Mixotrophic Iron-Oxidizing Thiomonas Isolates from an Acid Mine Drainage-Affected Creek
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H. Klenk | N. Shapiro | A. Lapidus | T. Woyke | D. Akob | F. Beulig | C. Chan | K. Küsel | J. Keffer | M. Fabisch | Michelle Hallenbeck | Maria Fabisch
[1] Kohske Takahashi,et al. Create Elegant Data Visualisations Using the Grammar of Graphics [R package ggplot2 version 3.3.2] , 2020 .
[2] Shawn W. Polson,et al. Validating the Cyc2 Neutrophilic Iron Oxidation Pathway Using Meta-omics of Zetaproteobacteria Iron Mats at Marine Hydrothermal Vents , 2020, mSystems.
[3] Michelle Hallenbeck. GENOMIC ANALYSES OF NOVEL IRON-OXIDIZING THIOMONAS ISOLATES FROM ACID MINE DRAINAGE , 2019 .
[4] V. Ciobotă,et al. Microbial Fe(II) oxidation by Sideroxydans lithotrophicus ES-1 in the presence of Schlöppnerbrunnen fen-derived humic acids. , 2019, FEMS microbiology ecology.
[5] C. Joulian,et al. Dynamics of Bacterial Communities Mediating the Treatment of an As-Rich Acid Mine Drainage in a Field Pilot , 2018, Front. Microbiol..
[6] I-Min A. Chen,et al. IMG/M v.5.0: an integrated data management and comparative analysis system for microbial genomes and microbiomes , 2018, Nucleic Acids Res..
[7] Tom O. Delmont,et al. Linking pangenomes and metagenomes: the Prochlorococcus metapangenome , 2018, PeerJ.
[8] Evan Bolton,et al. Database resources of the National Center for Biotechnology Information , 2017, Nucleic Acids Res..
[9] E. Roden,et al. Comparative Genomic Analysis of Neutrophilic Iron(II) Oxidizer Genomes for Candidate Genes in Extracellular Electron Transfer , 2017, Front. Microbiol..
[10] R. Amann,et al. Uncultivated microbes in need of their own taxonomy , 2017, The ISME Journal.
[11] C. Chan,et al. Novel Pelagic Iron-Oxidizing Zetaproteobacteria from the Chesapeake Bay Oxic–Anoxic Transition Zone , 2017, Front. Microbiol..
[12] J. Coppee,et al. Comparison of biofilm formation and motility processes in arsenic‐resistant Thiomonas spp. strains revealed divergent response to arsenite , 2017, Microbial biotechnology.
[13] K. D. Narayan,et al. Mechanism of electron transport during thiosulfate oxidation in an obligately mixotrophic bacterium Thiomonas bhubaneswarensis strain S10 (DSM 18181T) , 2016, Applied Microbiology and Biotechnology.
[14] D. Johnson,et al. Solid and liquid media for isolating and cultivating acidophilic and acid-tolerant sulfate-reducing bacteria. , 2016, FEMS microbiology letters.
[15] W. Martin,et al. The Entner–Doudoroff pathway is an overlooked glycolytic route in cyanobacteria and plants , 2016, Proceedings of the National Academy of Sciences.
[16] M. Kanehisa,et al. BlastKOALA and GhostKOALA: KEGG Tools for Functional Characterization of Genome and Metagenome Sequences. , 2016, Journal of molecular biology.
[17] A. van Dorsselaer,et al. Spatio-Temporal Detection of the Thiomonas Population and the Thiomonas Arsenite Oxidase Involved in Natural Arsenite Attenuation Processes in the Carnoulès Acid Mine Drainage , 2016, Front. Cell Dev. Biol..
[18] L. Pritchard,et al. Genomics and taxonomy in diagnostics for food security: soft-rotting enterobacterial plant pathogens , 2016 .
[19] D. Akob,et al. Dominance of ‘Gallionella capsiferriformans’ and heavy metal association with Gallionella‐like stalks in metal‐rich pH 6 mine water discharge , 2016, Geobiology.
[20] Huang Gao,et al. Database resources of the National Center for Biotechnology Information , 2015, Nucleic Acids Res..
[21] M. Hattori,et al. Comparative Genomic Insights into Ecophysiology of Neutrophilic, Microaerophilic Iron Oxidizing Bacteria , 2015, Front. Microbiol..
[22] Tom O. Delmont,et al. Anvi’o: an advanced analysis and visualization platform for ‘omics data , 2015, PeerJ.
[23] H. Heipieper,et al. Adaptation in Toxic Environments: Arsenic Genomic Islands in the Bacterial Genus Thiomonas , 2015, PloS one.
[24] F. Plewniak,et al. Thiomonas sp. CB2 is able to degrade urea and promote toxic metal precipitation in acid mine drainage waters supplemented with urea , 2015, Front. Microbiol..
[25] C. Grettenberger. Microbial Communities In Acid Mine Drainage Ecosystems , 2015 .
[26] B. Orcutt,et al. New Insight into Microbial Iron Oxidation as Revealed by the Proteomic Profile of an Obligate Iron-Oxidizing Chemolithoautotroph , 2015, Applied and Environmental Microbiology.
[27] Julea N. Butt,et al. Characterization of MtoD from Sideroxydans lithotrophicus: a cytochrome c electron shuttle used in lithoautotrophic growth , 2015, Front. Microbiol..
[28] M. Ishii,et al. Enzymatic Characterization and In Vivo Function of Five Terminal Oxidases in Pseudomonas aeruginosa , 2014, Journal of bacteriology.
[29] K. Konstantinidis,et al. Bypassing Cultivation To Identify Bacterial Species: Culture-independent genomic approaches identify credibly distinct clusters, avoid cultivation bias, and provide true insights into microbial species , 2014 .
[30] D. Akob,et al. Surprising abundance of Gallionella-related iron oxidizers in creek sediments at pH 4.4 or at high heavy metal concentrations , 2013, Front. Microbiol..
[31] Lynne A. Goodwin,et al. Comparative genomics of freshwater Fe-oxidizing bacteria: implications for physiology, ecology, and systematics , 2013, Front. Microbiol..
[32] Aaron A. Klammer,et al. Nonhybrid, finished microbial genome assemblies from long-read SMRT sequencing data , 2013, Nature Methods.
[33] Thomas L. Madden,et al. The BLAST Sequence Analysis Tool , 2013 .
[34] K. Rosso,et al. Mtr extracellular electron-transfer pathways in Fe(III)-reducing or Fe(II)-oxidizing bacteria: a genomic perspective. , 2012, Biochemical Society transactions.
[35] D. Lièvremont,et al. Novel and unexpected bacterial diversity in an arsenic-rich ecosystem revealed by culture-dependent approaches , 2012, Biology Direct.
[36] Shane S. Sturrock,et al. Geneious Basic: An integrated and extendable desktop software platform for the organization and analysis of sequence data , 2012, Bioinform..
[37] J. G. Kuenen,et al. Mariprofundus ferrooxydans PV-1 the First Genome of a Marine Fe(II) Oxidizing Zetaproteobacterium , 2011, PloS one.
[38] C. Chan,et al. Lithotrophic iron-oxidizing bacteria produce organic stalks to control mineral growth: implications for biosignature formation , 2011, The ISME Journal.
[39] Mingkun Li,et al. DUK - A Fast and Efficient Kmer Based Sequence Matching Tool , 2011 .
[40] C. Brochier-Armanet,et al. Characteristics of a phylogenetically ambiguous, arsenic-oxidizing Thiomonas sp., Thiomonas arsenitoxydans strain 3AsT sp. nov , 2011, Archives of Microbiology.
[41] C. Joulian,et al. Proposal that the arsenite-oxidizing organisms Thiomonas cuprina and 'Thiomonas arsenivorans' be reclassified as strains of Thiomonas delicata, and emended description of Thiomonas delicata. , 2011, International journal of systematic and evolutionary microbiology.
[42] A. Gnirke,et al. High-quality draft assemblies of mammalian genomes from massively parallel sequence data , 2010, Proceedings of the National Academy of Sciences.
[43] D. Akob,et al. Ecophysiology of Fe-Cycling Bacteria in Acidic Sediments , 2010, Applied and Environmental Microbiology.
[44] S. Nietzsche,et al. Acid-tolerant microaerophilic Fe(II)-oxidizing bacteria promote Fe(III)-accumulation in a fen. , 2010, Environmental microbiology.
[45] Philippe Ortet,et al. Structure, Function, and Evolution of the Thiomonas spp. Genome , 2010, PLoS genetics.
[46] Kinshuk C. Nayak,et al. Thiomonas bhubaneswarensis sp. nov., an obligately mixotrophic, moderately thermophilic, thiosulfate-oxidizing bacterium. , 2009, International journal of systematic and evolutionary microbiology.
[47] JohnB . Taylor,et al. Cytochrome c Biogenesis: Mechanisms for Covalent Modifications and Trafficking of Heme and for Heme-Iron Redox Control , 2009, Microbiology and Molecular Biology Reviews.
[48] P. Bertin,et al. Carbon and arsenic metabolism in Thiomonas strains: differences revealed diverse adaptation processes , 2009, BMC Microbiology.
[49] A. Grawunder,et al. Distribution and bonding of residual contamination in glacial sediments at the former uranium mining leaching heap of Gessen/Thuringia, Germany , 2009 .
[50] S. Turner,et al. Real-Time DNA Sequencing from Single Polymerase Molecules , 2009, Science.
[51] Cindy J. Castelle,et al. A New Iron-oxidizing/O2-reducing Supercomplex Spanning Both Inner and Outer Membranes, Isolated from the Extreme Acidophile Acidithiobacillus ferrooxidans* , 2008, Journal of Biological Chemistry.
[52] M. Badger,et al. Multiple Rubisco forms in proteobacteria: their functional significance in relation to CO2 acquisition by the CBB cycle. , 2008, Journal of experimental botany.
[53] Rick L. Stevens,et al. The RAST Server: Rapid Annotations using Subsystems Technology , 2008, BMC Genomics.
[54] T. Lilburn,et al. Characterization of Neutrophilic Fe(II)-Oxidizing Bacteria Isolated from the Rhizosphere of Wetland Plants and Description of Ferritrophicum radicicola gen. nov. sp. nov., and Sideroxydans paludicola sp. nov. , 2007 .
[55] K. Duquesne,et al. Mechanisms of arsenite elimination by Thiomonas sp. isolated from Carnoulès acid mine drainage , 2007 .
[56] H. Huber,et al. Reassessment of the phylogenetic relationships of Thiomonas cuprina. , 2007, International journal of systematic and evolutionary microbiology.
[57] K. Duquesne,et al. Arsenite oxidation by a chemoautotrophic moderately acidophilic Thiomonas sp.: from the strain isolation to the gene study. , 2007, Environmental microbiology.
[58] T. Lilburn,et al. A Novel Lineage of Proteobacteria Involved in Formation of Marine Fe-Oxidizing Microbial Mat Communities , 2007, PloS one.
[59] D. Kelly,et al. Confirmation of Thiomonas delicata (formerly Thiobacillus delicatus) as a distinct species of the genus Thiomonas Moreira and Amils 1997 with comments on some species currently assigned to the genus. , 2006, International journal of systematic and evolutionary microbiology.
[60] Alexandros Stamatakis,et al. RAxML-VI-HPC: maximum likelihood-based phylogenetic analyses with thousands of taxa and mixed models , 2006, Bioinform..
[61] Philip Hugenholtz,et al. NAST: a multiple sequence alignment server for comparative analysis of 16S rRNA genes , 2006, Nucleic Acids Res..
[62] K. Earley,et al. Recombinant cytochromes c biogenesis systems I and II and analysis of haem delivery pathways in Escherichia coli , 2006, Molecular microbiology.
[63] S. Kimura,et al. Macroscopic Streamer Growths in Acidic, Metal-Rich Mine Waters in North Wales Consist of Novel and Remarkably Simple Bacterial Communities , 2006, Applied and Environmental Microbiology.
[64] G. Büchel,et al. Screening of residual contamination at a former uranium heap leaching site, Thuringia, Germany , 2005 .
[65] D. Polya,et al. Mechanisms of arsenic attenuation in acid mine drainage from Mount Bischoff, western Tasmania. , 2005, The Science of the total environment.
[66] D. T. Liang,et al. Isolation and characterization of sulphur‐oxidizing Thiomonas sp. and its potential application in biological deodorization , 2004, Letters in applied microbiology.
[67] J. Banfield,et al. Acid mine drainage biogeochemistry at Iron Mountain, California , 2004, Geochemical transactions.
[68] K. Schleifer,et al. ARB: a software environment for sequence data. , 2004, Nucleic acids research.
[69] E. Kothe,et al. Studies on Microbial Heavy Metal Retention from Uranium Mine Drainage Water with Special Emphasis on Rare Earth Elements , 2004 .
[70] W. Sand,et al. Tetrathionate Disproportionation by Thiomonas intermedia K12 , 2004 .
[71] D. Johnson,et al. Novel acidophiles isolated from moderately acidic mine drainage waters , 2003 .
[72] M. Leblanc,et al. Mediation of arsenic oxidation by Thiomonas sp. in acid‐mine drainage (Carnoulès, France) , 2003, Journal of applied microbiology.
[73] N. Yanase,et al. A natural attenuation of arsenic in drainage from an abandoned arsenic mine dump , 2003 .
[74] M. Leblanc,et al. Bacterial immobilization and oxidation of arsenic in acid mine drainage (Carnoulès creek, France). , 2003, Water research.
[75] Jillian F Banfield,et al. Microbial communities in acid mine drainage. , 2003, FEMS microbiology ecology.
[76] R. Downs. Topology of the pyroxenes as a function of temperature, pressure, and composition as determined from the procrystal electron density , 2003 .
[77] M. Dictor,et al. An arsenic(III)‐oxidizing bacterial population: selection, characterization, and performance in reactors , 2002, Journal of applied microbiology.
[78] J. Coates,et al. Immobilization of Radionuclides and Heavy Metals through Anaerobic Bio-Oxidation of Fe(II) , 2002, Applied and Environmental Microbiology.
[79] R. Chakraborty,et al. Anaerobic Biooxidation of Fe(II) by Dechlorosoma suillum , 2002, Microbial Ecology.
[80] K. Lund,et al. The High-Molecular-Weight Cytochrome c Cyc2 of Acidithiobacillus ferrooxidans Is an Outer Membrane Protein , 2002, Journal of bacteriology.
[81] C. Moyer,et al. Isolation and characterization of novel iron-oxidizing bacteria that grow at circumneutral pH , 1997, Applied and environmental microbiology.
[82] R. Amils,et al. Phylogeny of Thiobacillus cuprinus and other mixotrophic thiobacilli: proposal for Thiomonas gen. nov. , 1997, International journal of systematic bacteriology.
[83] K. Pedersen,et al. Phylogeny and phenotypic characterization of the stalk-forming and iron-oxidizing bacterium Gallionella ferruginea. , 1993, Journal of general microbiology.
[84] S. Goodison,et al. 16S ribosomal DNA amplification for phylogenetic study , 1991, Journal of bacteriology.
[85] E. Myers,et al. Basic local alignment search tool. , 1990, Journal of molecular biology.
[86] K. Stetter,et al. Thiobacillus cuprinus sp. nov., a Novel Facultatively Organotrophic Metal-Mobilizing Bacterium , 1990, Applied and environmental microbiology.
[87] E. Geldreich,et al. A new medium for the enumeration and subculture of bacteria from potable water , 1985, Applied and environmental microbiology.
[88] I. Kawashima,et al. Physiological Characteristics of the Facultatively Chemolithotrophic Thiobacillus Species Thiobacillus delicatus nom. rev., emend., Thiobacillus perometabolis, and Thiobacillus intermedius , 1984 .
[89] Wolfgang Sand,et al. Thiobacilli of the Corroded Concrete Walls of the Hamburg Sewer System , 1983 .
[90] J. Man. The probability of most probable numbers , 1975, European journal of applied microbiology and biotechnology.
[91] J. London. Thiobacillus intermedius nov.sp. , 1963, Archiv für Mikrobiologie.
[92] K. Temple,et al. THE AUTOTROPHIC OXIDATION OF IRON BY A NEW BACTERIUM: THIOBACILLUS FERROOXIDANS , 1951, Journal of bacteriology.
[93] Thomas Wichard,et al. Iron-organic matter complexes accelerate microbial iron cycling in an iron-rich fen. , 2019, The Science of the total environment.
[94] V. Barbe,et al. Adaptation in toxic environments: comparative genomics of loci carrying antibiotic resistance genes derived from acid mine drainage waters , 2017, Environmental Science and Pollution Research.
[95] R Core Team,et al. R: A language and environment for statistical computing. , 2014 .
[96] Konstantinos T. Konstantinidis,et al. Bypassing Cultivation To Identify Bacterial Species , 2014 .
[97] John Kuo,et al. Electron Microscopy , 2007, Methods in Molecular Biology™.
[98] C. Brochier-Armanet,et al. Phylogenetic and genetic variation among Fe(II)-oxidizing acidithiobacilli supports the view that these comprise multiple species with different ferrous iron oxidation pathways. , 2011, Microbiology.
[99] A. Kappler,et al. Anaerobic Fe(II)-oxidizing bacteria show as resistance and immobilize as during Fe(III) mineral precipitation. , 2010, Environmental science & technology.
[100] E. González-Toril,et al. Acidithiobacillus ferrivorans, sp. nov.; facultatively anaerobic, psychrotolerant iron-, and sulfur-oxidizing acidophiles isolated from metal mine-impacted environments , 2009, Extremophiles.
[101] J. Bozzola. Conventional specimen preparation techniques for scanning electron microscopy of biological specimens. , 2007, Methods in molecular biology.
[102] D. Emerson,et al. Enrichment and isolation of iron-oxidizing bacteria at neutral pH. , 2005, Methods in enzymology.
[103] M. Dictor,et al. Oxidation of arsenite by Thiomonas strains and characterization of Thiomonas arsenivorans sp. nov. , 2005, Antonie van Leeuwenhoek.
[104] Fabienne Battaglia-Brunet,et al. Oxidation of iron, sulfur and arsenic in mine waters and mine wastes: an important role for novel Thiomonas spp. , 2004 .
[105] R. Downs,et al. The American Mineralogist crystal structure database , 2003 .
[106] Giovanni Rossi,et al. Biohydrometallurgy: a sustainable technology in evolution , 2003 .
[107] Jo McEntyre,et al. The NCBI Handbook , 2002 .
[108] K. Straub,et al. Iron metabolism in anoxic environments at near neutral pH. , 2001, FEMS microbiology ecology.
[109] W. Sand,et al. Polythionate metabolism in Thiomonas intermedia K12. , 1999 .
[110] H. Drake. Acetogenesis, Acetogenic Bacteria, and the Acetyl-CoA “Wood/Ljungdahl” Pathway: Past and Current Perspectives , 1994 .
[111] J. J. Morgan,et al. Aquatic Chemistry: Chemical Equilibria and Rates in Natural Waters , 1970 .