Azotobacter vinelandii 16 is a bacterium of the family Pseudomonadaceae.
genome sequence 16S sequence Bacteria| @ref 20215 |
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| Domain Bacteria |
| Phylum Pseudomonadota |
| Class Gammaproteobacteria |
| Order Pseudomonadales |
| Family Pseudomonadaceae |
| Genus Azotobacter |
| Species Azotobacter vinelandii |
| Full scientific name Azotobacter vinelandii Lipman 1903 (Approved Lists 1980) |
| @ref | Name | Growth | Medium link | Composition | |
|---|---|---|---|---|---|
| 1021 | DIAZOTROPHIC MEDIUM (RBA) (DSMZ Medium 441) | Medium recipe at MediaDive | Name: DIAZOTROPHIC MEDIUM (RBA) (DSMZ Medium 441) Composition: Agar 14.881 g/l DL-Malate 1.98413 g/l D-Glucose 1.98413 g/l D-Mannitol 1.98413 g/l Na-pyruvate 0.992063 g/l Disodium succinate 0.992063 g/l K2HPO4 0.892857 g/l KH2PO4 0.0992065 g/l NaCl 0.0992065 g/l CaCl2 x 2 H2O 0.0992065 g/l MgSO4 x 7 H2O 0.0992065 g/l Yeast extract 0.0496032 g/l FeSO4 x 7 H2O 0.00992065 g/l MnSO4 x H2O 0.00496032 g/l NaVO3 x H2O 0.00496032 g/l Nicotinic acid 0.00248016 g/l Pyridoxine hydrochloride 0.00248016 g/l Calcium pantothenate 0.00248016 g/l Thiamine-HCl x 2 H2O 0.00248016 g/l H3BO3 0.000892857 g/l CoCl2 x 6 H2O 0.000595238 g/l Riboflavin 0.000496032 g/l ZnSO4 x 7 H2O 0.000297619 g/l MnCl2 x 4 H2O 8.92857e-05 g/l Na2MoO4 x 2 H2O 8.92857e-05 g/l NiCl2 x 6 H2O 5.95238e-05 g/l Vitamin B12 4.96032e-05 g/l CuCl2 x 2 H2O 2.97619e-05 g/l Folic acid 9.92063e-06 g/l Biotin 4.96032e-06 g/l Distilled water |
Global distribution of 16S sequence EF100155 (>99% sequence identity) for Azotobacter vinelandii from Microbeatlas ![]()
| @ref | Description | Assembly level | INSDC accession | BV-BRC accession | IMG accession | NCBI tax ID | Score | |
|---|---|---|---|---|---|---|---|---|
| 124043 | ASM2792222v1 assembly for Azotobacter vinelandii VKM B-1617 | scaffold | 354 | 44.13 | ||||
| 124043 | ASM4268582v1 assembly for Azotobacter vinelandii VKM B-1617 | contig | 354 | 8.01 |
| @ref | Description | Accession | Length | Database | NCBI tax ID | |
|---|---|---|---|---|---|---|
| 20218 | Azotobacter vinelandii strain ICMP 15215 16S ribosomal RNA gene, partial sequence | EF100155 | 1370 | 354 | ||
| 20218 | Azotobacter vinelandii gene for 16S rRNA, partial sequence | AB175657 | 1471 | 354 | ||
| 20218 | Azotobacter vinelandii gene for 16S rRNA, partial sequence, strain: NBRC 102612 | AB681886 | 1461 | 354 |
| Topic | Title | Authors | Journal | DOI | Year | |
|---|---|---|---|---|---|---|
| One Advantage of Being Polyploid: Prokaryotes of Various Phylogenetic Groups Can Grow in the Absence of an Environmental Phosphate Source at the Expense of Their High Genome Copy Numbers. | Bruck P, Wasser D, Soppa J. | Microorganisms | 10.3390/microorganisms11092267 | 2023 | ||
| Genetics | Identification of Beneficial Microbial Consortia and Bioactive Compounds with Potential as Plant Biostimulants for a Sustainable Agriculture. | Tabacchioni S, Passato S, Ambrosino P, Huang L, Caldara M, Cantale C, Hett J, Del Fiore A, Fiore A, Schluter A, Sczyrba A, Maestri E, Marmiroli N, Neuhoff D, Nesme J, Sorensen SJ, Aprea G, Nobili C, Presenti O, Giovannetti G, Giovannetti C, Pihlanto A, Brunori A, Bevivino A. | Microorganisms | 10.3390/microorganisms9020426 | 2021 | |
| A Practical Toolkit for the Detection, Isolation, Quantification, and Characterization of Siderophores and Metallophores in Microorganisms | Gomes A, Sousa E, Resende D. | ACS Omega | 2024 | |||
| Comparison of five bacterial strains producing siderophores with ability to chelate iron under alkaline conditions. | Ferreira CMH, Vilas-Boas A, Sousa CA, Soares HMVM, Soares EV. | AMB Express | 10.1186/s13568-019-0796-3 | 2019 | ||
| Metabolism | A low-potential terminal oxidase associated with the iron-only nitrogenase from the nitrogen-fixing bacterium Azotobacter vinelandii. | Varghese F, Kabasakal BV, Cotton CAR, Schumacher J, Rutherford AW, Fantuzzi A, Murray JW. | J Biol Chem | 10.1074/jbc.ra118.007285 | 2019 | |
| Evaluation of the Efficacy of Two New Biotechnological-Based Freeze-Dried Fertilizers for Sustainable Fe Deficiency Correction of Soybean Plants Grown in Calcareous Soils. | Ferreira CMH, Lopez-Rayo S, Lucena JJ, Soares EV, Soares HMVM. | Front Plant Sci | 10.3389/fpls.2019.01335 | 2019 | ||
| Engineered Nanoparticles, Natural Nanoclay and Biochar, as Carriers of Plant-Growth Promoting Bacteria. | Pavlicevic M, Abdelraheem W, Zuverza-Mena N, O'Keefe T, Mukhtar S, Ridge G, Ranciato J, Haynes C, Elmer W, Pignatello J, Pagano L, Caldara M, Marmiroli M, Maestri E, Marmiroli N, White JC. | Nanomaterials (Basel) | 10.3390/nano12244474 | 2022 | ||
| Life on the Rocks: First Insights Into the Microbiota of the Threatened Aquatic Rheophyte Hanseniella heterophylla. | Purahong W, Hossen S, Nawaz A, Sadubsarn D, Tanunchai B, Dommert S, Noll M, Ampornpan LA, Werukamkul P, Wubet T. | Front Plant Sci | 10.3389/fpls.2021.634960 | 2021 | ||
| Metabolism | In silico prospection of microorganisms to produce polyhydroxyalkanoate from whey: Caulobacter segnis DSM 29236 as a suitable industrial strain. | Bustamante D, Segarra S, Tortajada M, Ramon D, Del Cerro C, Auxiliadora Prieto M, Iglesias JR, Rojas A. | Microb Biotechnol | 10.1111/1751-7915.13371 | 2019 | |
| Phylogeny | Biodiversity of denitrifying and dinitrogen-fixing bacteria in an acid forest soil. | Rosch C, Mergel A, Bothe H. | Appl Environ Microbiol | 10.1128/aem.68.8.3818-3829.2002 | 2002 | |
| Expression of the Escherichia coli pfkA gene in Alcaligenes eutrophus and in other gram-negative bacteria. | Steinbuchel A. | J Bacteriol | 10.1128/jb.166.1.319-327.1986 | 1986 | ||
| Enzymology | Purification and comparative studies of dihydrolipoamide dehydrogenases from the anaerobic, glycine-utilizing bacteria Peptostreptococcus glycinophilus, Clostridium cylindrosporum, and Clostridium sporogenes. | Dietrichs D, Andreesen JR. | J Bacteriol | 10.1128/jb.172.1.243-251.1990 | 1990 | |
| Enzymology | Isolation of an atypically small lipoamide dehydrogenase involved in the glycine decarboxylase complex from Eubacterium acidaminophilum. | Freudenberg W, Dietrichs D, Lebertz H, Andreesen JR. | J Bacteriol | 10.1128/jb.171.3.1346-1354.1989 | 1989 | |
| Close association of azospirillum and diazotrophic rods with different root zones of kallar grass. | Reinhold B, Hurek T, Niemann EG, Fendrik I. | Appl Environ Microbiol | 10.1128/aem.52.3.520-526.1986 | 1986 | ||
| Searching for Chemical Agents Suppressing Substrate Microbiota in White-Rot Fungi Large-Scale Cultivation | Maruska A, Mickiene R, Kaskoniene V, Grigiskis S, Stankevicius M, Drevinskas T, Kornysova O, Donati E, Tiso N, Mikasauskaite-Tiso J, Zacchini M, Levisauskas D, Ragazinskiene O, Bimbiraite-Surviliene K, Kanopka A, Duda G. | Microorganisms | 2024 | |||
| The Fe-V Cofactor of Vanadium Nitrogenase Contains an Interstitial Carbon Atom. | Rees JA, Bjornsson R, Schlesier J, Sippel D, Einsle O, DeBeer S. | Angew Chem Int Ed Engl | 10.1002/anie.201505930 | 2015 | ||
| Metabolism | Cofactor binding protects flavodoxin against oxidative stress. | Lindhoud S, van den Berg WA, van den Heuvel RH, Heck AJ, van Mierlo CP, van Berkel WJ. | PLoS One | 10.1371/journal.pone.0041363 | 2012 | |
| Metabolism | A crystallographic study of Cys69Ala flavodoxin II from Azotobacter vinelandii: structural determinants of redox potential. | Alagaratnam S, van Pouderoyen G, Pijning T, Dijkstra BW, Cavazzini D, Rossi GL, Van Dongen WM, van Mierlo CP, van Berkel WJ, Canters GW. | Protein Sci | 10.1110/ps.051582605 | 2005 | |
| Illuminating the off-pathway nature of the molten globule folding intermediate of an alpha-beta parallel protein. | Lindhoud S, Westphal AH, Borst JW, van Mierlo CP. | PLoS One | 10.1371/journal.pone.0045746 | 2012 | ||
| Metabolism | Interrupted hydrogen/deuterium exchange reveals the stable core of the remarkably helical molten globule of alpha-beta parallel protein flavodoxin. | Nabuurs SM, van Mierlo CPM. | J Biol Chem | 10.1074/jbc.m109.087932 | 2010 | |
| Proteome | The equilibrium unfolding of Azotobacter vinelandii apoflavodoxin II occurs via a relatively stable folding intermediate. | van Mierlo CP, van Dongen WM, Vergeldt F, van Berkel WJ, Steensma E. | Protein Sci | 10.1002/pro.5560071110 | 1998 | |
| Improving accuracy of cell and chromophore concentration measurements using optical density. | Myers JA, Curtis BS, Curtis WR. | BMC Biophys | 10.1186/2046-1682-6-4 | 2013 | ||
| Metabolism | Demonstration That the Radical S-Adenosylmethionine (SAM) Enzyme PqqE Catalyzes de Novo Carbon-Carbon Cross-linking within a Peptide Substrate PqqA in the Presence of the Peptide Chaperone PqqD. | Barr I, Latham JA, Iavarone AT, Chantarojsiri T, Hwang JD, Klinman JP. | J Biol Chem | 10.1074/jbc.c115.699918 | 2016 | |
| Metabolism | Non-native hydrophobic interactions detected in unfolded apoflavodoxin by paramagnetic relaxation enhancement. | Nabuurs SM, de Kort BJ, Westphal AH, van Mierlo CP. | Eur Biophys J | 10.1007/s00249-009-0556-4 | 2010 | |
| Apparent local stability of the secondary structure of Azotobacter vinelandii holoflavodoxin II as probed by hydrogen exchange: implications for redox potential regulation and flavodoxin folding. | Steensma E, Nijman MJ, Bollen YJ, de Jager PA, van den Berg WA, van Dongen WM, van Mierlo CP. | Protein Sci | 10.1002/pro.5560070210 | 1998 | ||
| Metabolism | Distant residues mediate picomolar binding affinity of a protein cofactor. | Bollen YJ, Westphal AH, Lindhoud S, van Berkel WJ, van Mierlo CP. | Nat Commun | 10.1038/ncomms2010 | 2012 | |
| Distribution of alginate gene sequences in the Pseudomonas rRNA homology group I-Azomonas-Azotobacter lineage of superfamily B procaryotes. | Fialho AM, Zielinski NA, Fett WF, Chakrabarty AM, Berry A. | Appl Environ Microbiol | 10.1128/aem.56.2.436-443.1990 | 1990 | ||
| Metabolism | Kinetics and thermodynamics of the binding of riboflavin, riboflavin 5'-phosphate and riboflavin 3',5'-bisphosphate by apoflavodoxins. | Pueyo JJ, Curley GP, Mayhew SG. | Biochem J | 10.1042/bj3130855 | 1996 | |
| Metabolism | Regulation of the hemA gene during 5-aminolevulinic acid formation in Pseudomonas aeruginosa. | Hungerer C, Troup B, Romling U, Jahn D. | J Bacteriol | 10.1128/jb.177.6.1435-1443.1995 | 1995 | |
| Proteome | Apoflavodoxin (un)folding followed at the residue level by NMR. | van Mierlo CP, van den Oever JM, Steensma E. | Protein Sci | 10.1110/ps.9.1.145 | 2000 | |
| Pathogenicity | Induction of the alkA gene of Escherichia coli in gram-negative bacteria. | Fernandez de Henestrosa AR, Barbe J. | J Bacteriol | 10.1128/jb.173.23.7736-7740.1991 | 1991 | |
| Enzymology | Comparative biochemical and immunological studies of bacterial glutamine synthetases. | Tronick SR, Ciardi JE, Stadtman ER. | J Bacteriol | 10.1128/jb.115.3.858-868.1973 | 1973 | |
| Phasins PhbP2 and PhbP3 Are Involved in the Depolymerization of Polyhydroxybutyrate in Azotobacter vinelandii. | Ruiz-Escobedo J, Guzman J, Espin G, Barrientos-Millan T, Moyao-Mejia A, Pena C, Moreno S, Meneses-Romero EP, Segura D. | J Basic Microbiol | 10.1002/jobm.70124 | 2025 | ||
| Unlocking nitrogen regulation: structural insights into the NifL-NifA complex and prospects for engineered diazotrophs. | Gerhardt ECM, Selim KA. | FEBS J | 10.1111/febs.70332 | 2025 | ||
| Bioplastic production in air-lift bioreactors using a spent cooking oil-based method for sustainable recovery. | Antolin I, Sanchez Rizza L, Crisci JA, Curatti L. | World J Microbiol Biotechnol | 10.1007/s11274-025-04606-1 | 2025 | ||
| Enhanced electron microscopy imaging for a detailed structural study of alginate hydrogel containing the encapsulated cells. | Mrazova K, Cernayova D, Havlickova A, Hrubanova K, Obruca S, Sedlacek P, Krzyzanek V. | Carbohydr Polym | 10.1016/j.carbpol.2025.124239 | 2025 | ||
| Structural analysis of the NifL-NifA complex reveals the molecular basis of anti-activation of nitrogen fixation gene expression in Azotobacter vinelandii. | Bueno Batista M, Richardson J, Webster MW, Ghilarov D, Peters JW, Lawson DM, Dixon R. | FEBS J | 10.1111/febs.70253 | 2025 | ||
| Metabolism | CryoEM-enabled visual proteomics reveals de novo structures of oligomeric protein complexes. | Shen Y, Maggiolo AO, Zhang T, Warmack RA. | Structure | 10.1016/j.str.2025.06.007 | 2025 | |
| Transcriptome | Metal-organic frameworks (MOF-74) show distinct bio-effects to nitrogen-fixing bacterium Azotobacter vinelandii. | Liu F, Wang H, Tang Z, Chen H, Yuan Y, Zhong Q, Wu X, Yang ST. | J Hazard Mater | 10.1016/j.jhazmat.2025.138779 | 2025 | |
| Self-entrapment of Azotobacter vinelandii cultures by gelation of their exopolysaccharides: A way towards next-generation bioinoculants. | Cernayova D, Sukenik M, Obruca S, Smilek J, Kalina M, Mrazova K, Hrubanova K, Krzyzanek V, Sedlacek P. | Carbohydr Polym | 10.1016/j.carbpol.2025.123607 | 2025 | ||
| Growth inhibition and activity stimulation of non-target organism nitrogen-fixing bacterium Azotobacter vinelandii by herbicide florasulam. | Chen H, Wang H, Yang J, Yuan Y, Tang W, Wu X, Zhong Q, Yang ST. | J Hazard Mater | 10.1016/j.jhazmat.2025.138828 | 2025 | ||
| Characterization of the Azotobacter vinelandii nitrogenase complex expressed in Escherichia coli toward further activity improvement. | Ito Y, Yoshidome D, Hidaka M, Araki Y, Ito K, Kosono S, Nishiyama M. | J Gen Appl Microbiol | 10.2323/jgam.2024.12.001 | 2025 | ||
| In vivo synthesis of semiconductor nanoparticles in Azotobacter vinelandii for light-driven ammonia production. | Kim GM, Choi Y, Choi KR, Lee I, Kim J, Lee B, Lee SY, Lee DC. | Nanoscale | 10.1039/d4nr02177k | 2025 | ||
| Environmental Stability Determines the Cytotoxicity of Metal-Organic Frameworks to a Nitrogen-Fixing Bacterium Azotobacter vinelandii. | Tang Z, Liang C, Zhong Q, Yang J, Ma Y, Yuan Y, Zeng Y, Wu X, Yang ST. | Chem Res Toxicol | 10.1021/acs.chemrestox.4c00385 | 2025 | ||
| Cross-Coupling of Mo- and V-Nitrogenases Permits Protein-Mediated Protection from Oxygen Deactivation. | Ratcliff D, Danielle Sedoh GC, Milton RD. | Chembiochem | 10.1002/cbic.202400585 | 2024 | ||
| Metabolism | Azotobacter vinelandii as a Nitrogen-Negative Chassis for Bio-Oil and Bio-Wax Production of Heterologous and Native Lipids. | Barney BM, Camur BB, Stolp LJ, Mancipe NC, Dietz BR. | Microbiologyopen | 10.1002/mbo3.70047 | 2025 | |
| Enhanced Urea Production in the Diazotroph Azotobacter vinelandii as a Means of Stable Nitrogen Biofertiliser Production. | Barney BM, Dietz BR. | Microb Biotechnol | 10.1111/1751-7915.70187 | 2025 | ||
| Promoting role of nitrogen-fixing bacteria and biochar on nitrogen retention and degradation of PBAT plastics during composting. | Wang L, Qi Y, Cao L, Song L, Hu R, Li Q, Zhao Y, Liu J, Zhang H. | Environ Pollut | 10.1016/j.envpol.2024.125228 | 2024 | ||
| Tailoring 3HV Fraction in Poly(3-hydroxybutyrate-co-3-hydroxyvalerate) by Azotobacter vinelandii Through Oxygen and Carbon Limitation in Continuous Cultures. | Perez A, Garcia A, Urtuvia V, Pena C, Diaz-Barrera A. | Polymers (Basel) | 10.3390/polym17192578 | 2025 | ||
| Improvement of the nitrogenase activity in Escherichia coli that expresses the nitrogen fixation-related genes from Azotobacter vinelandii. | Ito Y, Yoshidome D, Hidaka M, Araki Y, Ito K, Kosono S, Nishiyama M. | Biochem Biophys Res Commun | 10.1016/j.bbrc.2024.150345 | 2024 | ||
| Photoelectrocatalytic-Microbial Biohybrid for Nitrogen Reduction. | Zhang Y, Feng T, Zhou X, Zhang Z. | Adv Mater | 10.1002/adma.202407239 | 2024 | ||
| Phylogeny | Azotobacter biodiversity in Egypt using microbiological, biochemical, and molecular-biology multidisciplinary approach. | Kenawy AMA, Khalil AI, Ali BA, El-Deeb NM, Haddad AM. | Genetica | 10.1007/s10709-024-00224-1 | 2025 | |
| Enzymology | Monomeric Glycine oxidase from Azotobacter vinelandii for Glycine biosensing. | Mena-Rodriguez A, Garcia-Morales R, Gonzalez-Davis O, Vazquez-Duhalt R, Huerta-Saquero A, Zarate-Romero A. | World J Microbiol Biotechnol | 10.1007/s11274-025-04657-4 | 2025 | |
| On the path to [Fe-S] protein maturation: A personal perspective. | Dean DR. | Biochim Biophys Acta Mol Cell Res | 10.1016/j.bbamcr.2024.119750 | 2024 | ||
| Architecture of the RNF1 complex that drives biological nitrogen fixation. | Zhang L, Einsle O. | Nat Chem Biol | 10.1038/s41589-024-01641-1 | 2024 | ||
| Advances in alginate biosynthesis: regulation and production in Azotobacter vinelandii. | Ponce B, Zamora-Quiroz A, Gonzalez E, Andler R, Diaz-Barrera A. | Front Bioeng Biotechnol | 10.3389/fbioe.2025.1593893 | 2025 | ||
| Toxicity of VO2 micro/nanoparticles to nitrogen-fixing bacterium Azotobacter vinelandii. | Ouyang P, Yang J, Zhong Q, Yuan Y, Gao Y, Wang H, Yang ST. | J Hazard Mater | 10.1016/j.jhazmat.2024.133553 | 2024 | ||
| Structural evolution of nitrogenase over 3 billion years. | Cuevas Zuviria B, Detemple F, Amritkar K, Garcia AK, Seefeldt L, Einsle O, Kacar B. | Elife | 10.7554/elife.105613 | 2025 | ||
| The c-di-GMP effector FleQ controls alginate production by repressing transcription of algD in Azotobacter vinelandii. | Barrios-Rafael VV, Ahumada-Manuel CL, Orgaz-Ramirez S, Nava-Galeana J, Guzman J, Moreno S, Bustamante VH, Nunez C. | Microbiology (Reading) | 10.1099/mic.0.001556 | 2025 | ||
| Little alginates synthesized in EPS: Evidences from high-throughput community and metagenes. | Li J, Yang W, Hao X, Lin Y, van Loosdrecht MCM. | Water Res | 10.1016/j.watres.2024.122211 | 2024 | ||
| Genetics | Comparative genomics and metabolomics reveal phytohormone production, nutrient acquisition, and osmotic stress tolerance in Azotobacter chroococcum W5. | Elakkya M, Gonzalez-Salazar LA, Lopez-Reyes K, Rebelo-Romao I, Sousa A, Godde V, Niehaus K, Thenappan DP, Vilchez JI, Paul S, Licona-Cassani C. | Front Microbiol | 10.3389/fmicb.2025.1626016 | 2025 | |
| Azotobacter vinelandii N2 fixation increases in co-culture with the PGPR Bacillus subtilis in a nitrogen concentration-dependent manner. | Leroux J, Beauregard PB, Bellenger J-P. | Appl Environ Microbiol | 10.1128/aem.01528-24 | 2024 | ||
| Enzymology | Structural comparison of (hyper-)thermophilic nitrogenase reductases from three marine Methanococcales. | Maslac N, Cadoux C, Bolte P, Murken F, Gu W, Milton RD, Wagner T. | FEBS J | 10.1111/febs.17148 | 2024 | |
| Defining the regulatory mechanisms of sigma factor RpoS degradation in Azotobacter vinelandii and Pseudomonas aeruginosa. | Rodriguez-Martinez K, Muriel-Millan LF, Ortiz-Vasco C, Moreno S, Soberon-Chavez G, Espin G. | Mol Microbiol | 10.1111/mmi.15107 | 2023 | ||
| Repeated Fed-Batch Culture Strategy for the Synthesis of Polyhydroxybutyrate (PHB) Biopolymers from Sugar Cane Juice Using Azotobacter vinelandii. | Dujjanutat P, Singhaboot P, Kaewkannetra P. | Polymers (Basel) | 10.3390/polym16223156 | 2024 | ||
| Insights into the genome of Azotobacter sp. strain CWF10, isolated from an agricultural field in Central India. | Roy A, Ghosh A, Yash, Mehra P, Roy S, Bhadury P. | Access Microbiol | 10.1099/acmi.0.000930.v4 | 2025 | ||
| Impact of Co-Substrates on the Production of Poly(3-hydroxybutyrate-co-3-hydroxyvalerate) by Burkholderia thailandensis E264 | Hernandez-Alonso J, Pichardo-Sanchez M, Huerta-Ochoa S, Roman-Guerrero A, Rodriguez-Fernandez O, Vazquez-Torres H, Olayo-Gonzalez R, Olayo-Valles R, Rodriguez-Duran L, Prado-Barragan L. | Materials (Basel) | 2025 | |||
| Precision control of ammonium release in Azotobacter vinelandii. | Barney BM, Dietz BR. | Microb Biotechnol | 10.1111/1751-7915.14523 | 2024 | ||
| A Broad Light-Harvesting Conjugated Oligoelectrolyte Enables Photocatalytic Nitrogen Fixation in a Bacterial Biohybrid. | Chen Z, Quek G, Zhu JY, Chan SJW, Cox-Vazquez SJ, Lopez-Garcia F, Bazan GC. | Angew Chem Int Ed Engl | 10.1002/anie.202307101 | 2023 | ||
| Biotechnology | The structural components of the Azotobacter vinelandii iron-only nitrogenase, AnfDKG, form a protein complex within the plant mitochondrial matrix. | Johnston E, Okada S, Gregg CM, Warden AC, Rolland V, Gillespie V, Byrne K, Colgrave ML, Eamens AL, Allen RS, Wood CC. | Plant Mol Biol | 10.1007/s11103-023-01363-3 | 2023 | |
| Organic ligands regulate the environmental impacts of metal-organic frameworks on nitrogen-fixing bacterium Azotobacter vinelandii. | Liang C, Zhong Q, Pan L, Liu F, Li X, Yang J, Ma Y, Zhou J, Yang ST. | J Hazard Mater | 10.1016/j.jhazmat.2023.131373 | 2023 | ||
| The crystal structure of Shethna protein II (FeSII) from Azotobacter vinelandii suggests a domain swap. | Kabasakal BV, McFarlane CR, Cotton CAR, Schmidt A, Kung A, Lieber L, Murray JW. | Acta Crystallogr D Struct Biol | 10.1107/s2059798324005928 | 2024 | ||
| A Closer Look at the FeS Heme Bonds in Azotobacter vinelandii Bacterioferritin: QM/MM and Local Mode Analysis. | Freindorf M, Kraka E. | J Comput Chem | 10.1002/jcc.70012 | 2025 | ||
| Bioavailability of mineral-associated trace metals as cofactors for nitrogen fixation by Azotobacter vinelandii. | Srivastava S, Dong H, Baars O, Sheng Y. | Geobiology | 10.1111/gbi.12552 | 2023 | ||
| Molecular Mechanisms of Pseudomonas-Assisted Plant Nitrogen Uptake: Opportunities for Modern Agriculture. | Sanow S, Kuang W, Schaaf G, Huesgen P, Schurr U, Roessner U, Watt M, Arsova B. | Mol Plant Microbe Interact | 10.1094/mpmi-10-22-0223-cr | 2023 | ||
| Reductant- or Light-Driven ATP-Independent Reduction of CO2 by Nitrogenase MoFe Protein. | Lee CC, Hu Y, Ribbe MW. | Chembiochem | 10.1002/cbic.202500366 | 2025 | ||
| In vitro and in vivo studies of selenium nanoparticles coated bacterial polysaccharide as anti-lung cancer agents. | Shehata NS, Elwakil BH, Elshewemi SS, Ghareeb DA, Olama ZA. | Microb Cell Fact | 10.1186/s12934-024-02601-z | 2024 | ||
| Nitrogen stable isotope fractionation by biological nitrogen fixation reveals cellular nitrogenase is diffusion limited. | Han E, Kopf SH, Maloney AE, Ai XE, Sigman DM, Zhang X. | PNAS Nexus | 10.1093/pnasnexus/pgaf061 | 2025 | ||
| Mannuronate C-5 epimerases and their use in alginate modification. | Petersen AB, Tondervik A, Gaardlos M, Ertesvag H, Sletta H, Aachmann FL. | Essays Biochem | 10.1042/ebc20220151 | 2023 | ||
| The ribosome rescue pathways SsrA-SmpB, ArfA, and ArfB mediate tolerance to heat and antibiotic stresses in Azotobacter vinelandii. | Moreno S, Muriel-Millan LF, Rodriguez-Martinez K, Ortiz-Vasco C, Bedoya-Perez LP, Espin G. | FEMS Microbiol Lett | 10.1093/femsle/fnac104 | 2022 | ||
| Nitrogen-Fixing Gamma Proteobacteria Azotobacter vinelandii-A Blueprint for Nitrogen-Fixing Plants? | Barron S, Mus F, Peters JW. | Microorganisms | 10.3390/microorganisms12102087 | 2024 | ||
| Overview of physiological, biochemical, and regulatory aspects of nitrogen fixation in Azotobacter vinelandii. | Martin Del Campo JS, Rigsbee J, Bueno Batista M, Mus F, Rubio LM, Einsle O, Peters JW, Dixon R, Dean DR, Dos Santos PC. | Crit Rev Biochem Mol Biol | 10.1080/10409238.2023.2181309 | 2022 | ||
| A deoxyviolacein-based transposon insertion vector for pigmented tracer studies. | Dietz BR, Nelson TJ, Olszewski NE, Barney BM. | Microbiologyopen | 10.1002/mbo3.1425 | 2024 | ||
| Inorganic-bacterial biohybrids for efficient solar-driven nitrogen fixation. | Zhou X, Wu D, Zhang Y, Feng T, Zhang W, Zhang Z. | Nat Commun | 10.1038/s41467-025-60937-5 | 2025 | ||
| Enzymology | Molecular sorting of nitrogenase catalytic cofactors. | Salinero-Lanzarote A, Lian J, Namkoong G, Suess DLM, Rubio LM, Dean DR, Perez-Gonzalez A. | J Biol Chem | 10.1016/j.jbc.2025.108291 | 2025 | |
| Nanoparticles and biochar with adsorbed plant growth-promoting rhizobacteria alleviate Fusarium wilt damage on tomato and watermelon. | Pavlicevic M, Elmer W, Zuverza-Mena N, Abdelraheem W, Patel R, Dimkpa C, O'Keefe T, Haynes CL, Pagano L, Caldara M, Marmiroli M, Maestri E, Marmiroli N, White JC. | Plant Physiol Biochem | 10.1016/j.plaphy.2023.108052 | 2023 | ||
| Rnf1 is the primary electron source to nitrogenase in a high-ammonium-accumulating strain of Azotobacter vinelandii. | Barney BM, Plunkett MH. | Appl Microbiol Biotechnol | 10.1007/s00253-022-12059-x | 2022 | ||
| Ancient nitrogenases are ATP dependent. | Harris DF, Rucker HR, Garcia AK, Yang Z-Y, Chang SD, Feinsilber H, Kacar B, Seefeldt LC. | mBio | 10.1128/mbio.01271-24 | 2024 | ||
| A single outer-sphere amino-acid substitution turns on the NO reactivity of a hemerythrin-like protein. | Albert T, Pence N, Zhong F, Pletneva EV, Moenne-Loccoz P. | Chem Sci | 10.1039/d4sc07529c | 2025 | ||
| Light-Driven Ammonia Production by Azotobacter vinelandii Cultured in Medium Containing Colloidal Quantum Dots. | Koh S, Choi Y, Lee I, Kim GM, Kim J, Park YS, Lee SY, Lee DC. | J Am Chem Soc | 10.1021/jacs.2c01886 | 2022 | ||
| A synthetic co-culture for bioproduction of ammonia from methane and air. | Crumbley AM, Garg S, Pan JL, Gonzalez R. | J Ind Microbiol Biotechnol | 10.1093/jimb/kuae044 | 2024 | ||
| The Absence of Phasins PhbP2 and PhbP3 in Azotobacter vinelandii Determines the Growth and Poly-3-hydroxybutyrate Synthesis. | Aguirre-Zapata C, Segura D, Ruiz J, Galindo E, Perez A, Diaz-Barrera A, Pena C. | Polymers (Basel) | 10.3390/polym16202897 | 2024 | ||
| Encapsulation of Azotobacter vinelandii ATCC 12837 in Alginate-Na Beads as a Tomato Seedling Inoculant. | Conde-Avila V, Ortega-Martinez LD, Loera O, Perez-Armendariz B, Martinez Valenzuela C. | Curr Microbiol | 10.1007/s00284-022-02797-6 | 2022 | ||
| Applying LFQRatio Normalization in Quantitative Proteomic Analysis of Microbial Co-culture Systems. | Shi M, Evans CA, McQuillan JL, Noirel J, Pandhal J. | Bio Protoc | 10.21769/bioprotoc.5294 | 2025 | ||
| Correction: Automated Laboratory Growth Assessment and Maintenance of Azotobacter vinelandii. | Carruthers BM, Garcia AK, Rivier A, Kacar B. | Curr Protoc | 10.1002/cpz1.363 | 2022 | ||
| ATP-Independent Turnover of Dinitrogen Intermediates Captured on the Nitrogenase Cofactor. | Lee CC, Stang M, Ribbe MW, Hu Y. | Angew Chem Int Ed Engl | 10.1002/anie.202400273 | 2024 | ||
| Evaluation of a bacterial group 1 LEA protein as an enzyme protectant from stress-induced inactivation. | Raga-Carbajal E, Espin G, Ayala M, Rodriguez-Salazar J, Pardo-Lopez L. | Appl Microbiol Biotechnol | 10.1007/s00253-022-12080-0 | 2022 | ||
| HrgS (Avin_34990), a novel histidine-kinase related to GacS, regulates alginate synthesis in Azotobacter vinelandii. | Lopez-Pliego L, Gonzalez-Acocal V, Garcia-Gonzalez DL, Reyes-Nicolau JI, Sanchez-Cuapio Z, Meneses-Carbajal AS, Fuentes-Ramirez LE, Castaneda M. | FEMS Microbiol Lett | 10.1093/femsle/fnac024 | 2022 | ||
| An Open-Cuboidal [Fe3S4] Cluster Characterized in Both Biologically Relevant Redox States. | Brown AC, Suess DLM. | J Am Chem Soc | 10.1021/jacs.2c13126 | 2023 | ||
| Enzymology | Structural analysis of the reductase component AnfH of iron-only nitrogenase from Azotobacter vinelandii. | Trncik C, Muller T, Franke P, Einsle O. | J Inorg Biochem | 10.1016/j.jinorgbio.2021.111690 | 2022 | |
| Enzymology | Azotobacter vinelandii scaffold protein NifU transfers iron to NifQ as part of the iron-molybdenum cofactor biosynthesis pathway for nitrogenase. | Barahona E, Collantes-Garcia JA, Rosa-Nunez E, Xiong J, Jiang X, Jimenez-Vicente E, Echavarri-Erasun C, Guo Y, Rubio LM, Gonzalez-Guerrero M. | J Biol Chem | 10.1016/j.jbc.2024.107900 | 2024 | |
| Construction of recombinant Escherichia coli producing nitrogenase-related proteins from Azotobacter vinelandii. | Tatemichi Y, Nakahara T, Ueda M, Kuroda K. | Biosci Biotechnol Biochem | 10.1093/bbb/zbab144 | 2021 | ||
| The GacS/A-Rsm Pathway Positively Regulates Motility and Flagella Synthesis in Azotobacter vinelandii. | Lopez-Pliego L, Lara-Flores N, Molina-Romero D, May-Compan G, Carreno-Lopez R, Nunez CE, Castaneda M. | Curr Microbiol | 10.1007/s00284-021-02695-3 | 2021 | ||
| A Homolog of the Histidine Kinase RetS Controls the Synthesis of Alginates, PHB, Alkylresorcinols, and Motility in Azotobacter vinelandii. | Rosales-Cruz A, Reyes-Nicolau J, Minto-Gonzalez E, Meneses-Carbajal A, Mondragon-Albarran C, Lopez-Pliego L, Castaneda M. | Curr Microbiol | 10.1007/s00284-024-03835-1 | 2024 | ||
| Genetics | Comparative genomics reveals the diversity of CRISPR-Cas locus in Azotobacter organisms. | Karmakar K, Kumar S, Roy D, Singh M, Kolte V, Choudhury A, Sharma G. | Lett Appl Microbiol | 10.1093/lambio/ovac004 | 2023 | |
| Enzymology | The flavin transferase ApbE flavinylates the ferredoxin:NAD+-oxidoreductase Rnf required for N2 fixation in Azotobacter vinelandii. | Bertsova YV, Serebryakova MV, Baykov AA, Bogachev AV. | FEMS Microbiol Lett | 10.1093/femsle/fnab130 | 2021 | |
| Toxicity and activity inhibition of metal-organic framework MOF-199 to nitrogen-fixing bacterium Azotobacter vinelandii. | Ouyang B, Liu F, Liang C, Zhang J, Hu R, Yuan H, Hai R, Yuan Y, Wu X, Yang ST. | Sci Total Environ | 10.1016/j.scitotenv.2021.151912 | 2022 | ||
| Nitrogen-Fixing Bacterium GXGL-4A Promotes the Growth of Cucumber Plant Under Nitrogen Stress by Altering the Rhizosphere Microbial Structure | Han Y, Bao Y, Wang E, Zhang Y, Liu B, Chen Y. | Microorganisms | 2025 | |||
| Enzymology | L-Rhamnose Dehydrogenase LraA of Aspergillus niger Shows High Substrate Specificity Matching Its Expression Profile. | Terebieniec A, Xu L, Peng M, Makela MR, Vries RP. | J Fungi (Basel) | 10.3390/jof11040301 | 2025 | |
| Mucilage produced by aerial roots hosts diazotrophs that provide nitrogen in Sorghum bicolor. | Venado RE, Wilker J, Pankievicz VCS, Infante V, MacIntyre A, Wolf ESA, Vela S, Robbins F, Fernandes-Junior PI, Vermerris W, Ane JM. | PLoS Biol | 10.1371/journal.pbio.3003037 | 2025 | ||
| Increases in alginate production and transcription levels of alginate lyase (alyA1) by control of the oxygen transfer rate in Azotobacter vinelandii cultures under diazotrophic conditions | Ponce B, Urtuvia V, Maturana N, Pena C, Diaz-Barrera A. | Electron J Biotechnol | 2021 | |||
| Regulatory response to a hybrid ancestral nitrogenase in Azotobacter vinelandii. | Rivier AJ, Myers KS, Garcia AK, Sobol MS, Kacar B. | Microbiol Spectr | 10.1128/spectrum.02815-23 | 2023 | ||
| Hydroxypyridinones in nitrogen-fixing bacterial cultures: a metal buffer for molybdenum and simulation of natural conditions. | Mohr JF, Gama S, Roy S, Bellenger JP, Plass W, Wichard T. | Metallomics | 10.1093/mtomcs/mfac055 | 2022 | ||
| Analysis of early intermediate states of the nitrogenase reaction by regularization of EPR spectra. | Heidinger L, Perez K, Spatzal T, Einsle O, Weber S, Rees DC, Schleicher E. | Nat Commun | 10.1038/s41467-024-48271-8 | 2024 | ||
| Heterologous synthesis of a simplified nitrogenase analog in Escherichia coli. | Liu YA, Lee CC, Gorecki K, Stiebritz MT, Duffin C, Solomon JB, Ribbe MW, Hu Y. | Sci Adv | 10.1126/sciadv.adw6785 | 2025 | ||
| Enzymology | Positive cooperativity during Azotobacter vinelandii nitrogenase-catalyzed acetylene reduction. | Truscott S, Lewis RS, Watt GD. | Biophys Chem | 10.1016/j.bpc.2021.106650 | 2021 | |
| Automated Laboratory Growth Assessment and Maintenance of Azotobacter vinelandii. | Carruthers BM, Garcia AK, Rivier A, Kacar B. | Curr Protoc | 10.1002/cpz1.57 | 2021 | ||
| Enzymology | Expression, Isolation, and Characterization of Vanadium Nitrogenase from Azotobacter vinelandii. | Parison K, Gies-Elterlein J, Trncik C, Einsle O. | Methods Mol Biol | 10.1007/978-1-0716-1605-5_6 | 2021 | |
| Metabolism | PsrA positively regulates the unsaturated fatty acid synthesis operon fabAB in Azotobacter vinelandii. | Velazquez-Sanchez C, Vences-Guzman MA, Moreno S, Tinoco-Valencia R, Espin G, Guzman J, Sahonero-Canavesi DX, Sohlenkamp C, Segura D. | Microbiol Res | 10.1016/j.micres.2021.126775 | 2021 | |
| Competitive fitness and stability of ammonium-excreting Azotobacter vinelandii strains in the soil. | Ambrosio R, Burgos Herrera G, Do Nascimento M, Pagnussat LA, Curatti L. | Appl Microbiol Biotechnol | 10.1007/s00253-024-13231-1 | 2024 | ||
| Label-free functional analysis of root-associated microbes with dynamic quantitative oblique back-illumination microscopy. | Serafini CE, Green M, Diering A, Cicerone MT, Cheung LS, Kostka JE, Robles FE. | Sci Rep | 10.1038/s41598-024-56443-1 | 2024 | ||
| Heterologous expression of a fully active Azotobacter vinelandii nitrogenase Fe protein in Escherichia coli. | Solomon JB, Liu YA, Gorecki K, Quechol R, Lee CC, Jasniewski AJ, Hu Y, Ribbe MW. | mBio | 10.1128/mbio.02572-23 | 2023 | ||
| Molecular weight and guluronic/mannuronic ratio of alginate produced by Azotobacter vinelandii at two bioreactor scales under diazotrophic conditions. | Diaz-Barrera A, Sanchez-Rosales F, Padilla-Cordova C, Andler R, Pena C. | Bioprocess Biosyst Eng | 10.1007/s00449-021-02532-8 | 2021 | ||
| Respiration in Azotobacter vinelandii and its relationship with the synthesis of biopolymers | Castillo T, Garcia A, Padilla-Cordova C, Diaz-Barrera A, Pena C. | Electron J Biotechnol | 2020 | |||
| A CRISPR interference system for engineering biological nitrogen fixation. | Russell SJ, Garcia AK, Kacar B. | mSystems | 10.1128/msystems.00155-24 | 2024 | ||
| The stringent response regulates the poly-beta-hydroxybutyrate (PHB) synthesis in Azotobacter vinelandii. | Ortiz-Vasco CC, Moreno S, Quintero-Navarro LA, Rojo-Rodriguez JB, Espin G. | PLoS One | 10.1371/journal.pone.0299640 | 2024 | ||
| Iron Homeostasis in Azotobacter vinelandii. | Rosa-Nunez E, Echavarri-Erasun C, Armas AM, Escudero V, Poza-Carrion C, Rubio LM, Gonzalez-Guerrero M. | Biology (Basel) | 10.3390/biology12111423 | 2023 | ||
| Enzymology | Recent Trends in the Production and Recovery of Bioplastics Using Polyhydroxyalkanoates Copolymers. | Garcia A, Aguirre C, Perez A, Bahamonde SS, Urtuvia V, Diaz-Barrera A, Pena C. | Microorganisms | 10.3390/microorganisms12112135 | 2024 | |
| Metabolism | Production of Poly-3-Hydroxybutyrate (P3HB) with Ultra-High Molecular Weight (UHMW) by Mutant Strains of Azotobacter vinelandii Under Microaerophilic Conditions. | Gomez-Hernandez E, Salgado-Lugo H, Segura D, Garcia A, Diaz-Barrera A, Pena C. | Appl Biochem Biotechnol | 10.1007/s12010-020-03384-w | 2021 | |
| Deferred control of ammonium cross-feeding in a N2-fixing bacterium-microalga artificial consortium. | Ambrosio R, Curatti L. | Appl Microbiol Biotechnol | 10.1007/s00253-021-11210-4 | 2021 | ||
| Characterization and diversity of native Azotobacter spp. isolated from semi-arid agroecosystems of Eastern Kenya. | Wakarera PW, Ojola P, Njeru EM. | Biol Lett | 10.1098/rsbl.2021.0612 | 2022 | ||
| The Azotobacter vinelandii AlgU regulon during vegetative growth and encysting conditions: A proteomic approach. | Chowdhury-Paul S, Martinez-Ortiz IC, Pando-Robles V, Moreno S, Espin G, Merino E, Nunez C. | PLoS One | 10.1371/journal.pone.0286440 | 2023 | ||
| Crystal structure of the [2Fe-2S] protein I (Shethna protein I) from Azotobacter vinelandii. | Kabasakal BV, Cotton CAR, Murray JW. | Acta Crystallogr F Struct Biol Commun | 10.1107/s2053230x21009936 | 2021 | ||
| Metabolism | Characterization of a Mo-Nitrogenase Variant Containing a Citrate-Substituted Cofactor. | Liedtke J, Lee CC, Tanifuji K, Jasniewski AJ, Ribbe MW, Hu Y. | Chembiochem | 10.1002/cbic.202000598 | 2021 | |
| Metabolism | Accumulation of poly(3-hydroxybutyrate-co-3-hydroxyvalerate) by Azotobacter vinelandii with different 3HV fraction in shake flasks and bioreactor. | Urtuvia V, Maturana N, Pena C, Diaz-Barrera A. | Bioprocess Biosyst Eng | 10.1007/s00449-020-02340-6 | 2020 | |
| Metabolism | Large anions induce H2-production from the nitrogenase MoFe proteins of Clostridium Pasteurianum and Azotobacter vinelandii. | Wang ZC, Watt GD. | J Inorg Biochem | 10.1016/j.jinorgbio.2020.111075 | 2020 | |
| Metabolic biochemical models of N2 fixation for sulfide oxidizers, methanogens, and methanotrophs. | Gao M, Berberich ME, Brown R, Costello DM, Cotner JB, Damashek J, Kittu LR, Pastor A, Fulweiler RW, Scott JT, Marcarelli AM, Inomura K. | mSystems | 10.1128/msystems.00748-25 | 2025 | ||
| Metabolism | Improving glucose and xylose assimilation in Azotobacter vinelandii by adaptive laboratory evolution. | Millan C, Pena C, Flores C, Espin G, Galindo E, Castillo T. | World J Microbiol Biotechnol | 10.1007/s11274-020-02822-5 | 2020 | |
| Polyoxometalate condensation and transformation mediated by adaptive coordination-assembled molecular flasks. | Cai LX, Hu YH, Zhou LP, Cheng PM, Guo XQ, Chan YT, Sun QF. | Chem Sci | 10.1039/d4sc08729a | 2025 | ||
| Structural and Kinetic Properties of Liver Rhodanese from Coptodon zillii: Implications for Cyanide Detoxification in Gold Mining-Impacted Aquatic Ecosystems. | Agboola OE, Ayinla ZA, Itakorode BO, Akinsanya PO, Okonji RE, Odeghe OB, Agboola SS, Oluranti OE, Olojo FO, Oyinloye BE. | Toxics | 10.3390/toxics13090750 | 2025 | ||
| Enzymology | Iron-molybdenum cofactor synthesis by a thermophilic nitrogenase devoid of the scaffold NifEN. | Paya-Tormo L, Echavarri-Erasun C, Makarovsky-Saavedra N, Perez-Gonzalez A, Yang ZY, Guo Y, Seefeldt LC, Rubio LM. | Proc Natl Acad Sci U S A | 10.1073/pnas.2406198121 | 2024 | |
| Enzymology | Revealing a role for the G subunit in mediating interactions between the nitrogenase component proteins. | Pence N, Lewis N, Alleman AB, Seefeldt LC, Peters JW. | J Inorg Biochem | 10.1016/j.jinorgbio.2020.111273 | 2021 | |
| Pathogenicity | Chelate chemistry governs ion-specific stiffening of Bacillus subtilis B-1 and Azotobacter vinelandii biofilms. | Kretschmer M, Lieleg O. | Biomater Sci | 10.1039/c9bm01763a | 2020 | |
| Metabolism | Rnf and Fix Have Specific Roles during Aerobic Nitrogen Fixation in Azotobacter vinelandii. | Alleman AB, Garcia Costas A, Mus F, Peters JW. | Appl Environ Microbiol | 10.1128/aem.01049-22 | 2022 | |
| Enzymology | Expression and Characterization of Monomeric Recombinant Isocitrate Dehydrogenases from Corynebacterium glutamicum and Azotobacter vinelandii for NADPH Regeneration. | Lee HD, Yoo SK, Yoo HS, Yun CH, Kim GJ. | Int J Mol Sci | 10.3390/ijms232315318 | 2022 | |
| A specialized bacterial group II intron is a highly efficient retrotransposon. | Gomes L, Toffano-Nioche C, Gautheret D, Costa M. | Mob DNA | 10.1186/s13100-025-00380-x | 2025 | ||
| Enzymology | Effects of the substituted amino acid residues on the thermal properties of monomeric isocitrate dehydrogenases from a psychrophilic bacterium, Psychromonas marina, and a mesophilic bacterium, Azotobacter vinelandii. | Tsubouchi K, Takada Y. | Extremophiles | 10.1007/s00792-019-01137-0 | 2019 | |
| Genetic Regulation of Alginate Production in Azotobacter vinelandii a Bacterium of Biotechnological Interest: A Mini-Review. | Nunez C, Lopez-Pliego L, Ahumada-Manuel CL, Castaneda M. | Front Microbiol | 10.3389/fmicb.2022.845473 | 2022 | ||
| Measurement of the nuclear concentration of alpha-ketoglutarate during adipocyte differentiation by using a fluorescence resonance energy transfer-based biosensor with nuclear localization signals. | Suzuki T, Hayashi M, Komatsu T, Tanioka A, Nagasawa M, Tanimura-Inagaki K, Rahman MS, Masuda S, Yusa K, Sakai J, Shibata H, Inagaki T. | Endocr J | 10.1507/endocrj.ej21-0255 | 2021 | ||
| Preparation of oxygen-sensitive proteins for high-resolution cryoEM structure determination using blot-free vitrification. | Cook BD, Narehood SM, McGuire KL, Li Y, Akif Tezcan F, Herzik MA. | Nat Commun | 10.1038/s41467-025-58243-1 | 2025 | ||
| Metabolism | Outer membrane protein I is associated with poly-beta-hydroxybutyrate granules and is necessary for optimal polymer accumulation in Azotobacter vinelandii on solid medium. | Moreno S, Castellanos M, Bedoya-Perez LP, Canales-Herrerias P, Espin G, Muriel-Millan LF. | Microbiology (Reading) | 10.1099/mic.0.000837 | 2019 | |
| Metabolism | Heterologous Expression and Engineering of the Nitrogenase Cofactor Biosynthesis Scaffold NifEN. | Solomon JB, Lee CC, Jasniewski AJ, Rasekh MF, Ribbe MW, Hu Y. | Angew Chem Int Ed Engl | 10.1002/anie.201916598 | 2020 | |
| Pathogenicity | Transfer of Nitrogen Fixation (nif) Genes to Non-diazotrophic Hosts. | Li Q, Chen S. | Chembiochem | 10.1002/cbic.201900784 | 2020 | |
| Enzymology | Azotobacter vinelandii helps to combat chromium stress in rice by maintaining antioxidant machinery. | Sahoo RK, Rani V, Tuteja N. | 3 Biotech | 10.1007/s13205-021-02835-3 | 2021 | |
| Biotechnology | Nano-Biotechnology in Soil Remediation: Use of Nanomaterials to Promote Plant Growth and Stress Tolerance. | Chen X, Wang S, Lai H, Deng L, Zhong Q, Okoye CO, Niu Q, Jing Y, Wang J, Jiang J. | Nanomaterials (Basel) | 10.3390/nano15221743 | 2025 | |
| Metabolism | Electrochemical Characterization of Isolated Nitrogenase Cofactors from Azotobacter vinelandii. | Lydon BR, Lee CC, Tanifuji K, Sickerman NS, Newcomb MP, Hu Y, Ribbe MW, Yang JY. | Chembiochem | 10.1002/cbic.201900425 | 2020 | |
| Genetics | Evolution of bacteria seen through their essential genes: the case of Pseudomonas aeruginosa and Azotobacter vinelandii. | Martinez-Carranza E, Ponce-Soto GY, Servin-Gonzalez L, Alcaraz LD, Soberon-Chavez G. | Microbiology (Reading) | 10.1099/mic.0.000833 | 2019 | |
| Quantification of biological nitrogen fixation by Mo-independent complementary nitrogenases in environmental samples with low nitrogen fixation activity. | Haynes SJ, Darnajoux R, Han E, Oleynik S, Zimble E, Zhang X. | Sci Rep | 10.1038/s41598-022-24860-9 | 2022 | ||
| Structural and Functional Characterization of the Globin-Coupled Sensors of Azotobacter vinelandii and Bordetella pertussis. | Germani F, Nardini M, De Schutter A, Cuypers B, Berghmans H, Van Hauwaert ML, Bruno S, Mozzarelli A, Moens L, Van Doorslaer S, Bolognesi M, Pesce A, Dewilde S. | Antioxid Redox Signal | 10.1089/ars.2018.7690 | 2020 | ||
| Engineering Nitrogenases for Synthetic Nitrogen Fixation: From Pathway Engineering to Directed Evolution. | Bennett EM, Murray JW, Isalan M. | Biodes Res | 10.34133/bdr.0005 | 2023 | ||
| Metabolism | Study of the sRNA RsmY involved in the genetic regulation of the synthesis of alginate and alkyl resorcinols in Azotobacter vinelandii. | Lopez-Pliego L, Mena-Munoz G, Teran-Melo JL, Fuentes LE, Nunez CE, Castaneda M. | Arch Microbiol | 10.1007/s00203-019-01769-y | 2020 | |
| Pathogenicity | Silver Nanoparticles Induced Cell Apoptosis, Membrane Damage of Azotobacter vinelandii and Nitrosomonas europaea via Generation of Reactive Oxygen Species. | Zhang L, Wu L, Mi Y, Si Y. | Bull Environ Contam Toxicol | 10.1007/s00128-019-02622-0 | 2019 | |
| Enzymology | Aerobic nitrogen-fixing bacteria for hydrogen and ammonium production: current state and perspectives. | Barney BM. | Appl Microbiol Biotechnol | 10.1007/s00253-019-10210-9 | 2020 | |
| Oxygen-tolerant nitrogen fixation in a marine alga-colonizing Planctomycetota. | Zhang Z, Wang Z, Teng P, Yu T, Zhang Y. | Appl Environ Microbiol | 10.1128/aem.01316-25 | 2025 | ||
| Anaerobic cryoEM protocols for air-sensitive nitrogenase proteins. | Warmack RA, Wenke BB, Spatzal T, Rees DC. | Nat Protoc | 10.1038/s41596-024-00973-5 | 2024 | ||
| Phenotype | Genomic Manipulations of the Diazotroph Azotobacter vinelandii. | Dos Santos PC. | Methods Mol Biol | 10.1007/978-1-4939-8864-8_6 | 2019 | |
| Genetics | Synthetic Biology Toolbox for Nitrogen-Fixing Soil Microbes. | Venkataraman M, Ynigez-Gutierrez A, Infante V, MacIntyre A, Fernandes-Junior PI, Ane JM, Pfleger B. | ACS Synth Biol | 10.1021/acssynbio.3c00414 | 2023 | |
| Direct production of polyhydroxybutyrate and alginate from crude glycerol by Azotobacter vinelandii using atmospheric nitrogen. | Yoshida N, Takase R, Sugahara Y, Nambu Y, Hashimoto W. | Sci Rep | 10.1038/s41598-022-11728-1 | 2022 | ||
| Mode of Action of AlgE1: A Modular Mannuronate C-5 Epimerase. | Petersen AB, Solem A, Saetrom GI, Sletta H, Czjzek M, Aachmann FL, Tondervik A. | Biochemistry | 10.1021/acs.biochem.5c00156 | 2025 | ||
| Pathogenicity | In vitro investigation to explore the toxicity of different groups of pesticides for an agronomically important rhizosphere isolate Azotobacter vinelandii. | Shahid M, Zaidi A, Ehtram A, Khan MS. | Pestic Biochem Physiol | 10.1016/j.pestbp.2019.03.006 | 2019 | |
| Metabolism | Structural and Mechanistic Insights into CO2 Activation by Nitrogenase Iron Protein. | Rettberg LA, Stiebritz MT, Kang W, Lee CC, Ribbe MW, Hu Y. | Chemistry | 10.1002/chem.201903387 | 2019 | |
| Impact of Sustainable Soil Cropping Management on the Production and Stability of Bioactive Compounds in Tanacetum balsamita L. by Cold Pressure Extraction. | Bonetti A, Grattacaso M, Lonardo SD, D'Acqui LP. | Plants (Basel) | 10.3390/plants14060948 | 2025 | ||
| Computational modeling of the molecular basis for the calcium-dependence of the mannuronan C-5 epimerase AvAlgE6 from Azotobacter vinelandii. | Gaardlos M, Lervik A, Samsonov SA. | Comput Struct Biotechnol J | 10.1016/j.csbj.2023.03.021 | 2023 | ||
| Metabolism | Biosynthesis and Function of Long Guluronic Acid-Blocks in Alginate Produced by Azotobacter vinelandii. | Aarstad OA, Stanisci A, Saetrom GI, Tondervik A, Sletta H, Aachmann FL, Skjak-Braek G. | Biomacromolecules | 10.1021/acs.biomac.8b01796 | 2019 | |
| Conformational protection of molybdenum nitrogenase by Shethna protein II. | Franke P, Freiberger S, Zhang L, Einsle O. | Nature | 10.1038/s41586-024-08355-3 | 2025 | ||
| Metabolism | Poly(3-hydroxybutyrate) accumulation by Azotobacter vinelandii under different oxygen transfer strategies. | Diaz-Barrera A, Urtuvia V, Padilla-Cordova C, Pena C. | J Ind Microbiol Biotechnol | 10.1007/s10295-018-2090-9 | 2019 | |
| Early Nitrogenase Ancestors Encompassed Novel Active Site Diversity. | Schwartz SL, Garcia AK, Kacar B, Fournier GP. | Mol Biol Evol | 10.1093/molbev/msac226 | 2022 | ||
| Investigation of the Cyanothece nitrogenase cluster in Synechocystis: a blueprint for engineering nitrogen-fixing photoautotrophs. | Liu D, Bandyopadhyay A, Liberton M, Pakrasi HB, Bhattacharyya-Pakrasi M. | mBio | 10.1128/mbio.04052-24 | 2025 | ||
| Enzymology | The RNF/NQR redox pumps: a versatile system for energy transduction in bacteria and archaea. | Buckel W, Ermler U, Vonck J, Fritz G, Steuber J. | Appl Microbiol Biotechnol | 10.1007/s00253-025-13531-0 | 2025 | |
| AnfO controls fidelity of nitrogenase FeFe protein maturation by preventing misincorporation of FeV-cofactor. | Perez-Gonzalez A, Jimenez-Vicente E, Salinero-Lanzarote A, Harris DF, Seefeldt LC, Dean DR. | Mol Microbiol | 10.1111/mmi.14890 | 2022 | ||
| Enzymology | Application of affinity purification methods for analysis of the nitrogenase system from Azotobacter vinelandii. | Jimenez-Vicente E, Martin Del Campo JS, Yang ZY, Cash VL, Dean DR, Seefeldt LC. | Methods Enzymol | 10.1016/bs.mie.2018.10.007 | 2018 | |
| Fe protein docking transduces conformational changes to MoFe nitrogenase active site in a nucleotide-dependent manner. | Tokmina-Lukaszewska M, Huang Q, Berry L, Kallas H, Peters JW, Seefeldt LC, Raugei S, Bothner B. | Commun Chem | 10.1038/s42004-023-01046-6 | 2023 | ||
| Extended batch cultures for poly(3-hydroxybutyrate-co-3-hydroxyvalerate) (PHBV) production by Azotobacter vinelandii OP growing at different aeration rates. | Urtuvia V, Ponce B, Andler R, Pena C, Diaz-Barrera A. | 3 Biotech | 10.1007/s13205-022-03380-3 | 2022 | ||
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| Enzymology | Insights into Asparaginase from Endophytic Fungus Lasiodiplodia theobromae: Purification, Characterization and Antileukemic Activity. | Moubasher HA, Balbool BA, Helmy YA, Alsuhaibani AM, Atta AA, Sheir DH, Abdel-Azeem AM. | Int J Environ Res Public Health | 10.3390/ijerph19020680 | 2022 | |
| Metabolism | Enhanced production and partial characterization of an extracellular polysaccharide from newly isolated Azotobacter sp. SSB81. | Gauri SS, Mandal SM, Mondal KC, Dey S, Pati BR. | Bioresour Technol | 10.1016/j.biortech.2009.03.064 | 2009 | |
| Specialized lineages of bacterial group II introns. | Michel F, Costa M, Doucet AJ, Ferat JL. | Biochimie | 10.1016/j.biochi.2007.01.017 | 2007 | ||
| Small RNAs beyond Model Organisms: Have We Only Scratched the Surface? | Boutet E, Djerroud S, Perreault J. | Int J Mol Sci | 10.3390/ijms23084448 | 2022 | ||
| Multiplicity of Quorum Quenching Enzymes: A Potential Mechanism to Limit Quorum Sensing Bacterial Population. | Koul S, Kalia VC. | Indian J Microbiol | 10.1007/s12088-016-0633-1 | 2017 | ||
| Metabolism | Glucose uptake in Azotobacter vinelandii occurs through a GluP transporter that is under the control of the CbrA/CbrB and Hfq-Crc systems. | Quiroz-Rocha E, Moreno R, Hernandez-Ortiz A, Fragoso-Jimenez JC, Muriel-Millan LF, Guzman J, Espin G, Rojo F, Nunez C. | Sci Rep | 10.1038/s41598-017-00980-5 | 2017 | |
| The heat shock protein 20 gene editing suppresses mycelial growth of Botryosphaeria dothidea and decreases its pathogenicity to postharvest apple fruits. | Huang Y, Liu J, Li J, Sun M, Duan Y. | Front Microbiol | 10.3389/fmicb.2022.930012 | 2022 | ||
| Characterization of the Membrane-Associated Electron-Bifurcating Flavoenzyme EtfABCX from the Hyperthermophilic Bacterium Thermotoga maritima. | Ge X, Schut GJ, Tran J, Poole Ii FL, Niks D, Menjivar K, Hille R, Adams MWW. | Biochemistry | 10.1021/acs.biochem.3c00473 | 2023 | ||
| Metabolism | Spectroscopic Characterization of an Eight-Iron Nitrogenase Cofactor Precursor that Lacks the "9th Sulfur". | Jasniewski AJ, Wilcoxen J, Tanifuji K, Hedman B, Hodgson KO, Britt RD, Hu Y, Ribbe MW. | Angew Chem Int Ed Engl | 10.1002/anie.201907593 | 2019 | |
| A singular PpaA/AerR-like protein in Rhodospirillum rubrum rules beyond the boundaries of photosynthesis in response to the intracellular redox state. | Godoy MS, de Miguel SR, Prieto MA. | mSystems | 10.1128/msystems.00702-23 | 2023 | ||
| Metabolism | Role of the siderophore azotobactin in the bacterial acquisition of nitrogenase metal cofactors. | Wichard T, Bellenger JP, Morel FM, Kraepiel AM. | Environ Sci Technol | 10.1021/es8037214 | 2009 | |
| Maize Growth Promotion by Inoculation with an Engineered Ammonium-Excreting Strain of Nitrogen-Fixing Pseudomonasstutzeri. | Jiang S, Li J, Wang Q, Yin C, Zhan Y, Yan Y, Lin M, Ke X. | Microorganisms | 10.3390/microorganisms10101986 | 2022 | ||
| Enzymology | Variable-temperature, variable-field magnetic circular dichroism spectroscopic study of the metal clusters in the DeltanifB and DeltanifH mofe proteins of nitrogenase from Azotobacter vinelandii. | Broach RB, Rupnik K, Hu Y, Fay AW, Cotton M, Ribbe MW, Hales BJ. | Biochemistry | 10.1021/bi061697p | 2006 | |
| Megalochelin, a Tridecapeptide Siderophore from a Talented Streptomycete. | Vind K, Brunati C, Simone M, Sosio M, Donadio S, Iorio M. | ACS Chem Biol | 10.1021/acschembio.2c00958 | 2023 | ||
| Gold and silver nanoparticles: Green synthesis, microbes, mechanism, factors, plant disease management and environmental risks. | Al-Khattaf FS. | Saudi J Biol Sci | 10.1016/j.sjbs.2021.03.078 | 2021 | ||
| Protection of nitrogenase from photosynthetic O2 evolution in Trichodesmium: methodological pitfalls and advances over 30 years of research. | Hania A, Lopez-Adams R, PrasIl O, Eichner M. | Photosynthetica | 10.32615/ps.2023.007 | 2023 | ||
| Enzymology | Crystal Structure of the Isocitrate Dehydrogenase 2 from Acinetobacter baumannii (AbIDH2) Reveals a Novel Dimeric Structure with Two Monomeric-IDH-Like Subunits. | Wang P, Wu Y, Liu J, Song P, Li S, Zhou X, Zhu G. | Int J Mol Sci | 10.3390/ijms19041131 | 2018 | |
| Metabolism | Redox-dependent structural changes in the Azotobacter vinelandii bacterioferritin: new insights into the ferroxidase and iron transport mechanism. | Swartz L, Kuchinskas M, Li H, Poulos TL, Lanzilotta WN. | Biochemistry | 10.1021/bi060146w | 2006 | |
| Proteome | Topological switching between an alpha-beta parallel protein and a remarkably helical molten globule. | Nabuurs SM, Westphal AH, aan den Toorn M, Lindhoud S, van Mierlo CP. | J Am Chem Soc | 10.1021/ja9014309 | 2009 | |
| Electron exchange between Fe(II)-horse spleen ferritin and Co(III)/Mn(III) reconstituted horse spleen and Azotobacter vinelandii ferritins. | Zhang B, Harb JN, Davis RC, Choi S, Kim JW, Miller T, Chu SH, Watt GD. | Biochemistry | 10.1021/bi060164d | 2006 | ||
| Metabolism | NifU and NifS are required for the maturation of nitrogenase and cannot replace the function of isc-gene products in Azotobacter vinelandii. | Johnson DC, Dos Santos PC, Dean DR. | Biochem Soc Trans | 10.1042/bst0330090 | 2005 | |
| Metabolism | The fatty acid profile of vegetative Azotobacter vinelandii ATCC 12837: growth phase-dependence. | Larsen A, Sliskovic I, Juric D, Pinnock CL, Kullman H, Segstro E, Reinfelds G, Eze MO. | Appl Microbiol Biotechnol | 10.1007/s00253-005-1908-3 | 2005 | |
| Metabolism | Characterization of a globin-coupled oxygen sensor with a gene-regulating function. | Thijs L, Vinck E, Bolli A, Trandafir F, Wan X, Hoogewijs D, Coletta M, Fago A, Weber RE, Van Doorslaer S, Ascenzi P, Alam M, Moens L, Dewilde S. | J Biol Chem | 10.1074/jbc.m705541200 | 2007 | |
| Enzymology | The "Gln-Type" Thiol Dioxygenase from Azotobacter vinelandii is a 3-Mercaptopropionic Acid Dioxygenase. | Pierce BS, Subedi BP, Sardar S, Crowell JK. | Biochemistry | 10.1021/acs.biochem.5b00636 | 2015 | |
| Metabolism | Nitric oxide reacts with the ferryl-oxo catalytic intermediate of the CuB-lacking cytochrome bd terminal oxidase. | Borisov VB, Forte E, Sarti P, Brunori M, Konstantinov AA, Giuffre A. | FEBS Lett | 10.1016/j.febslet.2006.07.072 | 2006 | |
| Using an environmentally-relevant panel of Gram-negative bacteria to assess the toxicity of polyallylamine hydrochloride-wrapped gold nanoparticles. | Buchman JT, Rahnamoun A, Landy KM, Zhang X, Vartanian AM, Jacob LM, Murphy CJ, Hernandez R, Haynes CL. | Environ Sci Nano | 10.1039/c7en00832e | 2018 | ||
| Differential accumulation of nif structural gene mRNA in Azotobacter vinelandii. | Hamilton TL, Jacobson M, Ludwig M, Boyd ES, Bryant DA, Dean DR, Peters JW. | J Bacteriol | 10.1128/jb.05100-11 | 2011 | ||
| Safety in numbers: multiple occurrences of highly similar homologs among Azotobacter vinelandii carbohydrate metabolism proteins probably confer adaptive benefits. | Maerk M, Johansen J, Ertesvag H, Drablos F, Valla S. | BMC Genomics | 10.1186/1471-2164-15-192 | 2014 | ||
| Enzymology | NMR structure of the R-module: a parallel beta-roll subunit from an Azotobacter vinelandii mannuronan C-5 epimerase. | Aachmann FL, Svanem BI, Guntert P, Petersen SB, Valla S, Wimmer R. | J Biol Chem | 10.1074/jbc.m510069200 | 2006 | |
| Metabolism | Growth of Azotobacter vinelandii in a solid-state fermentation of technical lignin. | Zhang X, Zhao H, Zhang J, Li Z. | Bioresour Technol | 10.1016/j.biortech.2003.10.011 | 2004 | |
| Enzymology | NAD-, NMN-, and NADP-dependent modification of dinitrogenase reductases from Rhodospirillum rubrum and Azotobacter vinelandii. | Ponnuraj RK, Rubio LM, Grunwald SK, Ludden PW. | FEBS Lett | 10.1016/j.febslet.2005.09.057 | 2005 | |
| Effect of some herbicides used in Nigeria on Rhizobium phaseoli, Azotobacter vinelandii and Bacillus subtilis. | Adeleye IA, Okorodudu E, Lawal O. | J Environ Biol | 2004 | |||
| Purification and Characterization of a Novel Alginate Lyase from a Marine Streptomyces Species Isolated from Seaweed. | Nguyen TNT, Chataway T, Araujo R, Puri M, Franco CMM. | Mar Drugs | 10.3390/md19110590 | 2021 | ||
| Stimulation of Surface Polysaccharide Production under Aerobic Conditions Confers Aerotolerance in Campylobacter jejuni. | Kim J, Park M, Ahn E, Mao Q, Chen C, Ryu S, Jeon B. | Microbiol Spectr | 10.1128/spectrum.03761-22 | 2023 | ||
| Low cost, microcontroller based heating device for multi-wavelength differential scanning fluorimetry. | Hoeser J, Gnandt E, Friedrich T. | Sci Rep | 10.1038/s41598-018-19702-6 | 2018 | ||
| Metabolism | Discovery of the true peroxy intermediate in the catalytic cycle of terminal oxidases by real-time measurement. | Belevich I, Borisov VB, Verkhovsky MI. | J Biol Chem | 10.1074/jbc.m705562200 | 2007 | |
| Metabolism | Disrupting hierarchical control of nitrogen fixation enables carbon-dependent regulation of ammonia excretion in soil diazotrophs. | Bueno Batista M, Brett P, Appia-Ayme C, Wang YP, Dixon R. | PLoS Genet | 10.1371/journal.pgen.1009617 | 2021 | |
| Metabolism | Association with an ammonium-excreting bacterium allows diazotrophic culture of oil-rich eukaryotic microalgae. | Ortiz-Marquez JC, Do Nascimento M, Dublan Mde L, Curatti L. | Appl Environ Microbiol | 10.1128/aem.06260-11 | 2012 | |
| Metabolism | Model-based optimization of biosurfactant production in fed-batch culture Azotobacter vinelandii. | Levisauskas D, Galvanauskas V, Zunda G, Grigiskis S. | Biotechnol Lett | 10.1023/b:bile.0000035486.81463.b4 | 2004 | |
| Enzymology | A directed genome evolution method to enhance hydrogen production in Rhodobacter capsulatus. | Barahona E, Isidro ES, Sierra-Heras L, Alvarez-Melcon I, Jimenez-Vicente E, Buesa JM, Imperial J, Rubio LM. | Front Microbiol | 10.3389/fmicb.2022.991123 | 2022 | |
| Metabolism | Role of the H domain of the histidine kinase-like protein NifL in signal transmission. | Little R, Martinez-Argudo I, Perry S, Dixon R. | J Biol Chem | 10.1074/jbc.m610827200 | 2007 | |
| Enzymology | Determining the oxidation state of elements by X-ray crystallography. | Lennartz F, Jeoung JH, Ruenger S, Dobbek H, Weiss MS. | Acta Crystallogr D Struct Biol | 10.1107/s2059798321013048 | 2022 | |
| Metabolism | Iron Homeostasis in Bacillus subtilis Requires Siderophore Production and Biofilm Formation. | Rizzi A, Roy S, Bellenger JP, Beauregard PB. | Appl Environ Microbiol | 10.1128/aem.02439-18 | 2019 | |
| Production of amino acids by Azotobacter vinelandii and Azotobacter chroococcum with phenolic compounds as sole carbon source under diazotrophic and adiazotrophic conditions. | Revillas JJ, Rodelas B, Pozo C, Martinez-Toledo MV, Lopez JG. | Amino Acids | 10.1007/s00726-004-0153-x | 2005 | ||
| Flavodoxin relaxes in microseconds upon excitation of the flavin chromophore: detection of a UV-visible silent intermediate by laser photocalorimetry. | Martinez-Junza V, Rizzi AC, Alagaratnam S, Bell TD, Canters GW, Braslavsky SE. | Photochem Photobiol | 10.1111/j.1751-1097.2008.00402.x | 2009 | ||
| Promotion of Nitrogen Fixation of Diverse Heterotrophs by Solid-Phase Humin. | Dey S, Kasai T, Katayama A. | Front Microbiol | 10.3389/fmicb.2022.853411 | 2022 | ||
| Metabolism | Utilization of the metal-cyano complex tetracyanonickelate (II) by Azotobacter vinelandii. | Kao CM, Li SH, Chen YL, Chen SC. | Lett Appl Microbiol | 10.1111/j.1472-765x.2005.01731.x | 2005 | |
| Enzymology | Functional NifD-K fusion protein in Azotobacter vinelandii is a homodimeric complex equivalent to the native heterotetrameric MoFe protein. | Lahiri S, Pulakat L, Gavini N. | Biochem Biophys Res Commun | 10.1016/j.bbrc.2005.09.105 | 2005 | |
| Genetics | Analysis of the genome of Azotobacter vinelandii revealed the presence of two genetically distinct group II introns on the chromosome. | Kosaraju P, Pulakat L, Gavini N. | Genetica | 10.1007/s10709-004-2923-5 | 2005 | |
| Metabolism | The cysteine-desulfurase IscS promotes the production of the rhodanese RhdA in the persulfurated form. | Forlani F, Cereda A, Freuer A, Nimtz M, Leimkuhler S, Pagani S. | FEBS Lett | 10.1016/j.febslet.2005.11.013 | 2005 | |
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| X-Ray Crystallographic Analysis of NifB with a Full Complement of Clusters: Structural Insights into the Radical SAM-Dependent Carbide Insertion During Nitrogenase Cofactor Assembly. | Kang W, Rettberg LA, Stiebritz MT, Jasniewski AJ, Tanifuji K, Lee CC, Ribbe MW, Hu Y. | Angew Chem Int Ed Engl | 10.1002/anie.202011367 | 2021 | ||
| Metabolism | Biosynthesis of the nitrogenase active-site cofactor precursor NifB-co in Saccharomyces cerevisiae. | Buren S, Pratt K, Jiang X, Guo Y, Jimenez-Vicente E, Echavarri-Erasun C, Dean DR, Saaem I, Gordon DB, Voigt CA, Rubio LM. | Proc Natl Acad Sci U S A | 10.1073/pnas.1904903116 | 2019 | |
| Metabolism | Functional participation of a nifH-arsA2 chimeric fusion gene in arsenic reduction by Escherichia coli. | Lahiri S, Pulakat L, Gavini N. | Biochem Biophys Res Commun | 10.1016/j.bbrc.2008.01.086 | 2008 | |
| Metabolism | Role of conserved cysteine residues in Herbaspirillum seropedicae NifA activity. | Oliveira MA, Baura VA, Aquino B, Huergo LF, Kadowaki MA, Chubatsu LS, Souza EM, Dixon R, Pedrosa FO, Wassem R, Monteiro RA. | Res Microbiol | 10.1016/j.resmic.2009.06.002 | 2009 | |
| Metabolism | NifX and NifEN exchange NifB cofactor and the VK-cluster, a newly isolated intermediate of the iron-molybdenum cofactor biosynthetic pathway. | Hernandez JA, Igarashi RY, Soboh B, Curatti L, Dean DR, Ludden PW, Rubio LM. | Mol Microbiol | 10.1111/j.1365-2958.2006.05514.x | 2007 | |
| Metabolism | Mechanism of Nitrogenase H2 Formation by Metal-Hydride Protonation Probed by Mediated Electrocatalysis and H/D Isotope Effects. | Khadka N, Milton RD, Shaw S, Lukoyanov D, Dean DR, Minteer SD, Raugei S, Hoffman BM, Seefeldt LC. | J Am Chem Soc | 10.1021/jacs.7b07311 | 2017 | |
| 2.6 A resolution crystal structure of the bacterioferritin from Azotobacter vinelandii. | Liu HL, Zhou HN, Xing WM, Zhao JF, Li SX, Huang JF, Bi RC. | FEBS Lett | 10.1016/j.febslet.2004.07.054 | 2004 | ||
| Enzymology | Klebsiella phage KP34gp57 capsular depolymerase structure and function: from a serendipitous finding to the design of active mini-enzymes against K. pneumoniae. | Maciejewska B, Squeglia F, Latka A, Privitera M, Olejniczak S, Switala P, Ruggiero A, Marasco D, Kramarska E, Drulis-Kawa Z, Berisio R. | mBio | 10.1128/mbio.01329-23 | 2023 | |
| [Voltamperometric study of adsorbed ferredoxin from Azotobacter vinelandii]. | Kliuchev SA. | Biofizika | 2003 | |||
| Metabolism | A new type of metalloprotein: The Mo storage protein from azotobacter vinelandii contains a polynuclear molybdenum-oxide cluster. | Fenske D, Gnida M, Schneider K, Meyer-Klaucke W, Schemberg J, Henschel V, Meyer AK, Knochel A, Muller A. | Chembiochem | 10.1002/cbic.200400263 | 2005 | |
| Inhalable Polymeric Nanoparticles for Pulmonary Delivery of Antimicrobial Peptide SET-M33: Antibacterial Activity and Toxicity In Vitro and In Vivo. | Cresti L, Conte G, Cappello G, Brunetti J, Falciani C, Bracci L, Quaglia F, Ungaro F, d'Angelo I, Pini A. | Pharmaceutics | 10.3390/pharmaceutics15010003 | 2022 | ||
| Enzymology | The N-terminal rhodanese domain from Azotobacter vinelandii has a stable and folded structure independently of the C-terminal domain. | Melino S, Cicero DO, Forlani F, Pagani S, Paci M. | FEBS Lett | 10.1016/j.febslet.2004.10.035 | 2004 | |
| Disruption of the dimerization interface of the sensing domain in the dimeric heme-based oxygen sensor AfGcHK abolishes bacterial signal transduction. | Skalova T, Lengalova A, Dohnalek J, Harlos K, Mihalcin P, Kolenko P, Stranava M, Blaha J, Shimizu T, Martinkova M. | J Biol Chem | 10.1074/jbc.ra119.011574 | 2020 | ||
| Metabolism | Characterization of a modified nitrogenase Fe protein from Klebsiella pneumoniae in which the 4Fe4S cluster has been replaced by a 4Fe4Se cluster. | Hallenbeck PC, George GN, Prince RC, Thorneley RN. | J Biol Inorg Chem | 10.1007/s00775-009-0480-1 | 2009 | |
| Metabolism | Catalysis-dependent selenium incorporation and migration in the nitrogenase active site iron-molybdenum cofactor. | Spatzal T, Perez KA, Howard JB, Rees DC. | Elife | 10.7554/elife.11620 | 2015 | |
| Complexation of oxoanions and cationic metals by the biscatecholate siderophore azotochelin. | Bellenger JP, Arnaud-Neu F, Asfari Z, Myneni SC, Stiefel EI, Kraepiel AM. | J Biol Inorg Chem | 10.1007/s00775-006-0194-6 | 2007 | ||
| Metabolism | Characterization of chimeric isocitrate dehydrogenases of a mesophilic nitrogen-fixing bacterium, Azotobacter vinelandii, and a psychrophilic bacterium, Colwellia maris. | Yoneta M, Sahara T, Nitta K, Takada Y. | Curr Microbiol | 10.1007/s00284-003-4203-5 | 2004 | |
| Metabolism | Gene Deletions Resulting in Increased Nitrogen Release by Azotobacter vinelandii: Application of a Novel Nitrogen Biosensor. | Barney BM, Eberhart LJ, Ohlert JM, Knutson CM, Plunkett MH. | Appl Environ Microbiol | 10.1128/aem.00554-15 | 2015 | |
| Metabolism | Evaluation of PCR primers for universal nifH gene targeting and for assessment of transcribed nifH pools in roots of Oryza longistaminata with and without low nitrogen input. | Demba Diallo M, Reinhold-Hurek B, Hurek T. | FEMS Microbiol Ecol | 10.1111/j.1574-6941.2008.00545.x | 2008 | |
| An alternative path for the evolution of biological nitrogen fixation. | Boyd ES, Hamilton TL, Peters JW. | Front Microbiol | 10.3389/fmicb.2011.00205 | 2011 | ||
| Metabolism | Inactivation of pycA, encoding pyruvate carboxylase activity, increases poly-beta-hydroxybutyrate accumulation in Azotobacter vinelandii on solid medium. | Segura D, Espin G. | Appl Microbiol Biotechnol | 10.1007/s00253-004-1611-9 | 2004 | |
| Biological Synthesis of Silver Nanoparticles and Prospects in Plant Disease Management. | Tariq M, Mohammad KN, Ahmed B, Siddiqui MA, Lee J. | Molecules | 10.3390/molecules27154754 | 2022 | ||
| Metabolically versatile psychrotolerant Antarctic bacterium Pseudomonas sp. ANT_H12B is an efficient producer of siderophores and accompanying metabolites (SAM) useful for agricultural purposes. | Musialowski M, Kowalewska L, Stasiuk R, Krucon T, Debiec-Andrzejewska K. | Microb Cell Fact | 10.1186/s12934-023-02105-2 | 2023 | ||
| Mechanistic significance of the preparatory migration of hydrogen atoms around the FeMo-co active site of nitrogenase. | Dance I. | Biochemistry | 10.1021/bi052217h | 2006 | ||
| Alginate production by Pseudomonas mendocina in a stirred draft fermenter | Muller JM, Monte Alegre R. | World J Microbiol Biotechnol | 10.1007/s11274-006-9285-3 | 2007 | ||
| Metabolism | Kinetic studies of iron deposition catalyzed by recombinant human liver heavy and light ferritins and Azotobacter vinelandii bacterioferritin using O2 and H2O2 as oxidants. | Bunker J, Lowry T, Davis G, Zhang B, Brosnahan D, Lindsay S, Costen R, Choi S, Arosio P, Watt GD. | Biophys Chem | 10.1016/j.bpc.2004.11.008 | 2005 | |
| Biological nitrogen fixation in theory, practice, and reality: a perspective on the molybdenum nitrogenase system. | Threatt SD, Rees DC. | FEBS Lett | 10.1002/1873-3468.14534 | 2023 | ||
| Metabolism | Formation of on- and off-pathway intermediates in the folding kinetics of Azotobacter vinelandii apoflavodoxin. | Bollen YJ, Sanchez IE, van Mierlo CP. | Biochemistry | 10.1021/bi049545m | 2004 | |
| Enzymology | The crystal structure of the heme d1 biosynthesis-associated small c-type cytochrome NirC reveals mixed oligomeric states in crystallo. | Klunemann T, Henke S, Blankenfeldt W. | Acta Crystallogr D Struct Biol | 10.1107/s2059798320003101 | 2020 | |
| Metabolism | Characterization of the Azotobacter vinelandii algC gene involved in alginate and lipopolysaccharide production. | Gaona G, Nunez C, Goldberg JB, Linford AS, Najera R, Castaneda M, Guzman J, Espin G, Soberon-Chavez G. | FEMS Microbiol Lett | 10.1016/j.femsle.2004.07.044 | 2004 | |
| Biodegradation Pattern of Glycopolymer Based on D-Mannose Oligomer and Hydroxypropyl Acrylate. | Pana AM, Ordodi V, Rusu G, Gherman V, Bandur G, Rusnac LM, Dumitrel GA. | Polymers (Basel) | 10.3390/polym12030704 | 2020 | ||
| Metabolism | Reproducing shake flasks performance in stirred fermentors: production of alginates by Azotobacter vinelandii. | Reyes C, Pena C, Galindo E. | J Biotechnol | 10.1016/s0168-1656(03)00186-x | 2003 | |
| Distinct Long- and Short-Term Adaptive Mechanisms in Pseudomonas aeruginosa. | Koska M, Kordes A, Erdmann J, Willger SD, Thoming JG, Bahre H, Haussler S. | Microbiol Spectr | 10.1128/spectrum.03043-22 | 2022 | ||
| Characterization of Azotobacter vinelandii nifZ deletion strains. Indication of stepwise MoFe protein assembly. | Hu Y, Fay AW, Dos Santos PC, Naderi F, Ribbe MW. | J Biol Chem | 10.1074/jbc.m408983200 | 2004 | ||
| Metabolism | Variant MoFe proteins of Azotobacter vinelandii: effects of carbon monoxide on electron paramagnetic resonance spectra generated during enzyme turnover. | Maskos Z, Fisher K, Sorlie M, Newton WE, Hales BJ. | J Biol Inorg Chem | 10.1007/s00775-005-0648-2 | 2005 | |
| Enzymology | Nitrogenase Fe Protein: A Multi-Tasking Player in Substrate Reduction and Metallocluster Assembly. | Ribbe MW, Gorecki K, Grosch M, Solomon JB, Quechol R, Liu YA, Lee CC, Hu Y. | Molecules | 10.3390/molecules27196743 | 2022 | |
| Enzymology | Glucose-6-Phosphate Dehydrogenase, ZwfA, a Dual Cofactor-Specific Isozyme Is Predominantly Involved in the Glucose Metabolism of Pseudomonas bharatica CSV86T. | Shah BA, Kasarlawar ST, Phale PS. | Microbiol Spectr | 10.1128/spectrum.03818-22 | 2022 | |
| Genetic and physiological insights into the diazotrophic activity of a non-cyanobacterial marine diazotroph. | Joublin-Delavat A, Touahri K, Cretin P, Morot A, Rodrigues S, Jesus B, Trigodet F, Delavat F. | Environ Microbiol | 10.1111/1462-2920.16261 | 2022 | ||
| Enzymology | Structural and biochemical implications of single amino acid substitutions in the nucleotide-dependent switch regions of the nitrogenase Fe protein from Azotobacter vinelandii. | Jang SB, Jeong MS, Seefeldt LC, Peters JW. | J Biol Inorg Chem | 10.1007/s00775-004-0605-5 | 2004 | |
| Metabolism | Components in the inoculum determine the kinetics of Azotobacter vinelandii cultures and the molecular weight of its alginate. | Trujillo-Roldan MA, Pena C, Galindo E. | Biotechnol Lett | 10.1023/a:1025027010892 | 2003 | |
| Nitrogen Fixation and Ammonium Assimilation Pathway Expression of Geobacter sulfurreducens Changes in Response to the Anode Potential in Microbial Electrochemical Cells. | Ortiz-Medina JF, Poole MR, Grunden AM, Call DF. | Appl Environ Microbiol | 10.1128/aem.02073-22 | 2023 | ||
| Metabolism | Azotobacter vinelandii mutants that overproduce poly-beta-hydroxybutyrate or alginate. | Segura D, Guzman J, Espin G. | Appl Microbiol Biotechnol | 10.1007/s00253-003-1397-1 | 2003 | |
| Biofertilizer: The Future of Food Security and Food Safety. | Daniel AI, Fadaka AO, Gokul A, Bakare OO, Aina O, Fisher S, Burt AF, Mavumengwana V, Keyster M, Klein A. | Microorganisms | 10.3390/microorganisms10061220 | 2022 | ||
| Use of synthetic biology tools to optimize the production of active nitrogenase Fe protein in chloroplasts of tobacco leaf cells. | Eseverri A, Lopez-Torrejon G, Jiang X, Buren S, Rubio LM, Caro E. | Plant Biotechnol J | 10.1111/pbi.13347 | 2020 | ||
| Metabolism | Semi-continuum electrostatic calculations of redox potentials in photosystem I. | Ptushenko VV, Cherepanov DA, Krishtalik LI, Semenov AY. | Photosynth Res | 10.1007/s11120-008-9309-y | 2008 | |
| Metabolism | The GacS/A-RsmA Signal Transduction Pathway Controls the Synthesis of Alkylresorcinol Lipids that Replace Membrane Phospholipids during Encystment of Azotobacter vinelandii SW136. | Romero Y, Guzman J, Moreno S, Cocotl-Yanez M, Vences-Guzman MA, Castaneda M, Espin G, Segura D. | PLoS One | 10.1371/journal.pone.0153266 | 2016 | |
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| Genetics | Catabolic Machinery of the Human Gut Microbes Bestow Resilience Against Vanillin Antimicrobial Nature. | Yadav M, Pandey R, Chauhan NS. | Front Microbiol | 10.3389/fmicb.2020.588545 | 2020 | |
| L-tyrosine-bound ThiH structure reveals C-C bond break differences within radical SAM aromatic amino acid lyases. | Amara P, Saragaglia C, Mouesca JM, Martin L, Nicolet Y. | Nat Commun | 10.1038/s41467-022-29980-4 | 2022 | ||
| Metabolism | Valorization of Gelidium amansii for dual production of D-galactonic acid and 5-hydroxymethyl-2-furancarboxylic acid by chemo-biological approach. | Liu P, Xie J, Tan H, Zhou F, Zou L, Ouyang J. | Microb Cell Fact | 10.1186/s12934-020-01357-6 | 2020 | |
| High-resolution crystal structures reveal a mixture of conformers of the Gly61-Asp62 peptide bond in an oxidized flavodoxin from Bacillus cereus. | Gudim I, Lofstad M, van Beek W, Hersleth HP. | Protein Sci | 10.1002/pro.3436 | 2018 | ||
| Metabolism | Direct interaction of the NifL regulatory protein with the GlnK signal transducer enables the Azotobacter vinelandii NifL-NifA regulatory system to respond to conditions replete for nitrogen. | Little R, Colombo V, Leech A, Dixon R. | J Biol Chem | 10.1074/jbc.m112262200 | 2002 | |
| Evaluation of the Effects of Ag, Cu, ZnO and TiO2 Nanoparticles on the Expression Level of Oxidative Stress-Related Genes and the Activity of Antioxidant Enzymes in Escherichia coli, Bacillus cereus and Staphylococcus epidermidis. | Metryka O, Wasilkowski D, Mrozik A. | Int J Mol Sci | 10.3390/ijms23094966 | 2022 | ||
| A Simple in situ Assay to Assess Plant-Associative Bacterial Nitrogenase Activity. | Haskett TL, Knights HE, Jorrin B, Mendes MD, Poole PS. | Front Microbiol | 10.3389/fmicb.2021.690439 | 2021 | ||
| Enzymology | Transgenic expression of glucose dehydrogenase in Azotobacter vinelandii enhances mineral phosphate solubilization and growth of sorghum seedlings. | Sashidhar B, Podile AR. | Microb Biotechnol | 10.1111/j.1751-7915.2009.00119.x | 2009 | |
| Metabolism | Role of the amino-terminal GAF domain of the NifA activator in controlling the response to the antiactivator protein NifL. | Martinez-Argudo I, Little R, Dixon R. | Mol Microbiol | 10.1111/j.1365-2958.2004.04089.x | 2004 | |
| Metabolism | ISCU(M108I) and ISCU(D39V) Differ from Wild-Type ISCU in Their Failure To Form Cysteine Desulfurase Complexes Containing Both Frataxin and Ferredoxin. | Cai K, Frederick RO, Tonelli M, Markley JL. | Biochemistry | 10.1021/acs.biochem.7b01234 | 2018 | |
| Metabolism | Reversible Protonated Resting State of the Nitrogenase Active Site. | Morrison CN, Spatzal T, Rees DC. | J Am Chem Soc | 10.1021/jacs.7b05695 | 2017 | |
| Enzymology | Substrate pathways in the nitrogenase MoFe protein by experimental identification of small molecule binding sites. | Morrison CN, Hoy JA, Zhang L, Einsle O, Rees DC. | Biochemistry | 10.1021/bi501313k | 2015 | |
| Crystal structure of the monomeric isocitrate dehydrogenase in the presence of NADP+: insight into the cofactor recognition, catalysis, and evolution. | Yasutake Y, Watanabe S, Yao M, Takada Y, Fukunaga N, Tanaka I. | J Biol Chem | 10.1074/jbc.m304091200 | 2003 | ||
| A new member of the flavodoxin superfamily from Fusobacterium nucleatum that functions in heme trafficking and reduction of anaerobilin. | McGregor AK, Chan ACK, Schroeder MD, Do LTM, Saini G, Murphy MEP, Wolthers KR. | J Biol Chem | 10.1016/j.jbc.2023.104902 | 2023 | ||
| Metabolism | A molecular pathway for the egress of ammonia produced by nitrogenase. | Dance I. | Sci Rep | 10.1038/srep03237 | 2013 | |
| Metabolism | Quantifying Oxygen Management and Temperature and Light Dependencies of Nitrogen Fixation by Crocosphaera watsonii. | Inomura K, Deutsch C, Wilson ST, Masuda T, Lawrenz E, Lenka B, Sobotka R, Gauglitz JM, Saito MA, Prasil O, Follows MJ. | mSphere | 10.1128/msphere.00531-19 | 2019 | |
| Spectroscopic and functional characterization of the [2Fe-2S] scaffold protein Nfu from Synechocystis PCC6803. | Thompson Z, Fidai I, Wachnowsky C, Hendricks AL, Cowan JA. | Biochimie | 10.1016/j.biochi.2021.09.013 | 2022 | ||
| Application of humic acid and biofertilizers changes oil and phenolic compounds of fennel and fenugreek in intercropping systems. | Ghaderimokri L, Rezaei-Chiyaneh E, Ghiyasi M, Gheshlaghi M, Battaglia ML, Siddique KHM. | Sci Rep | 10.1038/s41598-022-09645-4 | 2022 | ||
| Biosynthesis of cofactor-activatable iron-only nitrogenase in Saccharomyces cerevisiae. | Lopez-Torrejon G, Buren S, Veldhuizen M, Rubio LM. | Microb Biotechnol | 10.1111/1751-7915.13758 | 2021 | ||
| Biomimetic natural biomaterials for tissue engineering and regenerative medicine: new biosynthesis methods, recent advances, and emerging applications. | Liu S, Yu JM, Gan YC, Qiu XZ, Gao ZC, Wang H, Chen SX, Xiong Y, Liu GH, Lin SE, McCarthy A, John JV, Wei DX, Hou HH. | Mil Med Res | 10.1186/s40779-023-00448-w | 2023 | ||
| Metabolism | Batch biological treatment of nitrogen deficient synthetic wastewater using Azotobacter supplemented activated sludge. | Kargi F, Ozmihci S. | Bioresour Technol | 10.1016/j.biortech.2003.12.012 | 2004 | |
| An unusual overrepresentation of genetic factors related to iron homeostasis in the genome of the fluorescent Pseudomonas sp. ABC1. | Valenzuela-Heredia D, Henriquez-Castillo C, Donoso R, Lavin P, Ringel MT, Bruser T, Campos JL. | Microb Biotechnol | 10.1111/1751-7915.13753 | 2021 | ||
| Metabolism | NasT-mediated antitermination plays an essential role in the regulation of the assimilatory nitrate reductase operon in Azotobacter vinelandii. | Wang B, Pierson LS, Rensing C, Gunatilaka MK, Kennedy C. | Appl Environ Microbiol | 10.1128/aem.01720-12 | 2012 | |
| Metabolism | Molecular weight characteristics of alginate produced by Azotobacter vinelandii in a membrane bioreactor. | Saude N, Cheze-Lange H, Dhulster P, Junter GA. | Meded Rijksuniv Gent Fak Landbouwkd Toegep Biol Wet | 2001 | ||
| Two ligand-binding sites in CO-reducing V nitrogenase reveal a general mechanistic principle. | Rohde M, Laun K, Zebger I, Stripp ST, Einsle O. | Sci Adv | 10.1126/sciadv.abg4474 | 2021 | ||
| Enzymology | Proton transfer in Azotobacter vinelandii ferredoxin I: entatic Lys84 operates as elastic counterbalance for the proton-carrying Asp15. | Cherepanov DA, Mulkidjanian AY. | Biochim Biophys Acta | 10.1016/s0005-2728(01)00162-1 | 2001 | |
| Effects of an EPS Biosynthesis Gene Cluster of Paenibacillus polymyxa WLY78 on Biofilm Formation and Nitrogen Fixation under Aerobic Conditions. | He X, Li Q, Wang N, Chen S. | Microorganisms | 10.3390/microorganisms9020289 | 2021 | ||
| Cloning and mutational analysis of the gamma gene from Azotobacter vinelandii defines a new family of proteins capable of metallocluster binding and protein stabilization. | Rubio LM, Rangaraj P, Homer MJ, Roberts GP, Ludden PW. | J Biol Chem | 10.1074/jbc.m107289200 | 2002 | ||
| Metabolism | Master regulator NtrC controls the utilization of alternative nitrogen sources in Pseudomonas stutzeri A1501. | Yang Z, Li Q, Yan Y, Ke X, Han Y, Wu S, Lv F, Shao Y, Jiang S, Lin M, Zhang Y, Zhan Y. | World J Microbiol Biotechnol | 10.1007/s11274-021-03144-w | 2021 | |
| Metabolism | Accumulation of 55Fe-labeled precursors of the iron-molybdenum cofactor of nitrogenase on NifH and NifX of Azotobacter vinelandii. | Rangaraj P, Ruttimann-Johnson C, Shah VK, Ludden PW. | J Biol Chem | 10.1074/jbc.m100907200 | 2001 | |
| Metabolism | CO2 Reduction Catalyzed by Nitrogenase: Pathways to Formate, Carbon Monoxide, and Methane. | Khadka N, Dean DR, Smith D, Hoffman BM, Raugei S, Seefeldt LC. | Inorg Chem | 10.1021/acs.inorgchem.6b00388 | 2016 | |
| Enzymology | Crystal structure of the all-ferrous [4Fe-4S]0 form of the nitrogenase iron protein from Azotobacter vinelandii. | Strop P, Takahara PM, Chiu H, Angove HC, Burgess BK, Rees DC. | Biochemistry | 10.1021/bi0016467 | 2001 | |
| Alginate Microcapsules as Nutrient Suppliers: An In Vitro Study. | Khoshzaban A, Keyhanvar P, Delrish E, Najafi F, Heidari Keshel S, Watanabe I, Valanezhad A, Jafarzadeh Kashi T. | Cell J | 10.22074/cellj.2018.4508 | 2018 | ||
| Identification of FX in the heliobacterial reaction center as a [4Fe-4S] cluster with an S = 3/2 ground spin state. | Heinnickel M, Agalarov R, Svensen N, Krebs C, Golbeck JH. | Biochemistry | 10.1021/bi060031s | 2006 | ||
| Metabolism | Role of the central region of NifL in conformational switches that regulate nitrogen fixation. | Little R, Martinez-Argudo I, Dixon R. | Biochem Soc Trans | 10.1042/bst0340162 | 2006 | |
| Screening for Methane Utilizing Mixed Communities with High Polyhydroxybutyrate (PHB) Production Capacity Using Different Design Approaches. | Salem R, Soliman M, Fergala A, Audette GF, ElDyasti A. | Polymers (Basel) | 10.3390/polym13101579 | 2021 | ||
| Heavy Metals Induced Modulations in Growth, Physiology, Cellular Viability, and Biofilm Formation of an Identified Bacterial Isolate. | Syed A, Zeyad MT, Shahid M, Elgorban AM, Alkhulaifi MM, Ansari IA. | ACS Omega | 10.1021/acsomega.1c04396 | 2021 | ||
| Metabolism | Action of Azotobacter vinelandii poly-beta-D-mannuronic acid C-5-epimerase on synthetic D-glucuronans. | Chang PS, Mukerjea R, Fulton DB, Robyt JF. | Carbohydr Res | 10.1016/s0008-6215(00)00243-3 | 2000 | |
| Enzymology | Electron paramagnetic resonance analysis of different Azotobacter vinelandii nitrogenase MoFe-protein conformations generated during enzyme turnover: evidence for S = 3/2 spin states from reduced MoFe-protein intermediates. | Fisher K, Newton WE, Lowe DJ. | Biochemistry | 10.1021/bi0012686 | 2001 | |
| Genetics | Comparative genomics of the proteostasis network in extreme acidophiles. | Izquierdo-Fiallo K, Munoz-Villagran C, Orellana O, Sjoberg R, Levican G. | PLoS One | 10.1371/journal.pone.0291164 | 2023 | |
| Construction of Efficient Platform Escherichia coli Strains for Polyhydroxyalkanoate Production by Engineering Branched Pathway. | Jung HR, Yang SY, Moon YM, Choi TR, Song HS, Bhatia SK, Gurav R, Kim EJ, Kim BG, Yang YH. | Polymers (Basel) | 10.3390/polym11030509 | 2019 | ||
| Metabolism | Influence of nutritional and environmental factors on polysaccharide production by Azotobacter vinelandii cultured on 4-hydroxybenzoic acid. | Vargas-Garcia MC, Lopez MJ, Elorrieta MA, Suarez F, Moreno J. | J Ind Microbiol Biotechnol | 10.1038/sj.jim.7000152 | 2001 | |
| Metabolism | Evidence for a synergistic salt-protein interaction -- complex patterns of activation vs. inhibition of nitrogenase by salt. | Wilson PE, Nyborg AC, Kenealey J, Lowery TJ, Crawford K, King CR, Engan AJ, Johnson JL, Watt GD. | Biophys Chem | 10.1016/j.bpc.2006.03.007 | 2006 | |
| The Modification of Regulatory Circuits Involved in the Control of Polyhydroxyalkanoates Metabolism to Improve Their Production. | Velazquez-Sanchez C, Espin G, Pena C, Segura D. | Front Bioeng Biotechnol | 10.3389/fbioe.2020.00386 | 2020 | ||
| Structure, dynamics, and redox reactivity of an all-purpose flavodoxin. | Khan S, Ansari A, Brachi M, Das D, El Housseini W, Minteer S, Miller AF. | J Biol Chem | 10.1016/j.jbc.2024.107122 | 2024 | ||
| A His-tag based immobilization method for the preparation and reconstitution of apoflavoproteins. | Hefti MH, Milder FJ, Boeren S, Vervoort J, van Berkel WJ. | Biochim Biophys Acta | 10.1016/s0304-4165(02)00474-9 | 2003 | ||
| Beta-ketothiolase genes in Azotobacter vinelandii. | Segura D, Vargas E, Espin G. | Gene | 10.1016/s0378-1119(00)00462-5 | 2000 | ||
| Metabolism | Azotobacter vinelandii ferredoxin I: a sequence and structure comparison approach to alteration of [4Fe-4S]2+/+ reduction potential. | Chen K, Jung YS, Bonagura CA, Tilley GJ, Prasad GS, Sridhar V, Armstrong FA, Stout CD, Burgess BK. | J Biol Chem | 10.1074/jbc.m108916200 | 2002 | |
| Metabolism | Effect of redox mediators on nitrogenase and hydrogenase activities in Azotobacter vinelandii. | Huang HQ, Lin QM, Zhai WJ, Chen CH. | J Protein Chem | 10.1023/a:1007100319108 | 2000 | |
| Selenocysteine Lyase. | Stadtman TC. | EcoSal Plus | 10.1128/ecosalplus.3.6.1.1.1 | 2004 | ||
| Enzymology | In Escherichia coli Ammonia Inhibits Cytochrome bo3 But Activates Cytochrome bd-I. | Forte E, Siletsky SA, Borisov VB. | Antioxidants (Basel) | 10.3390/antiox10010013 | 2020 | |
| Enzymology | Cloning of the sth gene from Azotobacter vinelandii and construction of chimeric soluble pyridine nucleotide transhydrogenases. | Boonstra B, Bjorklund L, French CE, Wainwright I, Bruce NC. | FEMS Microbiol Lett | 10.1111/j.1574-6968.2000.tb09323.x | 2000 | |
| Metabolism | Regulation of nitrogen fixation in Klebsiella pneumoniae and Azotobacter vinelandii: NifL, transducing two environmental signals to the nif transcriptional activator NifA. | Schmitz RA, Klopprogge K, Grabbe R. | J Mol Microbiol Biotechnol | 2002 | ||
| Metabolism | Characterization of the iron superoxide dismutase gene of Azotobacter vinelandii: sodB may be essential for viability. | Qurollo BA, Bishop PE, Hassan HM. | Can J Microbiol | 10.1139/w00-126 | 2001 | |
| Vital roles of sustainable nano-fertilizers in improving plant quality and quantity-an updated review. | El-Saadony MT, ALmoshadak AS, Shafi ME, Albaqami NM, Saad AM, El-Tahan AM, Desoky EM, Elnahal ASM, Almakas A, Abd El-Mageed TA, Taha AE, Elrys AS, Helmy AM. | Saudi J Biol Sci | 10.1016/j.sjbs.2021.08.032 | 2021 | ||
| Enzymology | Activation of vanadium nitrogenase expression in Azotobacter vinelandii DJ54 revertant in the presence of molybdenum. | Lei S, Pulakat L, Gavini N. | FEBS Lett | 10.1016/s0014-5793(00)02052-4 | 2000 | |
| Metabolism | Mode of action of recombinant Azotobacter vinelandii mannuronan C-5 epimerases AlgE2 and AlgE4. | Hartmann M, Holm OB, Johansen GA, Skjak-Braek G, Stokke BT. | Biopolymers | 10.1002/bip.10017 | 2002 | |
| Substrate-free structure of a monomeric NADP isocitrate dehydrogenase: an open conformation phylogenetic relationship of isocitrate dehydrogenase. | Imabayashi F, Aich S, Prasad L, Delbaere LT. | Proteins | 10.1002/prot.20867 | 2006 | ||
| Utilization of swine wastewater as a feedstock for the production of polyhydroxyalkanoates by Azotobacter vinelandii UWD. | Cho K, Ryu HW, Park C, Goodrich PR. | J Biosci Bioeng | 10.1263/jbb.91.129 | 2001 | ||
| Metabolism | Bacterial alginate: physiology, product quality and process aspects. | Sabra W, Zeng AP, Deckwer WD. | Appl Microbiol Biotechnol | 10.1007/s002530100699 | 2001 | |
| Metabolism | The catalytic activities of the bifunctional Azotobacter vinelandii mannuronan C-5-epimerase and alginate lyase AlgE7 probably originate from the same active site in the enzyme. | Svanem BI, Strand WI, Ertesvag H, Skjak-Braek G, Hartmann M, Barbeyron T, Valla S. | J Biol Chem | 10.1074/jbc.m102562200 | 2001 | |
| Streamlining of a synthetic co-culture towards an individually controllable one-pot process for polyhydroxyalkanoate production from light and CO2. | Kratzl F, Kremling A, Pfluger-Grau K. | Eng Life Sci | 10.1002/elsc.202100156 | 2023 | ||
| Metabolism | Lethality of glnD null mutations in Azotobacter vinelandii is suppressible by prevention of glutamine synthetase adenylylation. | Colnaghi R, Rudnick P, He L, Green A, Yan D, Larson E, Kennedy C. | Microbiology (Reading) | 10.1099/00221287-147-5-1267 | 2001 | |
| Clostridium pasteurianum W5 synthesizes two NifH-related polypeptides under nitrogen-fixing conditions. | Kasap M, Chen JS. | Microbiology (Reading) | 10.1099/mic.0.27931-0 | 2005 | ||
| Adsorption of extracellular chromosomal DNA and its effects on natural transformation of Azotobacter vinelandii. | Lu N, Zilles JL, Nguyen TH. | Appl Environ Microbiol | 10.1128/aem.00193-10 | 2010 | ||
| Metabolism | Phasins, Multifaceted Polyhydroxyalkanoate Granule-Associated Proteins. | Mezzina MP, Pettinari MJ. | Appl Environ Microbiol | 10.1128/aem.01161-16 | 2016 | |
| NifEN-B complex of Azotobacter vinelandii is fully functional in nitrogenase FeMo cofactor assembly. | Wiig JA, Hu Y, Ribbe MW. | Proc Natl Acad Sci U S A | 10.1073/pnas.1102773108 | 2011 | ||
| Metabolism | Alginate formation in Azotobacter vinelandii UWD during stationary phase and the turnover of poly-beta-hydroxybutyrate. | Page WJ, Tindale A, Chandra M, Kwon E. | Microbiology (Reading) | 10.1099/00221287-147-2-483 | 2001 | |
| Metabolism | Coordinated expression of fdxD and molybdenum nitrogenase genes promotes nitrogen fixation by Rhodobacter capsulatus in the presence of oxygen. | Hoffmann MC, Muller A, Fehringer M, Pfander Y, Narberhaus F, Masepohl B. | J Bacteriol | 10.1128/jb.01235-13 | 2014 | |
| Genotypic characterization of Azotobacteria isolated from Argentinean soils and plant-growth-promoting traits of selected strains with prospects for biofertilizer production. | Rubio EJ, Montecchia MS, Tosi M, Cassan FD, Perticari A, Correa OS. | ScientificWorldJournal | 10.1155/2013/519603 | 2013 | ||
| Non-cyanobacterial diazotrophs support the survival of marine microalgae in nitrogen-depleted environment. | Chandola U, Gaudin M, Trottier C, Lavier-Aydat LJ, Manirakiza E, Menicot S, Fischer EJ, Louvet I, Lacour T, Chaumier T, Tanaka A, Pohnert G, Chaffron S, Tirichine L. | Genome Biol | 10.1186/s13059-025-03597-4 | 2025 | ||
| Phylogeny | Defining the Pseudomonas genus: where do we draw the line with Azotobacter? | Ozen AI, Ussery DW. | Microb Ecol | 10.1007/s00248-011-9914-8 | 2012 | |
| Phylogeny | New PCR-based open reading frame typing method for easy, rapid, and reliable identification of Acinetobacter baumannii international epidemic clones without performing multilocus sequence typing. | Suzuki M, Hosoba E, Matsui M, Arakawa Y. | J Clin Microbiol | 10.1128/jcm.01064-14 | 2014 | |
| Metabolism | Redox properties of wild-type, Cys69Ala, and Cys69Ser Azotobacter vinelandii flavodoxin II as measured by cyclic voltammetry and EPR spectroscopy,. | Steensma E, Heering HA, Hagen WR, Van Mierlo CP | Eur J Biochem | 10.1111/j.1432-1033.1996.00167.x | 1996 | |
| Analysis of the Genomes and Adaptive Traits of Skermanella cutis sp. nov., a Human Skin Isolate, and the Type Strains Skermanella rosea and Skermanella mucosa. | Choi Y, Ganzorig M, Lee K. | Microorganisms | 10.3390/microorganisms13010094 | 2025 | ||
| Genetics | Sulfate-Reducing Bacteria Isolated from an Oil Field in Kazakhstan and a Description of Pseudodesulfovibrio karagichevae sp. nov. | Bidzhieva SK, Tourova TP, Grouzdev DS, Samigullina SR, Sokolova DS, Poltaraus AB, Avtukh AN, Tereshina VM, Mardanov AV, Zhaparov NS, Nazina TN. | Microorganisms | 10.3390/microorganisms12122552 | 2024 | |
| Genetics | A description of the genus Denitromonas nom. rev.: Denitromonas iodatirespirans sp. nov., a novel iodate-reducing bacterium, and two novel perchlorate-reducing bacteria, Denitromonas halophila and Denitromonas ohlonensis, isolated from San Francisco Bay intertidal mudflats. | Reyes-Umana VM, Coates JD. | Microbiol Spectr | 10.1128/spectrum.00915-23 | 2023 | |
| Phylogeny | Pseudomonas oligotrophica sp. nov., a Novel Denitrifying Bacterium Possessing Nitrogen Removal Capability Under Low Carbon-Nitrogen Ratio Condition. | Zhang M, Li A, Yao Q, Xiao B, Zhu H. | Front Microbiol | 10.3389/fmicb.2022.882890 | 2022 |
| #1021 | Leibniz Institut DSMZ-Deutsche Sammlung von Mikroorganismen und Zellkulturen GmbH ; Curators of the DSMZ; DSM 2289 |
| #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 ) |
| #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 . |
| #124043 | Isabel Schober, Julia Koblitz: Data extracted from sequence databases, automatically matched based on designation and taxonomy . |
| #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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