Sulfolobus acidocaldarius 98-3 is an archaeon that was isolated from acid hot spring.
genome sequence 16S sequence Archaea| @ref 20215 |
|
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| Domain Archaea |
| Phylum Thermoproteota |
| Class Thermoprotei |
| Order Sulfolobales |
| Family Sulfolobaceae |
| Genus Sulfolobus |
| Species Sulfolobus acidocaldarius |
| Full scientific name Sulfolobus acidocaldarius Brock et al. 1972 (Approved Lists 1980) |
| BacDive ID | Other strains from Sulfolobus acidocaldarius (1) | Type strain |
|---|---|---|
| 165989 | S. acidocaldarius JCM 9063, IFO 15159, NBRC 15159 |
| @ref | Name | Growth | Medium link | Composition | |
|---|---|---|---|---|---|
| 341 | SULFOLOBUS MEDIUM (DSMZ Medium 88) | Medium recipe at MediaDive | Name: SULFOLOBUS MEDIUM (DSMZ Medium 88) Composition: (NH4)2SO4 1.28713 g/l Yeast extract 0.990099 g/l KH2PO4 0.277228 g/l MgSO4 x 7 H2O 0.247525 g/l CaCl2 x 2 H2O 0.0693069 g/l FeCl3 x 6 H2O 0.019802 g/l Na2B4O7 x 10 H2O 0.00445545 g/l MnCl2 x 4 H2O 0.00178218 g/l ZnSO4 x 7 H2O 0.000217822 g/l CuCl2 x 2 H2O 4.95049e-05 g/l Na2MoO4 x 2 H2O 2.9703e-05 g/l VOSO4 x 2 H2O 2.9703e-05 g/l CoSO4 x 7 H2O 9.90099e-06 g/l Distilled water |
| @ref | Spore formation | Confidence | |
|---|---|---|---|
| 125438 | 91.118 |
| @ref | pathway | enzyme coverage | annotated reactions | external links | |
|---|---|---|---|---|---|
| 66794 | methylglyoxal degradation | 100 | 5 of 5 | ||
| 66794 | adipate degradation | 100 | 2 of 2 | ||
| 66794 | glycogen metabolism | 100 | 5 of 5 | ||
| 66794 | formaldehyde oxidation | 100 | 3 of 3 | ||
| 66794 | propanol degradation | 100 | 7 of 7 | ||
| 66794 | phenylacetate degradation (aerobic) | 100 | 5 of 5 | ||
| 66794 | CO2 fixation in Crenarchaeota | 100 | 9 of 9 | ||
| 66794 | UDP-GlcNAc biosynthesis | 100 | 3 of 3 | ||
| 66794 | ribulose monophosphate pathway | 100 | 2 of 2 | ||
| 66794 | anapleurotic synthesis of oxalacetate | 100 | 1 of 1 | ||
| 66794 | ethanol fermentation | 100 | 2 of 2 | ||
| 66794 | acetate fermentation | 100 | 4 of 4 | ||
| 66794 | valine metabolism | 100 | 9 of 9 | ||
| 66794 | suberin monomers biosynthesis | 100 | 2 of 2 | ||
| 66794 | flavin biosynthesis | 93.33 | 14 of 15 | ||
| 66794 | vitamin B1 metabolism | 92.31 | 12 of 13 | ||
| 66794 | starch degradation | 90 | 9 of 10 | ||
| 66794 | propionate fermentation | 90 | 9 of 10 | ||
| 66794 | Entner Doudoroff pathway | 90 | 9 of 10 | ||
| 66794 | molybdenum cofactor biosynthesis | 88.89 | 8 of 9 | ||
| 66794 | chorismate metabolism | 88.89 | 8 of 9 | ||
| 66794 | palmitate biosynthesis | 86.36 | 19 of 22 | ||
| 66794 | glutamate and glutamine metabolism | 85.71 | 24 of 28 | ||
| 66794 | ubiquinone biosynthesis | 85.71 | 6 of 7 | ||
| 66794 | phenylalanine metabolism | 84.62 | 11 of 13 | ||
| 66794 | ethylmalonyl-CoA pathway | 80 | 4 of 5 | ||
| 66794 | lipoate biosynthesis | 80 | 4 of 5 | ||
| 66794 | creatinine degradation | 80 | 4 of 5 | ||
| 66794 | cellulose degradation | 80 | 4 of 5 | ||
| 66794 | vitamin B12 metabolism | 79.41 | 27 of 34 | ||
| 66794 | citric acid cycle | 78.57 | 11 of 14 | ||
| 66794 | photosynthesis | 78.57 | 11 of 14 | ||
| 66794 | serine metabolism | 77.78 | 7 of 9 | ||
| 66794 | alanine metabolism | 75.86 | 22 of 29 | ||
| 66794 | butanoate fermentation | 75 | 3 of 4 | ||
| 66794 | ketogluconate metabolism | 75 | 6 of 8 | ||
| 66794 | 6-hydroxymethyl-dihydropterin diphosphate biosynthesis | 75 | 6 of 8 | ||
| 66794 | glycogen biosynthesis | 75 | 3 of 4 | ||
| 66794 | gluconeogenesis | 75 | 6 of 8 | ||
| 66794 | C4 and CAM-carbon fixation | 75 | 6 of 8 | ||
| 66794 | coenzyme A metabolism | 75 | 3 of 4 | ||
| 66794 | pentose phosphate pathway | 72.73 | 8 of 11 | ||
| 66794 | purine metabolism | 72.34 | 68 of 94 | ||
| 66794 | NAD metabolism | 72.22 | 13 of 18 | ||
| 66794 | glycolysis | 70.59 | 12 of 17 | ||
| 66794 | threonine metabolism | 70 | 7 of 10 | ||
| 66794 | leucine metabolism | 69.23 | 9 of 13 | ||
| 66794 | methionine metabolism | 69.23 | 18 of 26 | ||
| 66794 | pyrimidine metabolism | 68.89 | 31 of 45 | ||
| 66794 | acetoin degradation | 66.67 | 2 of 3 | ||
| 66794 | octane oxidation | 66.67 | 2 of 3 | ||
| 66794 | aspartate and asparagine metabolism | 66.67 | 6 of 9 | ||
| 66794 | L-lactaldehyde degradation | 66.67 | 2 of 3 | ||
| 66794 | isoleucine metabolism | 62.5 | 5 of 8 | ||
| 66794 | cysteine metabolism | 61.11 | 11 of 18 | ||
| 66794 | 3-chlorocatechol degradation | 60 | 3 of 5 | ||
| 66794 | glycine betaine biosynthesis | 60 | 3 of 5 | ||
| 66794 | arginine metabolism | 58.33 | 14 of 24 | ||
| 66794 | degradation of aromatic, nitrogen containing compounds | 58.33 | 7 of 12 | ||
| 66794 | lipid metabolism | 58.06 | 18 of 31 | ||
| 66794 | heme metabolism | 57.14 | 8 of 14 | ||
| 66794 | degradation of sugar alcohols | 56.25 | 9 of 16 | ||
| 66794 | d-mannose degradation | 55.56 | 5 of 9 | ||
| 66794 | tryptophan metabolism | 55.26 | 21 of 38 | ||
| 66794 | d-xylose degradation | 54.55 | 6 of 11 | ||
| 66794 | sulfate reduction | 53.85 | 7 of 13 | ||
| 66794 | isoprenoid biosynthesis | 53.85 | 14 of 26 | ||
| 66794 | non-pathway related | 52.63 | 20 of 38 | ||
| 66794 | polyamine pathway | 52.17 | 12 of 23 | ||
| 66794 | histidine metabolism | 51.72 | 15 of 29 | ||
| 66794 | dolichol and dolichyl phosphate biosynthesis | 50 | 1 of 2 | ||
| 66794 | CDP-diacylglycerol biosynthesis | 50 | 1 of 2 | ||
| 66794 | glycolate and glyoxylate degradation | 50 | 3 of 6 | ||
| 66794 | sulfopterin metabolism | 50 | 2 of 4 | ||
| 66794 | dTDPLrhamnose biosynthesis | 50 | 4 of 8 | ||
| 66794 | pantothenate biosynthesis | 50 | 3 of 6 | ||
| 66794 | aminopropanol phosphate biosynthesis | 50 | 1 of 2 | ||
| 66794 | CMP-KDO biosynthesis | 50 | 2 of 4 | ||
| 66794 | cis-vaccenate biosynthesis | 50 | 1 of 2 | ||
| 66794 | biotin biosynthesis | 50 | 2 of 4 | ||
| 66794 | phenylmercury acetate degradation | 50 | 1 of 2 | ||
| 66794 | glycine metabolism | 50 | 5 of 10 | ||
| 66794 | resorcinol degradation | 50 | 1 of 2 | ||
| 66794 | lysine metabolism | 50 | 21 of 42 | ||
| 66794 | selenocysteine biosynthesis | 50 | 3 of 6 | ||
| 66794 | tetrahydrofolate metabolism | 50 | 7 of 14 | ||
| 66794 | carotenoid biosynthesis | 50 | 11 of 22 | ||
| 66794 | 3-phenylpropionate degradation | 46.67 | 7 of 15 | ||
| 66794 | degradation of pentoses | 46.43 | 13 of 28 | ||
| 66794 | oxidative phosphorylation | 46.15 | 42 of 91 | ||
| 66794 | urea cycle | 46.15 | 6 of 13 | ||
| 66794 | dolichyl-diphosphooligosaccharide biosynthesis | 45.45 | 5 of 11 | ||
| 66794 | 4-hydroxymandelate degradation | 44.44 | 4 of 9 | ||
| 66794 | reductive acetyl coenzyme A pathway | 42.86 | 3 of 7 | ||
| 66794 | benzoyl-CoA degradation | 42.86 | 3 of 7 | ||
| 66794 | mevalonate metabolism | 42.86 | 3 of 7 | ||
| 66794 | tyrosine metabolism | 42.86 | 6 of 14 | ||
| 66794 | glutathione metabolism | 42.86 | 6 of 14 | ||
| 66794 | 4-hydroxyphenylacetate degradation | 40 | 4 of 10 | ||
| 66794 | coenzyme M biosynthesis | 40 | 4 of 10 | ||
| 66794 | degradation of sugar acids | 40 | 10 of 25 | ||
| 66794 | phenylpropanoid biosynthesis | 38.46 | 5 of 13 | ||
| 66794 | carnitine metabolism | 37.5 | 3 of 8 | ||
| 66794 | ascorbate metabolism | 36.36 | 8 of 22 | ||
| 66794 | vitamin B6 metabolism | 36.36 | 4 of 11 | ||
| 66794 | proline metabolism | 36.36 | 4 of 11 | ||
| 66794 | phenol degradation | 35 | 7 of 20 | ||
| 66794 | acetyl CoA biosynthesis | 33.33 | 1 of 3 | ||
| 66794 | lipid A biosynthesis | 33.33 | 3 of 9 | ||
| 66794 | enterobactin biosynthesis | 33.33 | 1 of 3 | ||
| 66794 | sphingosine metabolism | 33.33 | 2 of 6 | ||
| 66794 | IAA biosynthesis | 33.33 | 1 of 3 | ||
| 66794 | peptidoglycan biosynthesis | 33.33 | 5 of 15 | ||
| 66794 | nitrate assimilation | 33.33 | 3 of 9 | ||
| 66794 | allantoin degradation | 33.33 | 3 of 9 | ||
| 66794 | cyanate degradation | 33.33 | 1 of 3 | ||
| 66794 | myo-inositol biosynthesis | 30 | 3 of 10 | ||
| 66794 | degradation of hexoses | 27.78 | 5 of 18 | ||
| 66794 | metabolism of disaccharids | 27.27 | 3 of 11 | ||
| 66794 | toluene degradation | 25 | 1 of 4 | ||
| 66794 | ppGpp biosynthesis | 25 | 1 of 4 | ||
| 66794 | lactate fermentation | 25 | 1 of 4 | ||
| 66794 | cyclohexanol degradation | 25 | 1 of 4 | ||
| 66794 | bile acid biosynthesis, neutral pathway | 23.53 | 4 of 17 |
| Cat1 | Cat2 | Cat3 | |
|---|---|---|---|
| #Environmental | #Aquatic | #Thermal spring | |
| #Condition | #Acidic | - | |
| #Condition | #Thermophilic (>45°C) | - |
Global distribution of 16S sequence JQ346764 (>99% sequence identity) for Sulfolobus acidocaldarius subclade from Microbeatlas ![]()
| @ref | Description | Assembly level | INSDC accession | BV-BRC accession | IMG accession | NCBI tax ID | Score | |
|---|---|---|---|---|---|---|---|---|
| 66792 | ASM1228v1 assembly for Sulfolobus acidocaldarius DSM 639 | complete | 330779 | 98.11 | ||||
| 66792 | ASM2847236v1 assembly for Sulfolobus acidocaldarius DSM 639 | complete | 330779 | 94.94 |
| @ref | Trait | Model | Prediction | Confidence in % | In training data |
|---|---|---|---|---|---|
| 125439 | oxygen_tolerance | BacteriaNetⓘ | obligate anaerobe | 75.73 | no |
| 125439 | motility | BacteriaNetⓘ | no | 66.99 | no |
| 125439 | gram_stain | BacteriaNetⓘ | variable | 54.02 | no |
| 125439 | spore_formation | BacteriaNetⓘ | yes | 67.42 | no |
| @ref | Trait | Model | Prediction | Confidence in % | In training data |
|---|---|---|---|---|---|
| 125438 | gram-positive | gram-positiveⓘ | no | 75.09 | no |
| 125438 | anaerobic | anaerobicⓘ | yes | 61.57 | no |
| 125438 | aerobic | aerobicⓘ | no | 55.33 | no |
| 125438 | spore-forming | spore-formingⓘ | no | 91.12 | no |
| 125438 | thermophilic | thermophileⓘ | yes | 79.84 | yes |
| 125438 | flagellated | motile2+ⓘ | no | 88.00 | no |
| Topic | Title | Authors | Journal | DOI | Year | |
|---|---|---|---|---|---|---|
| Lipid hydrogen isotope compositions primarily reflect growth water in the model archaeon Sulfolobus acidocaldarius. | Harris CM, Kopf S, Rhim JH, Cobban A, Elling FJ, Feng X, McFarlin J, Weber Y, Zhang Y, Zhou A, Batther H, Pearson A, Leavitt WD. | Appl Environ Microbiol | 10.1128/aem.01983-24 | 2025 | ||
| The Lrs14-Like AbfR1 Homolog From Metallosphaera sedula Is a Nucleoid-Organizing Protein. | De Kock V, Willaert R, Gansemans Y, Van Nieuwerburgh F, Baes R, Peeters E. | Microbiologyopen | 10.1002/mbo3.70059 | 2025 | ||
| Restriction modification systems in archaea: A panoramic outlook. | Gulati P, Singh A, Patra S, Bhat S, Verma A. | Heliyon | 10.1016/j.heliyon.2024.e27382 | 2024 | ||
| Genetics | Gaia: An AI-enabled genomic context-aware platform for protein sequence annotation. | Jha N, Kravitz J, West-Roberts J, Lu C, Camargo AP, Roux S, Cornman A, Hwang Y. | Sci Adv | 10.1126/sciadv.adv5109 | 2025 | |
| Metabolism | Impact of nutrient excess on physiology and metabolism of Sulfolobus acidocaldarius. | Sedlmayr VL, Szeliova D, De Kock V, Gansemans Y, Van Nieuwerburgh F, Peeters E, Quehenberger J, Zanghellini J, Spadiut O. | Front Microbiol | 10.3389/fmicb.2024.1475385 | 2024 | |
| kLa based scale-up cultivation of the extremophilic archaeon Sulfolobus acidocaldarius: from benchtop to pilot scale. | Rastadter K, Wurm DJ, Spadiut O, Quehenberger J. | Front Bioeng Biotechnol | 10.3389/fbioe.2023.1160012 | 2023 | ||
| The use of thermostable fluorescent proteins for live imaging in Sulfolobus acidocaldarius. | Recalde A, Abdul-Nabi J, Junker P, van der Does C, Elsasser J, van Wolferen M, Albers SV. | Front Microbiol | 10.3389/fmicb.2024.1445186 | 2024 | ||
| Enzymology | An unusual glycerol-3-phosphate dehydrogenase in Sulfolobus acidocaldarius elucidates the diversity of glycerol metabolism across Archaea. | Schmerling C, Schroeder C, Zhou X, Bost J, Wassmer B, Ninck S, Busche T, Montero L, Kaschani F, Schmitz OJ, Kalinowski J, Kaiser M, Albers SV, Brasen C, Siebers B. | Commun Biol | 10.1038/s42003-025-07953-9 | 2025 | |
| Role of VapBC4 toxin-antitoxin system of Sulfolobus acidocaldarius in heat stress adaptation. | Bhowmick A, Recalde A, Bhattacharyya C, Banerjee A, Das J, Rodriguez-Cruz UE, Albers S-V, Ghosh A. | mBio | 10.1128/mbio.02753-24 | 2024 | ||
| Genetics | Chalcopyrite bioleaching efficacy by extremely thermoacidophilic archaea leverages balanced iron and sulfur biooxidation. | Manesh MJH, Willard DJ, John KM, Kelly RM. | Bioresour Technol | 10.1016/j.biortech.2024.131198 | 2024 | |
| Probing archaeal cell biology: exploring the use of dyes in the imaging of Sulfolobus cells. | Cezanne A, Hoogenberg B, Baum B. | Front Microbiol | 10.3389/fmicb.2023.1233032 | 2023 | ||
| Genetics | Genome-sequenced bacterial collection from sorghum epicuticular wax. | Mechan-Llontop ME, Mullet J, Shade A. | Microbiol Resour Announc | 10.1128/mra.00484-23 | 2023 | |
| Genetics | Genome-sequenced bacterial collection from sorghum aerial root mucilage. | Mechan-Llontop ME, Mullet J, Shade A. | Microbiol Resour Announc | 10.1128/mra.00468-23 | 2023 | |
| Pathogenicity | Stay or Go: Sulfolobales Biofilm Dispersal Is Dependent on a Bifunctional VapB Antitoxin. | Lewis AM, Willard DJ, H Manesh MJ, Sivabalasarma S, Albers SV, Kelly RM. | mBio | 10.1128/mbio.00053-23 | 2023 | |
| Protein modification by a eukaryotic-like ubiquitin-related modifier in the hyperthermophilic archaeon Saccharolobus islandicus. | Cao J, Xiong D, Zheng X, Yuan W, Huang L. | mSystems | 10.1128/msystems.00580-25 | 2025 | ||
| Flow cytometry-based viability staining: an at-line tool for bioprocess monitoring of Sulfolobus acidocaldarius. | Rastadter K, Tramontano A, Wurm DJ, Spadiut O, Quehenberger J. | AMB Express | 10.1186/s13568-022-01447-1 | 2022 | ||
| Chromosome architecture in an archaeal species naturally lacking structural maintenance of chromosomes proteins. | Badel C, Bell SD. | Nat Microbiol | 10.1038/s41564-023-01540-6 | 2024 | ||
| Genetics | Phenotype-driven assessment of the ancestral trajectory of sulfur biooxidation in the thermoacidophilic archaea Sulfolobaceae. | Willard DJ, H Manesh MJ, Bing RG, Alexander BH, Kelly RM. | mBio | 10.1128/mbio.01033-24 | 2024 | |
| Identification of the Genes Related to the Glycogen Metabolism in Hyperthermophilic Archaeon, Sulfolobus acidocaldarius. | Lee A, Bae E, Park J, Choi KH, Cha J. | Front Microbiol | 10.3389/fmicb.2021.661053 | 2021 | ||
| Temporal and spatial coordination of DNA segregation and cell division in an archaeon. | Parham J, Sorichetti V, Cezanne A, Foo S, Kuo YW, Hoogenberg B, Radoux-Mergault A, Mawdesley E, Gatward LD, Boulanger J, Schulze U, Saric A, Baum B. | Proc Natl Acad Sci U S A | 10.1073/pnas.2513939122 | 2025 | ||
| High-Temperature Live-Cell Imaging of Cytokinesis, Cell Motility, and Cell-Cell Interactions in the Thermoacidophilic Crenarchaeon Sulfolobus acidocaldarius. | Charles-Orszag A, Lord SJ, Mullins RD. | Front Microbiol | 10.3389/fmicb.2021.707124 | 2021 | ||
| Archaeal GPN-loop GTPases involve a lock-switch-rock mechanism for GTP hydrolysis. | Korf L, Ye X, Vogt MS, Steinchen W, Watad M, van der Does C, Tourte M, Sivabalasarma S, Albers S-V, Essen L-O. | mBio | 10.1128/mbio.00859-23 | 2023 | ||
| A Proposal of the Ur-RNAome. | Palacios-Perez M, Jose MV. | Genes (Basel) | 10.3390/genes14122158 | 2023 | ||
| Metabolism | Live Imaging of a Hyperthermophilic Archaeon Reveals Distinct Roles for Two ESCRT-III Homologs in Ensuring a Robust and Symmetric Division. | Pulschen AA, Mutavchiev DR, Culley S, Sebastian KN, Roubinet J, Roubinet M, Risa GT, van Wolferen M, Roubinet C, Schmidt U, Dey G, Albers SV, Henriques R, Baum B. | Curr Biol | 10.1016/j.cub.2020.05.021 | 2020 | |
| The patterned assembly and stepwise Vps4-mediated disassembly of composite ESCRT-III polymers drives archaeal cell division. | Hurtig F, Burgers TCQ, Cezanne A, Jiang X, Mol FN, Traparic J, Pulschen AA, Nierhaus T, Tarrason-Risa G, Harker-Kirschneck L, Lowe J, Saric A, Vlijm R, Baum B. | Sci Adv | 10.1126/sciadv.ade5224 | 2023 | ||
| Pathogenicity | Exposure to 1-Butanol Exemplifies the Response of the Thermoacidophilic Archaeon Sulfolobus acidocaldarius to Solvent Stress. | Benninghoff JC, Kuschmierz L, Zhou X, Albersmeier A, Pham TK, Busche T, Wright PC, Kalinowski J, Makarova KS, Brasen C, Flemming HC, Wingender J, Siebers B. | Appl Environ Microbiol | 10.1128/aem.02988-20 | 2021 | |
| Species-Specific Recognition of Sulfolobales Mediated by UV-Inducible Pili and S-Layer Glycosylation Patterns. | van Wolferen M, Shajahan A, Heinrich K, Brenzinger S, Black IM, Wagner A, Briegel A, Azadi P, Albers SV. | mBio | 10.1128/mbio.03014-19 | 2020 | ||
| Genetics | Structured Populations of Sulfolobus acidocaldarius with Susceptibility to Mobile Genetic Elements. | Anderson RE, Kouris A, Seward CH, Campbell KM, Whitaker RJ. | Genome Biol Evol | 10.1093/gbe/evx104 | 2017 | |
| Metabolism | The Impact of Pyroglutamate: Sulfolobus acidocaldarius Has a Growth Advantage over Saccharolobus solfataricus in Glutamate-Containing Media. | Vetter AM, Helmecke J, Schomburg D, Neumann-Schaal M. | Archaea | 10.1155/2019/3208051 | 2019 | |
| The influence of the specific growth rate on the lipid composition of Sulfolobus acidocaldarius. | Quehenberger J, Pittenauer E, Allmaier G, Spadiut O. | Extremophiles | 10.1007/s00792-020-01165-1 | 2020 | ||
| Metabolism | Identification of XylR, the Activator of Arabinose/Xylose Inducible Regulon in Sulfolobus acidocaldarius and Its Application for Homologous Protein Expression. | van der Kolk N, Wagner A, Wagner M, Wassmer B, Siebers B, Albers SV. | Front Microbiol | 10.3389/fmicb.2020.01066 | 2020 | |
| The canonical single-stranded DNA-binding protein is not an essential replication factor but an RNA chaperon in Saccharolobus islandicus. | Xiao Y, Jiang Z, Zhang M, Zhang X, Gan Q, Yang Y, Wu P, Feng X, Ni J, Dong X, She Q, Huang Q, Shen Y. | iScience | 10.1016/j.isci.2023.108389 | 2023 | ||
| Genetics | Interplay of Various Evolutionary Modes in Genome Diversification and Adaptive Evolution of the Family Sulfolobaceae. | Banerjee R, Chaudhari NM, Lahiri A, Gautam A, Bhowmik D, Dutta C, Chattopadhyay S, Huson DH, Paul S. | Front Microbiol | 10.3389/fmicb.2021.639995 | 2021 | |
| Metabolism | The archaeal triphosphate tunnel metalloenzyme SaTTM defines structural determinants for the diverse activities in the CYTH protein family. | Vogt MS, Ngouoko Nguepbeu RR, Mohr MKF, Albers SV, Essen LO, Banerjee A. | J Biol Chem | 10.1016/j.jbc.2021.100820 | 2021 | |
| Comparative CRISPR type III-based knockdown of essential genes in hyperthermophilic Sulfolobales and the evasion of lethal gene silencing. | Zink IA, Fouqueau T, Tarrason Risa G, Werner F, Baum B, Blasi U, Schleper C. | RNA Biol | 10.1080/15476286.2020.1813411 | 2021 | ||
| Resolution of Atropisomeric Cyclic Catechol Monoether O-Sulfate Esters by a Molluscan Sulfatase. | Masuno MN, Molinski TF. | ACS Omega | 10.1021/acsomega.7b01899 | 2018 | ||
| Experimental maturation of Archaea encrusted by Fe-phosphates. | Miot J, Bernard S, Bourreau M, Guyot F, Kish A. | Sci Rep | 10.1038/s41598-017-17111-9 | 2017 | ||
| Metabolism | Preservation of Archaeal Surface Layer Structure During Mineralization. | Kish A, Miot J, Lombard C, Guigner JM, Bernard S, Zirah S, Guyot F. | Sci Rep | 10.1038/srep26152 | 2016 | |
| Enzymology | AglH, a thermophilic UDP-N-acetylglucosamine-1-phosphate:dolichyl phosphate GlcNAc-1-phosphotransferase initiating protein N-glycosylation pathway in Sulfolobus acidocaldarius, is capable of complementing the eukaryal Alg7. | Meyer BH, Shams-Eldin H, Albers SV. | Extremophiles | 10.1007/s00792-016-0890-2 | 2017 | |
| Metabolism | A Phosphofructokinase Homolog from Pyrobaculum calidifontis Displays Kinase Activity towards Pyrimidine Nucleosides and Ribose 1-Phosphate. | Aziz I, Bibi T, Rashid N, Aono R, Atomi H, Akhtar M. | J Bacteriol | 10.1128/jb.00284-18 | 2018 | |
| Enzymology | Enzymes Catalyzing Crotonyl-CoA Conversion to Acetoacetyl-CoA During the Autotrophic CO2 Fixation in Metallosphaera sedula. | Liu L, Huber H, Berg IA. | Front Microbiol | 10.3389/fmicb.2020.00354 | 2020 | |
| Metabolism | AglB, catalyzing the oligosaccharyl transferase step of the archaeal N-glycosylation process, is essential in the thermoacidophilic crenarchaeon Sulfolobus acidocaldarius. | Meyer BH, Albers SV. | Microbiologyopen | 10.1002/mbo3.185 | 2014 | |
| Genetics | Recent Advances in the Identification of Replication Origins Based on the Z-curve Method. | Gao F. | Curr Genomics | 10.2174/1389202915999140328162938 | 2014 | |
| dbPSP 2.0, an updated database of protein phosphorylation sites in prokaryotes. | Shi Y, Zhang Y, Lin S, Wang C, Zhou J, Peng D, Xue Y. | Sci Data | 10.1038/s41597-020-0506-7 | 2020 | ||
| Life in hot acid: a genome-based reassessment of the archaeal order Sulfolobales. | Counts JA, Willard DJ, Kelly RM. | Environ Microbiol | 10.1111/1462-2920.15189 | 2021 | ||
| Metabolism | The genome-scale DNA-binding profile of BarR, a beta-alanine responsive transcription factor in the archaeon Sulfolobus acidocaldarius. | Liu H, Wang K, Lindas AC, Peeters E. | BMC Genomics | 10.1186/s12864-016-2890-0 | 2016 | |
| A clade of RHH proteins ubiquitous in Sulfolobales and their viruses regulates cell cycle progression. | Xuyang L, Cristina LM, Laura MA, Xu P. | Nucleic Acids Res | 10.1093/nar/gkad011 | 2023 | ||
| Unearthing the Plant Growth-Promoting Traits of Bacillus megaterium RmBm31, an Endophytic Bacterium Isolated From Root Nodules of Retama monosperma. | Dahmani MA, Desrut A, Moumen B, Verdon J, Mermouri L, Kacem M, Coutos-Thevenot P, Kaid-Harche M, Berges T, Vriet C. | Front Plant Sci | 10.3389/fpls.2020.00124 | 2020 | ||
| Phylogeny and Taxonomy of Archaea: A Comparison of the Whole-Genome-Based CVTree Approach with 16S rRNA Sequence Analysis. | Zuo G, Xu Z, Hao B. | Life (Basel) | 10.3390/life5010949 | 2015 | ||
| Transcriptome | RIP-Seq Suggests Translational Regulation by L7Ae in Archaea. | Daume M, Uhl M, Backofen R, Randau L. | mBio | 10.1128/mbio.00730-17 | 2017 | |
| Transcriptome | Alterations of the transcriptome of Sulfolobus acidocaldarius by exoribonuclease aCPSF2. | Martens B, Amman F, Manoharadas S, Zeichen L, Orell A, Albers SV, Hofacker I, Blasi U. | PLoS One | 10.1371/journal.pone.0076569 | 2013 | |
| Synergistic production of 20(S)-protopanaxadiol from protopanaxadiol-type ginsenosides by beta-glycosidases from Dictyoglomus turgidum and Caldicellulosiruptor bescii. | Choi JH, Seo MJ, Shin KC, Lee KW, Oh DK. | AMB Express | 10.1186/s13568-017-0524-9 | 2017 | ||
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| Evidence that beta-Galactosidase of Sulfolobus solfataricus Is Only One of Several Activities of a Thermostable beta-d-Glycosidase. | Grogan DW. | Appl Environ Microbiol | 10.1128/aem.57.6.1644-1649.1991 | 1991 | ||
| Phylogeny | A novel virus family, the Rudiviridae: Structure, virus-host interactions and genome variability of the sulfolobus viruses SIRV1 and SIRV2. | Prangishvili D, Arnold HP, Gotz D, Ziese U, Holz I, Kristjansson JK, Zillig W. | Genetics | 10.1093/genetics/152.4.1387 | 1999 | |
| Genetics | Clusters of orthologous genes for 41 archaeal genomes and implications for evolutionary genomics of archaea. | Makarova KS, Sorokin AV, Novichkov PS, Wolf YI, Koonin EV. | Biol Direct | 10.1186/1745-6150-2-33 | 2007 | |
| A putative RNA-interference-based immune system in prokaryotes: computational analysis of the predicted enzymatic machinery, functional analogies with eukaryotic RNAi, and hypothetical mechanisms of action. | Makarova KS, Grishin NV, Shabalina SA, Wolf YI, Koonin EV. | Biol Direct | 10.1186/1745-6150-1-7 | 2006 | ||
| Enzymology | Isolation and Characterization of Thermophilic Bacteria from a Hot Spring in the State of Hidalgo, Mexico, and Geochemical Analysis of the Thermal Water | Ortega-Villar R, Escalante A, Astudillo-Melgar F, Lizarraga-Mendiola L, Vazquez-Rodriguez G, Hidalgo-Lara M, Coronel-Olivares C. | Microorganisms | 2024 | ||
| In vitro assembly of the trehalose bi-enzyme complex with artificial scaffold protein. | Wang X, Jiang Y, Liu H, Zhang X, Yuan H, Huang D, Wang T. | Front Bioeng Biotechnol | 10.3389/fbioe.2023.1251298 | 2023 | ||
| Genetic Control of Oxidative Mutagenesis in Sulfolobus acidocaldarius. | Jain R, Dhiman S, Grogan DW. | J Bacteriol | 10.1128/jb.00756-19 | 2020 | ||
| Genetics | PolB1 Is Sufficient for DNA Replication and Repair Under Normal Growth Conditions in the Extremely Thermophilic Crenarchaeon Sulfolobus acidocaldarius. | Miyabayashi H, Jain R, Suzuki S, Grogan DW, Kurosawa N. | Front Microbiol | 10.3389/fmicb.2020.613375 | 2020 | |
| Genetics | How a Genetically Stable Extremophile Evolves: Modes of Genome Diversification in the Archaeon Sulfolobus acidocaldarius. | Mao D, Grogan DW. | J Bacteriol | 10.1128/jb.00177-17 | 2017 | |
| Conjugational genetic exchange in the hyperthermophilic archaeon Sulfolobus acidocaldarius: intragenic recombination with minimal dependence on marker separation. | Hansen JE, Dill AC, Grogan DW. | J Bacteriol | 10.1128/jb.187.2.805-809.2005 | 2005 | ||
| Enzymology | Roles of the Y-family DNA polymerase Dbh in accurate replication of the Sulfolobus genome at high temperature. | Sakofsky CJ, Foster PL, Grogan DW. | DNA Repair (Amst) | 10.1016/j.dnarep.2012.01.005 | 2012 | |
| Endogenous mutagenesis in recombinant sulfolobus plasmids. | Sakofsky CJ, Grogan DW. | J Bacteriol | 10.1128/jb.00223-13 | 2013 | ||
| Enzymology | Evaluation of a fluorescent lectin-based staining technique for some acidophilic mining bacteria. | Fife DJ, Bruhn DF, Miller KS, Stoner DL. | Appl Environ Microbiol | 10.1128/aem.66.5.2208-2210.2000 | 2000 | |
| Sulfolobus mutants, generated via PCR products, which lack putative enzymes of UV photoproduct repair. | Sakofsky CJ, Runck LA, Grogan DW. | Archaea | 10.1155/2011/864015 | 2011 | ||
| Genetics | Genetic fidelity under harsh conditions: analysis of spontaneous mutation in the thermoacidophilic archaeon Sulfolobus acidocaldarius. | Grogan DW, Carver GT, Drake JW. | Proc Natl Acad Sci U S A | 10.1073/pnas.141113098 | 2001 | |
| Temperature-sensitive motility of Sulfolobus acidocaldarius influences population distribution in extreme environments. | Lewus P, Ford RM. | J Bacteriol | 10.1128/jb.181.13.4020-4025.1999 | 1999 | ||
| Indole-3-acetic acid and 2-(indol-3-ylmethyl)indol-3-yl acetic acid in the thermophilic archaebacterium Sulfolobus acidocaldarius. | White RH. | J Bacteriol | 10.1128/jb.169.12.5859-5860.1987 | 1987 | ||
| Metabolism | A long-term cultivation of an anaerobic methane-oxidizing microbial community from deep-sea methane-seep sediment using a continuous-flow bioreactor. | Aoki M, Ehara M, Saito Y, Yoshioka H, Miyazaki M, Saito Y, Miyashita A, Kawakami S, Yamaguchi T, Ohashi A, Nunoura T, Takai K, Imachi H. | PLoS One | 10.1371/journal.pone.0105356 | 2014 | |
| Analysis and characterization of the folates in the nonmethanogenic archaebacteria. | White RH. | J Bacteriol | 10.1128/jb.170.10.4608-4612.1988 | 1988 | ||
| Methanogenic Archaea and human periodontal disease. | Lepp PW, Brinig MM, Ouverney CC, Palm K, Armitage GC, Relman DA. | Proc Natl Acad Sci U S A | 10.1073/pnas.0308766101 | 2004 | ||
| Unexpected diversity and complexity of the Guerrero Negro hypersaline microbial mat. | Ley RE, Harris JK, Wilcox J, Spear JR, Miller SR, Bebout BM, Maresca JA, Bryant DA, Sogin ML, Pace NR. | Appl Environ Microbiol | 10.1128/aem.72.5.3685-3695.2006 | 2006 | ||
| Metabolism | gamma-Glutamylcysteine and thiosulfate are the major low-molecular-weight thiols in halobacteria. | Newton GL, Javor B. | J Bacteriol | 10.1128/jb.161.1.438-441.1985 | 1985 | |
| Proteome | Characterization of protein glycosylation in an Asgard archaeon. | Nakagawa S, Imachi H, Shimamura S, Yanaka S, Yagi H, Yagi-Utsumi M, Sakai H, Kato S, Ohkuma M, Kato K, Takai K. | BBA Adv | 10.1016/j.bbadva.2024.100118 | 2024 | |
| Genetics | The genome sequence of the metal-mobilizing, extremely thermoacidophilic archaeon Metallosphaera sedula provides insights into bioleaching-associated metabolism. | Auernik KS, Maezato Y, Blum PH, Kelly RM | Appl Environ Microbiol | 10.1128/AEM.02019-07 | 2007 | |
| Genetics | Analysis of synonymous codon usage in Aeropyrum pernix K1 and other Crenarchaeota microorganisms. | Jiang P, Sun X, Lu Z | J Genet Genomics | 10.1016/S1673-8527(07)60029-0 | 2007 | |
| Biotechnology | Biocatalytic approaches for the quantitative production of single stereoisomers from racemates. | Gadler P, Glueck SM, Kroutil W, Nestl BM, Larissegger-Schnell B, Ueberbacher BT, Wallner SR, Faber K | Biochem Soc Trans | 10.1042/BST20060296 | 2006 | |
| Enzymology | Cloning and nucleotide sequence of a gene encoding a glycogen debranching enzyme in the trehalose operon from Arthrobacter sp. Q36. | Maruta K, Kubota M, Fukuda S, Kurimoto M | Biochim Biophys Acta | 10.1016/s0167-4838(99)00253-8 | 2000 | |
| Enzymology | A novel heat-stable lipolytic enzyme from Sulfolobus acidocaldarius DSM 639 displaying similarity to polyhydroxyalkanoate depolymerases. | Arpigny JL, Jendrossek D, Jaeger KE | FEMS Microbiol Lett | 10.1111/j.1574-6968.1998.tb13209.x | 1998 | |
| Enzymology | A succinate dehydrogenase with novel structure and properties from the hyperthermophilic archaeon Sulfolobus acidocaldarius: genetic and biophysical characterization. | Janssen S, Schafer G, Anemuller S, Moll R | J Bacteriol | 10.1128/jb.179.17.5560-5569.1997 | 1997 | |
| Enzymology | Cloning and sequencing of a cluster of genes encoding novel enzymes of trehalose biosynthesis from thermophilic archaebacterium Sulfolobus acidocaldarius. | Maruta K, Mitsuzumi H, Nakada T, Kubota M, Chaen H, Fukuda S, Sugimoto T, Kurimoto M | Biochim Biophys Acta | 10.1016/s0304-4165(96)00082-7 | 1996 | |
| Genetics | Identification of the iron-sulfur clusters in a ferredoxin from the archaeon Sulfolobus acidocaldarius. Evidence for a reduced [3Fe-4S] cluster with pH-dependent electronic properties. | Breton JL, Duff JL, Butt JN, Armstrong FA, George SJ, Petillot Y, Forest E, Schafer G, Thomson AJ | Eur J Biochem | 10.1111/j.1432-1033.1995.937_3.x | 1995 | |
| Enzymology | EPR studies of cytochrome aa3 from Sulfolobus acidocaldarius. Evidence for a binuclear center in archaebacterial terminal oxidase. | Anemuller S, Bill E, Schafer G, Trautwein AX, Teixeira M | Eur J Biochem | 10.1111/j.1432-1033.1992.tb17400.x | 1992 | |
| Metabolism | Multiple environmental parameters impact lipid cyclization in Sulfolobus acidocaldarius. | Cobban A, Zhang Y, Zhou A, Weber Y, Elling FJ, Pearson A, Leavitt WD | Environ Microbiol | 10.1111/1462-2920.15194 | 2020 | |
| Metabolism | Energy flux controls tetraether lipid cyclization in Sulfolobus acidocaldarius. | Zhou A, Weber Y, Chiu BK, Elling FJ, Cobban AB, Pearson A, Leavitt WD | Environ Microbiol | 10.1111/1462-2920.14851 | 2019 | |
| Metabolism | Determinants of sulphur chemolithoautotrophy in the extremely thermoacidophilic Sulfolobales. | Zeldes BM, Loder AJ, Counts JA, Haque M, Widney KA, Keller LM, Albers SV, Kelly RM | Environ Microbiol | 10.1111/1462-2920.14712 | 2019 | |
| Metabolism | A defined cultivation medium for Sulfolobus acidocaldarius. | Quehenberger J, Albersmeier A, Glatzel H, Hackl M, Kalinowski J, Spadiut O | J Biotechnol | 10.1016/j.jbiotec.2019.04.028 | 2019 | |
| Metabolism | Profiling of glucose-induced transcription in Sulfolobus acidocaldarius DSM 639. | Park J, Lee A, Lee HH, Park I, Seo YS, Cha J | Genes Genomics | 10.1007/s13258-018-0675-3 | 2018 | |
| Metabolism | Membrane-bound amylopullulanase is essential for starch metabolism of Sulfolobus acidocaldarius DSM639. | Choi KH, Cha J | Extremophiles | 10.1007/s00792-015-0766-x | 2015 | |
| Metabolism | Identification and characterization of MalA in the maltose/maltodextrin operon of Sulfolobus acidocaldarius DSM639. | Choi KH, Hwang S, Cha J | J Bacteriol | 10.1128/JB.01713-12 | 2013 | |
| Enzymology | Biochemical and structural characterization of recombinant short-chain NAD(H)-dependent dehydrogenase/reductase from Sulfolobus acidocaldarius highly enantioselective on diaryl diketone benzil. | Pennacchio A, Sannino V, Sorrentino G, Rossi M, Raia CA, Esposito L | Appl Microbiol Biotechnol | 10.1007/s00253-012-4273-z | 2012 | |
| Versatile Genetic Tool Box for the Crenarchaeote Sulfolobus acidocaldarius. | Wagner M, van Wolferen M, Wagner A, Lassak K, Meyer BH, Reimann J, Albers SV | Front Microbiol | 10.3389/fmicb.2012.00214 | 2012 | ||
| Enzymology | Biochemical characterization of a recombinant short-chain NAD(H)-dependent dehydrogenase/reductase from Sulfolobus acidocaldarius. | Pennacchio A, Giordano A, Pucci B, Rossi M, Raia CA | Extremophiles | 10.1007/s00792-009-0298-3 | 2010 | |
| Enzymology | Highly enantioselective stereo-inverting sec-alkylsulfatase activity of hyperthermophilic Archaea. | Wallner SR, Nestl BM, Faber K | Org Biomol Chem | 10.1039/b504883d | 2005 | |
| Genetics | The genome of Sulfolobus acidocaldarius, a model organism of the Crenarchaeota. | Chen L, Brugger K, Skovgaard M, Redder P, She Q, Torarinsson E, Greve B, Awayez M, Zibat A, Klenk HP, Garrett RA | J Bacteriol | 10.1128/JB.187.14.4992-4999.2005 | 2005 | |
| Enzymology | Highly enantioselective sec-alkyl sulfatase activity of Sulfolobus acidocaldarius DSM 639. | Wallner SR, Nestl BM, Faber K | Org Lett | 10.1021/ol0477778 | 2004 | |
| Genetics | Novel functional aspects of the membrane-bound exo-pyrophosphatase of the hyperthermoacidophilic archaeon Sulfolobus are provided by analysis of its gene and the adjacent gene cluster. | Moll RG, Schafer G | J Bioenerg Biomembr | 10.1023/b:jobb.0000019606.33529.4e | 2004 | |
| Phylogeny | New genes encoding subunits of a cytochrome bc1-analogous complex in the respiratory chain of the hyperthermoacidophilic crenarchaeon Sulfolobus acidocaldarius. | Hiller A, Henninger T, Schafer G, Schmidt CL | J Bioenerg Biomembr | 10.1023/a:1023742002493 | 2003 | |
| Enzymology | [Cloning and expression of maltooligosyltrehalose synthase from Sulfolobus acidocaldarius in Escherichia coli]. | Wang H, Chen W, Wu J, Jin C | Sheng Wu Gong Cheng Xue Bao | 2001 | ||
| Enzymology | Cytochrome b558/566 from the archaeon Sulfolobus acidocaldarius has a unique Asn-linked highly branched hexasaccharide chain containing 6-sulfoquinovose. | Zahringer U, Moll H, Hettmann T, Knirel YA, Schafer G | Eur J Biochem | 10.1046/j.1432-1327.2000.01446.x | 2000 | |
| Cultivation | Sulfolobicins, specific proteinaceous toxins produced by strains of the extremely thermophilic archaeal genus Sulfolobus. | Prangishvili D, Holz I, Stieger E, Nickell S, Kristjansson JK, Zillig W | J Bacteriol | 10.1128/JB.182.10.2985-2988.2000 | 2000 | |
| Metabolism | Crystallization and preliminary crystallographic analysis of Rieske iron-sulfur protein II (soxF) from sulfolobus acidocaldarius. | Bonisch H, Schmidt CL, Schafer G, Ladenstein R | Acta Crystallogr D Biol Crystallogr | 10.1107/s0907444900002456 | 2000 | |
| Enzymology | The strict molybdate-dependence of glucose-degradation by the thermoacidophile Sulfolobus acidocaldarius reveals the first crenarchaeotic molybdenum containing enzyme--an aldehyde oxidoreductase. | Kardinahl S, Schmidt CL, Hansen T, Anemuller S, Petersen A, Schafer G | Eur J Biochem | 10.1046/j.1432-1327.1999.00201.x | 1999 | |
| Enzymology | The glutamine synthetase from the hyperthermoacidophilic crenarcheon Sulfolobus acidocaldarius: isolation, characterization and sequencing of the gene. | Yin Z, Purschke WG, Schafer G, Schmidt CL | Biol Chem | 10.1515/bchm.1998.379.11.1349 | 1998 | |
| Metabolism | Cytochrome b558/566 from the archaeon Sulfolobus acidocaldarius. A novel highly glycosylated, membrane-bound b-type hemoprotein. | Hettmann T, Schmidt CL, Anemuller S, Zahringer U, Moll H, Petersen A, Schafer G | J Biol Chem | 10.1074/jbc.273.20.12032 | 1998 | |
| Enzymology | Expression of the Solfolobus acidocaldarius Rieske iron sulfur protein II (SOXF) with the correctly inserted [2FE-2S] cluster in Escherichia coli. | Schmidt CL, Hatzfeld OM, Petersen A, Link TA, Schafer G | Biochem Biophys Res Commun | 10.1006/bbrc.1997.6599 | 1997 | |
| Metabolism | Resonance Raman spectroscopy of the integral quinol oxidase complex of Sulfolobus acidocaldarius. | Gerscher S, Dopner S, Hildebrandt P, Gleissner M, Schafer G | Biochemistry | 10.1021/bi960896d | 1996 | |
| Metabolism | Three extremely thermostable proteins from Sulfolobus and a reappraisal of the 'traffic rules'. | Schafer T, Bonisch H, Kardinahl S, Schmidt C, Schafer G | Biol Chem | 1996 | ||
| Enzymology | Two different respiratory Rieske proteins are expressed in the extreme thermoacidophilic crenarchaeon Sulfolobus acidocaldarius: cloning and sequencing of their genes. | Schmidt CL, Anemuller S, Schafer G | FEBS Lett | 10.1016/0014-5793(96)00511-x | 1996 | |
| Enzymology | Isolation, characterization and crystallization of an iron-superoxide dismutase from the crenarchaeon Sulfolobus acidocaldarius. | Kardinahl S, Schmidt CL, Petersen A, Schafer G | FEMS Microbiol Lett | 10.1111/j.1574-6968.1996.tb08136.x | 1996 | |
| Enzymology | Purification and characterization of thermostable maltooligosyl trehalose trehalohydrolase from the thermoacidophilic archaebacterium Sulfolobus acidocaldarius. | Nakada T, Ikegami S, Chaen H, Kubota M, Fukuda S, Sugimoto T, Kurimoto M, Tsujisaka Y | Biosci Biotechnol Biochem | 10.1271/bbb.60.267 | 1996 | |
| Enzymology | Purification and characterization of thermostable maltooligosyl trehalose synthase from the thermoacidophilic archaebacterium Sulfolobus acidocaldarius. | Nakada T, Ikegami S, Chaen H, Kubota M, Fukuda S, Sugimoto T, Kurimoto M, Tsujisaka Y | Biosci Biotechnol Biochem | 10.1271/bbb.60.263 | 1996 | |
| Genetics | Nucleotide sequence of a gene cluster encoding ribosomal proteins in the thermoacidophilic crenarchaeon Sulfolobus acidocaldarius. | Moll R, Schmidtke S, Schafer G | Biochim Biophys Acta | 10.1016/0167-4781(95)00024-b | 1995 | |
| The structure of the core polyol of the ether lipids from Sulfolobus acidocaldarius. | Sugai A, Sakuma R, Fukuda I, Kurosawa N, Itoh YH, Kon K, Ando S, Itoh T | Lipids | 10.1007/BF02536042 | 1995 | ||
| Enzymology | Purification and characterization of reverse gyrase from Sulfolobus shibatae. Its proteolytic product appears as an ATP-independent topoisomerase. | Nadal M, Couderc E, Duguet M, Jaxel C | J Biol Chem | S0021-9258(17)37682-2 | 1994 | |
| Phylogeny | Strain identification and 5S rRNA gene characterization of the hyperthermophilic archaebacterium Sulfolobus acidocaldarius. | Durovic P, Kutay U, Schleper C, Dennis PP | J Bacteriol | 10.1128/jb.176.2.514-517.1994 | 1994 | |
| Enzymology | Reverse gyrase: a helicase-like domain and a type I topoisomerase in the same polypeptide. | Confalonieri F, Elie C, Nadal M, de La Tour C, Forterre P, Duguet M | Proc Natl Acad Sci U S A | 10.1073/pnas.90.10.4753 | 1993 | |
| Enzymology | Archaebacterial adenylate kinase from the thermoacidophile Sulfolobus acidocaldarius: purification, characterization, and partial sequence. | Lacher K, Schafer G | Arch Biochem Biophys | 10.1006/abbi.1993.1229 | 1993 | |
| Enzymology | Characterization and purification of a membrane-bound archaebacterial pyrophosphatase from Sulfolobus acidocaldarius. | Meyer W, Schafer G | Eur J Biochem | 10.1111/j.1432-1033.1992.tb17104.x | 1992 | |
| Metabolism | Chemiosmotic energy conversion of the archaebacterial thermoacidophile Sulfolobus acidocaldarius: oxidative phosphorylation and the presence of an F0-related N,N'-dicyclohexylcarbodiimide-binding proteolipid. | Lubben M, Schafer G | J Bacteriol | 10.1128/jb.171.11.6106-6116.1989 | 1989 | |
| Enzymology | Organization and nucleotide sequence of the genes encoding the large subunits A, B and C of the DNA-dependent RNA polymerase of the archaebacterium Sulfolobus acidocaldarius. | Puhler G, Lottspeich F, Zillig W | Nucleic Acids Res | 10.1093/nar/17.12.4517 | 1989 | |
| Enzymology | A plasma-membrane associated ATPase from the thermoacidophilic archaebacterium Sulfolobus acidocaldarius. | Lubben M, Schafer G | Eur J Biochem | 10.1111/j.1432-1033.1987.tb11159.x | 1987 | |
| Phylogeny | Orenia metallireducens sp. nov. Strain Z6, a Novel Metal-Reducing Member of the Phylum Firmicutes from the Deep Subsurface. | Dong Y, Sanford RA, Boyanov MI, Kemner KM, Flynn TM, O'Loughlin EJ, Chang YJ, Locke RA, Weber JR, Egan SM, Mackie RI, Cann I, Fouke BW. | Appl Environ Microbiol | 10.1128/aem.02382-16 | 2016 |
| #341 | Leibniz Institut DSMZ-Deutsche Sammlung von Mikroorganismen und Zellkulturen GmbH ; Curators of the DSMZ; DSM 639 |
| #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 ) |
| #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) . |
| #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; |
| #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 . |
| #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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