volatiles from the fungus Geniculosporium and the actinomycete Streptomyces chartreusis. | Wang T, Rabe P, Citron CA, Dickschat JS. | Beilstein J Org Chem | 10.3762/bjoc.9.311 | 2013 | ||
| Genetics | Draft genome sequence of Streptomyces sp. KD18, isolated from industrial soil. | Khushboo, Singhvi N, Gupta V, Dhaka N, Dubey KK. | 3 Biotech | 10.1007/s13205-022-03453-3 | 2023 | |
| A sensitive pH indicator-based spectrophotometric assay for PHB depolymerase activity on microtiter plates. | Camacho-Ruiz MA, Muller-Santos M, Hernandez-Mancillas XD, Armenta-Perez VP, Zamora-Gonzalez E, Rodriguez JA. | Anal Methods | 10.1039/d0ay00840k | 2020 | ||
| C-N bond formation by a polyketide synthase. | Wang J, Wang X, Li X, Kong L, Du Z, Li D, Gou L, Wu H, Cao W, Wang X, Lin S, Shi T, Deng Z, Wang Z, Liang J. | Nat Commun | 10.1038/s41467-023-36989-w | 2023 | ||
| The impact of Elaeagnus angustifolia root exudates on Parafrankia soli NRRL B-16219 exoproteome. | Kammoun I, Miotello G, Ben Slama K, Armengaud J, Ghodhbane-Gtari F, Gtari M. | J Genomics | 10.7150/jgen.93243 | 2024 | ||
| Identification and characterization of inulinases by bioinformatics analysis of bacterial glycoside hydrolases family 32 (GH32). | Khosravi F, Fard EM, Hosseininezhad M, Shoorideh H. | Eng Life Sci | 10.1002/elsc.202300003 | 2023 | ||
| The Identification and Conservation of Tunicaminyluracil-Related Biosynthetic Gene Clusters in Several Rathayibacter Species Collected From Australia, Africa, Eurasia, and North America. | Tancos MA, Sechler AJ, Davis EW, Chang JH, Schroeder BK, Murray TD, Rogers EE. | Front Microbiol | 10.3389/fmicb.2019.02914 | 2019 | ||
| Probiotic potential of bacteria associated with the mangrove epiphytic algae Bostrychia calliptera and Rhizoclonium riparium | Martinez-Delgado J, Benitez-Campo N. | PeerJ | 2025 | |||
| Impact of Enzymatically Treated Substrate on Yellow Mealworm Development and Composition | Krzyzaniak M, Kosewska O, Bialoskorski P, Warminski K, Stolarski M, Graban L, Lajszner W, Sikorski L, Wilke A, Eisele T. | Insects | 2025 | |||
| Enzymology | Antimicrobial and Cytotoxic Properties of Bioactive Metabolites Produced by Streptomyces cavourensis YBQ59 Isolated from Cinnamomum cassia Prels in Yen Bai Province of Vietnam. | Vu HT, Nguyen DT, Nguyen HQ, Chu HH, Chu SK, Chau MV, Phi QT. | Curr Microbiol | 10.1007/s00284-018-1517-x | 2018 | |
| Culture optimization of Streptomyces sp. KRA16-334 for increased yield of new herbicide 334-W4. | Kim YS, Jang KS, Choi JS. | PLoS One | 10.1371/journal.pone.0301104 | 2024 | ||
| Genetics | Actinomycetes as Producers of Biologically Active Terpenoids: Current Trends and Patents. | Tarasova EV, Luchnikova NA, Grishko VV, Ivshina IB. | Pharmaceuticals (Basel) | 10.3390/ph16060872 | 2023 | |
| Pathogenicity | Polyols, not sugars, determine the structural diversity of anti-streptococcal liamocins produced by Aureobasidium pullulans strain NRRL 50380. | Price NP, Bischoff KM, Leathers TD, Cosse AA, Manitchotpisit P. | J Antibiot (Tokyo) | 10.1038/ja.2016.92 | 2017 | |
| Metabolic engineering of Streptomyces to enhance the synthesis of valuable natural products. | Xu Z, Ji L, Tang W, Guo L, Gao C, Chen X, Liu J, Hu G, Liu L. | Eng Microbiol | 10.1016/j.engmic.2022.100022 | 2022 | ||
| Diversity and Screening of Cellulolytic Microorganisms from Mangrove Forests, Natural Parks, Paddy Field, and Sugarcane Plantation in Panay Island, Philippines. | Gatpatan IGT, Cabulong RB, Sadaba RB. | Int J Microbiol | 10.1155/2024/5573158 | 2024 | ||
| Metabolism | The Biosynthesis of the Benzoxazole in Nataxazole Proceeds via an Unstable Ester and has Synthetic Utility. | Song H, Rao C, Deng Z, Yu Y, Naismith JH. | Angew Chem Int Ed Engl | 10.1002/anie.201915685 | 2020 | |
| Genetics | Whole genome sequence of two Rathayibacter toxicus strains reveals a tunicamycin biosynthetic cluster similar to Streptomyces chartreusis. | Sechler AJ, Tancos MA, Schneider DJ, King JG, Fennessey CM, Schroeder BK, Murray TD, Luster DG, Schneider WL, Rogers EE. | PLoS One | 10.1371/journal.pone.0183005 | 2017 | |
| Enzymology | Draft genome sequence of Streptomyces sp. strain F1, a potential source for glycoside hydrolases isolated from Brazilian soil. | Melo RR, Persinoti GF, Paixao DAA, Squina FM, Ruller R, Sato HH. | Braz J Microbiol | 10.1016/j.bjm.2016.11.010 | 2017 | |
| Metabolism | Combined application of targeted and untargeted proteomics identifies distinct metabolic alterations in the tetraacetylphytosphingosine (TAPS) producing yeast Wickerhamomyces ciferrii. | Wolff D, ter Veld F, Kohler T, Poetsch A. | J Proteomics | 10.1016/j.jprot.2013.03.002 | 2013 | |
| Purification and Characterization of Bioactive Metabolite from Streptomyces monomycini RVE129 Derived from the Rift Valley Soil of Hawassa, Ethiopia. | Elias F, Muddada S, Muleta D, Tefera B. | Biomed Res Int | 10.1155/2022/7141313 | 2022 | ||
| Metabolism | Structural characterization of novel extracellular liamocins (mannitol oils) produced by Aureobasidium pullulans strain NRRL 50380. | Price NP, Manitchotpisit P, Vermillion KE, Bowman MJ, Leathers TD. | Carbohydr Res | 10.1016/j.carres.2013.01.014 | 2013 | |
| Inhibition of Streptococcus mutans and S. sobrinus biofilms by liamocins from Aureobasidium pullulans. | Leathers TD, Rich JO, Bischoff KM, Skory CD, Nunnally MS. | Biotechnol Rep (Amst) | 10.1016/j.btre.2018.e00300 | 2019 | ||
| Regulation of antibiotic biosynthesis in actinomycetes: Perspectives and challenges. | Wei J, He L, Niu G. | Synth Syst Biotechnol | 10.1016/j.synbio.2018.10.005 | 2018 | ||
| More P450s Are Involved in Secondary Metabolite Biosynthesis in Streptomyces Compared to Bacillus, Cyanobacteria, and Mycobacterium. | Mnguni FC, Padayachee T, Chen W, Gront D, Yu JH, Nelson DR, Syed K. | Int J Mol Sci | 10.3390/ijms21134814 | 2020 | ||
| Enzymology | Characterization of Bioactive Actinomycetes Isolated from Kadolkele Mangrove Sediments, Sri Lanka. | Naligama KN, Weerasinghe KE, Halmillawewa AP. | Pol J Microbiol | 10.33073/pjm-2022-017 | 2022 | |
| Pathogenicity | Genetic Interaction of Global Regulators AflatfA and AflatfB Mediating Development, Stress Response and Aflatoxins B1 Production in Aspergillus flavus. | Wang X, Zha W, Yao B, Yang L, Wang S. | Toxins (Basel) | 10.3390/toxins14120857 | 2022 | |
| Regulation of Antibiotic Production by Signaling Molecules in Streptomyces. | Kong D, Wang X, Nie J, Niu G. | Front Microbiol | 10.3389/fmicb.2019.02927 | 2019 | ||
| Bionanofactory for green synthesis of collagen nanoparticles, characterization, optimization, in-vitro and in-vivo anticancer activities. | El-Sawah AA, El-Naggar NE, Eldegla HE, Soliman HM. | Sci Rep | 10.1038/s41598-024-56064-8 | 2024 | ||
| The Application of Regulatory Cascades in Streptomyces: Yield Enhancement and Metabolite Mining. | Xia H, Li X, Li Z, Zhan X, Mao X, Li Y. | Front Microbiol | 10.3389/fmicb.2020.00406 | 2020 | ||
| Streptomyces sp. Strain PBR11, a Forest-Derived Soil Actinomycetia with Antimicrobial Potential. | Mazumdar R, Dutta PP, Saikia J, Borah JC, Thakur D. | Microbiol Spectr | 10.1128/spectrum.03489-22 | 2023 | ||
| Role of Glutathione Redox System on the T-2 Toxin Tolerance of Pheasant (Phasianus colchicus). | Fernye C, Ancsin Z, Bocsai A, Balogh K, Mezes M, Erdelyi M. | Toxicol Res | 10.5487/tr.2018.34.3.249 | 2018 | ||
| Enzymology | Enzymatic and genetic characterization of lignin depolymerization by Streptomyces sp. S6 isolated from a tropical environment. | Riyadi FA, Tahir AA, Yusof N, Sabri NSA, Noor MJMM, Akhir FNMD, Othman N, Zakaria Z, Hara H. | Sci Rep | 10.1038/s41598-020-64817-4 | 2020 | |
| Metabolism | Biosynthesis of Ag, Se, and ZnO nanoparticles with antimicrobial activities against resistant pathogens using waste isolate Streptomyces enissocaesilis. | Shaaban M, El-Mahdy AM. | IET Nanobiotechnol | 10.1049/iet-nbt.2017.0213 | 2018 | |
| Metabolism | Rv3634c from Mycobacterium tuberculosis H37Rv encodes an enzyme with UDP-Gal/Glc and UDP-GalNAc 4-epimerase activities. | Pardeshi P, Rao KK, Balaji PV. | PLoS One | 10.1371/journal.pone.0175193 | 2017 | |
| Phylogeny | Genome comparison of different Zymomonas mobilis strains provides insights on conservation of the evolution. | Chen C, Wu L, Cao Q, Shao H, Li X, Zhang Y, Wang H, Tan X. | PLoS One | 10.1371/journal.pone.0195994 | 2018 | |
| Three putative DNA methyltransferases of Verticillium dahliae differentially contribute to DNA methylation that is dispensable for growth, development and virulence. | Kramer HM, Cook DE, van den Berg GCM, Seidl MF, Thomma BPHJ. | Epigenetics Chromatin | 10.1186/s13072-021-00396-6 | 2021 | ||
| Genetics | When barcoding fails: Genome chimerization (admixing) and reticulation obscure phylogenetic and taxonomic relationships. | Sipiczki M. | Mol Ecol Resour | 10.1111/1755-0998.13586 | 2022 | |
| Genetics | The Genome Analysis of the Human Lung-Associated Streptomyces sp. TR1341 Revealed the Presence of Beneficial Genes for Opportunistic Colonization of Human Tissues. | Lara AC, Corretto E, Kotrbova L, Lorenc F, Petrickova K, Grabic R, Chronakova A. | Microorganisms | 10.3390/microorganisms9081547 | 2021 | |
| Metabolism | Identification and characterization of enzymes involved in the biosynthesis of pyrimidine nucleoside antibiotics. | McErlean M, Liu X, Cui Z, Gust B, Van Lanen SG. | Nat Prod Rep | 10.1039/d0np00064g | 2021 | |
| Biosynthetic study on the polyether carboxylic antibiotic, nigericin production and biohydroxylation of grisorixin by nigericin-producing Streptomyces hygroscopicus NRRL B-1865. | Mouslim J, Cuer A, David L, Tabet JC. | J Antibiot (Tokyo) | 10.7164/antibiotics.48.1011 | 1995 | ||
| Phylogeny | A phylogenetic and evolutionary analysis of antimycin biosynthesis. | Joynt R, Seipke RF. | Microbiology (Reading) | 10.1099/mic.0.000572 | 2018 | |
| Whole genome comparison of Aspergillus flavus L-morphotype strain NRRL 3357 (type) and S-morphotype strain AF70. | Gilbert MK, Mack BM, Moore GG, Downey DL, Lebar MD, Joardar V, Losada L, Yu J, Nierman WC, Bhatnagar D. | PLoS One | 10.1371/journal.pone.0199169 | 2018 | ||
| Effect of different pretreatment of sugar cane bagasse on cellulase and xylanases production by the mutant Penicillium echinulatum 9A02S1 grown in submerged culture. | Camassola M, Dillon AJ. | Biomed Res Int | 10.1155/2014/720740 | 2014 | ||
| The pan-genome of Aspergillus fumigatus provides a high-resolution view of its population structure revealing high levels of lineage-specific diversity driven by recombination. | Lofgren LA, Ross BS, Cramer RA, Stajich JE. | PLoS Biol | 10.1371/journal.pbio.3001890 | 2022 | ||
| Mortality and repellent effects of microbial pathogens on Coptotermes formosanus (Isoptera: Rhinotermitidae). | Wright MS, Cornelius ML. | BMC Microbiol | 10.1186/1471-2180-12-291 | 2012 | ||
| Accurate Identification of Common Pathogenic Nocardia Species: Evaluation of a Multilocus Sequence Analysis Platform and Matrix-Assisted Laser Desorption Ionization-Time of Flight Mass Spectrometry. | Xiao M, Pang L, Chen SC, Fan X, Zhang L, Li HX, Hou X, Cheng JW, Kong F, Zhao YP, Xu YC. | PLoS One | 10.1371/journal.pone.0147487 | 2016 | ||
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| Proteomic Analysis of Pathogenic Fungi Reveals Highly Expressed Conserved Cell Wall Proteins. | Champer J, Ito JI, Clemons KV, Stevens DA, Kalkum M. | J Fungi (Basel) | 10.3390/jof2010006 | 2016 | ||
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| Phylogeny | Screening and characterizing of xylanolytic and xylose-fermenting yeasts isolated from the wood-feeding termite, Reticulitermes chinensis. | Ali SS, Wu J, Xie R, Zhou F, Sun J, Huang M. | PLoS One | 10.1371/journal.pone.0181141 | 2017 | |
| Toxicity of dietary and intravenously administered moniliformin to broiler chickens. | Allen NK, Burmeister HR, Weaver GA, Mirocha CJ. | Poult Sci | 10.3382/ps.0601415 | 1981 | ||
| Peer review of the pesticide risk assessment of the active substance Metschnikowia fructicola NRRL Y-27328. | European Food Safety Authority (EFSA), Arena M, Auteri D, Barmaz S, Bellisai G, Brancato A, Brocca D, Bura L, Byers H, Chiusolo A, Court Marques D, Crivellente F, De Lentdecker C, Egsmose M, Erdos Z, Fait G, Ferreira L, Goumenou M, Greco L, Ippolito A, Istace F, Jarrah S, Kardassi D, Leuschner R, Lythgo C, Magrans JO, Medina P, Miron I, Molnar T, Nougadere A, Padovani L, Parra Morte JM, Pedersen R, Reich H, Sacchi A, Santos M, Serafimova R, Sharp R, Stanek A, Streissl F, Sturma J, Szentes C, Tarazona J, Terron A, Theobald A, Vagenende B, Verani A, Villamar-Bouza L. | EFSA J | 10.2903/j.efsa.2017.5084 | 2017 | ||
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| Metabolism | Bioproduction, characterization, anticancer and antioxidant activities of extracellular melanin pigment produced by newly isolated microbial cell factories Streptomyces glaucescens NEAE-H. | El-Naggar NE, El-Ewasy SM. | Sci Rep | 10.1038/srep42129 | 2017 | |
| Metabolism | Microbial transformation of A23187, a divalent cation ionophore antibiotic. | Abbott BJ, Fukuda DS, Dorman DE, Occolowitz JL, Debono M, Farhner L. | Antimicrob Agents Chemother | 10.1128/aac.16.6.808 | 1979 | |
| Pathogenicity | Development of a novel multiplex DNA microarray for Fusarium graminearum and analysis of azole fungicide responses. | Becher R, Weihmann F, Deising HB, Wirsel SG. | BMC Genomics | 10.1186/1471-2164-12-52 | 2011 | |
| Stereospecificity of microbial hydrations of oleic Acid to 10-hydroxystearic Acid. | Yang W, Dostal L, Rosazza JP. | Appl Environ Microbiol | 10.1128/aem.59.1.281-284.1993 | 1993 | ||
| Metabolism | Synthesis of cinnabarinic acid by metabolically engineered Pseudomonas chlororaphis GP72. | Yue SJ, Song C, Li S, Huang P, Guo SQ, Hu HB, Wang W, Zhang XH | Biotechnol Bioeng | 10.1002/bit.27118 | 2019 | |
| Proteome | Influence of Amino Acid Feeding on Production of Calcimycin and Analogs in Streptomyces chartreusis. | Arend KI, Bandow JE | Int J Environ Res Public Health | 10.3390/ijerph18168740 | 2021 | |
| Phylogeny | Discovery of three novel sesquiterpene synthases from Streptomyces chartreusis NRRL 3882 and crystal structure of an alpha-eudesmol synthase. | Kracht ON, Correia Cordeiro RS, Hakansson M, Stockmann J, Sander D, Bandow J, Senges CHR, Logan DT, Kourist R | J Biotechnol | 10.1016/j.jbiotec.2019.03.006 | 2019 | |
| Metabolism | Recycling of Overactivated Acyls by a Type II Thioesterase during Calcimycin Biosynthesis in Streptomyces chartreusis NRRL 3882. | Wu H, Liang J, Gou L, Wu Q, Liang WJ, Zhou X, Bruce IJ, Deng Z, Wang Z | Appl Environ Microbiol | 10.1128/AEM.00587-18 | 2018 | |
| Metabolism | Cezomycin Is Activated by CalC to Its Ester Form for Further Biosynthesis Steps in the Production of Calcimycin in Streptomyces chartreusis NRRL 3882. | Wu H, Liang J, Wang J, Liang WJ, Gou L, Wu Q, Zhou X, Bruce IJ, Deng Z, Wang Z | Appl Environ Microbiol | 10.1128/AEM.00586-18 | 2018 | |
| Metabolism | The secreted metabolome of Streptomyces chartreusis and implications for bacterial chemistry. | Senges CHR, Al-Dilaimi A, Marchbank DH, Wibberg D, Winkler A, Haltli B, Nowrousian M, Kalinowski J, Kerr RG, Bandow JE | Proc Natl Acad Sci U S A | 10.1073/pnas.1715713115 | 2018 | |
| A Novel TetR Family Transcriptional Regulator, CalR3, Negatively Controls Calcimycin Biosynthesis in Streptomyces chartreusis NRRL 3882. | Gou L, Han T, Wang X, Ge J, Liu W, Hu F, Wang Z | Front Microbiol | 10.3389/fmicb.2017.02371 | 2017 | ||
| Metabolism | Characterization of the N-methyltransferase CalM involved in calcimycin biosynthesis by Streptomyces chartreusis NRRL 3882. | Wu Q, Gou L, Lin S, Liang J, Yin J, Zhou X, Bai L, An D, Deng Z, Wang Z | Biochimie | 10.1016/j.biochi.2013.03.014 | 2013 | |
| Genetics | Genome sequences of three tunicamycin-producing Streptomyces Strains, S. chartreusis NRRL 12338, S. chartreusis NRRL 3882, and S. lysosuperificus ATCC 31396. | Doroghazi JR, Ju KS, Brown DW, Labeda DP, Deng Z, Metcalf WW, Chen W, Price NP | J Bacteriol | 10.1128/JB.06262-11 | 2011 | |
| Metabolism | Characterization of the biosynthesis gene cluster for the pyrrole polyether antibiotic calcimycin (A23187) in Streptomyces chartreusis NRRL 3882. | Wu Q, Liang J, Lin S, Zhou X, Bai L, Deng Z, Wang Z | Antimicrob Agents Chemother | 10.1128/AAC.01130-10 | 2010 | |
| Metabolism | Characterization of three novel DyP-type peroxidases from Streptomyces chartreusis NRRL 3882. | Yayci A, Bachmann N, Dirks T, Hofmann E, Bandow JE | J Appl Microbiol | 10.1111/jam.15707 | 2022 |
| #10312 | Leibniz Institut DSMZ-Deutsche Sammlung von Mikroorganismen und Zellkulturen GmbH ; Curators of the DSMZ; DSM 41447 |
| #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 ) |
| #66792 | Julia Koblitz, Joaquim Sardà, Lorenz Christian Reimer, Boyke Bunk, Jörg Overmann: Automatically annotated for the DiASPora project (Digital Approaches for the Synthesis of Poorly Accessible Biodiversity Information) . |
| #68379 | Automatically annotated from API Coryne . |
| #68382 | Automatically annotated from API zym . |
| #69277 | Wink, J.: Compendium of Actinobacteria. HZI-Helmholtz-Centre for Infection Research, Braunschweig . |
| #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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