Abergel C, Nitschke W, Malarte G, Bruschi M, Claverie JM, Giudiciorticoni MT (2003) The structure of Acidithiobacillus ferrooxidans c(4)-cytochrome: a model for complex-induced electron transfer tuning. Structure 11:547–555. https://doi.org/10.1016/s0969-2126(03)00072-8
CAS
Article
PubMed
Google Scholar
Agnès A, Céline BA, Barrie D, Violaine J, Hallberg KB (2011) Phylogenetic and genetic variation among Fe(II)-oxidizing acidithiobacilli supports the view that these comprise multiple species with different ferrous iron oxidation pathways. Microbiology 157:111–122
Google Scholar
Ai C, Liang Y, Miao B, Chen M, Zeng W, Qiu G (2018) Identification and analysis of a novel gene cluster involves in Fe2+ oxidation in Acidithiobacillus ferrooxidans ATCC 23270, a typical biomining acidophile. Curr Microbiol 75:818. https://doi.org/10.1007/s00284-018-1453-9
CAS
Article
PubMed
Google Scholar
Alcaraz LA, Donaire A (2010) Unfolding process of rusticyanin: evidence of protein aggregation. Eur J Biochem 271:4284–4292. https://doi.org/10.1111/j.1432-1033.2004.04368
Article
Google Scholar
Almárcegui RJ, Navarro CA, Paradela A, Albar JP, Von BD, Jerez CA (2014) Response to copper of Acidithiobacillus ferrooxidans ATCC 23270 grown in elemental sulfur. Res Microbiol 165:761–772. https://doi.org/10.1016/j.resmic.2014.07.005
CAS
Article
PubMed
Google Scholar
Amouric A, Appia-Ayme C, Yarzabal A, Bonnefoy V (2009) Regulation of the iron and sulfur oxidation pathways in the acidophilic Acidithiobacillus Ferrooxidans. Adv Mater Res 71–73:163–166
Google Scholar
Amouric A, Brochierarmanet C, Johnson DB, Bonnefoy V, Hallberg KB (2011) Phylogenetic and genetic variation among Fe(II)-oxidizing acidithiobacilli supports the view that these comprise multiple species with different ferrous iron oxidation pathways. Microbiology 157:111–122. https://doi.org/10.1099/mic.0.044537-0
CAS
Article
PubMed
Google Scholar
Appiaayme C, Guiliani N, Ratouchniak J, Bonnefoy V (1999) Characterization of an operon encoding two c-type cytochromes, an aa3-type cytochrome oxidase, and rusticyanin in Thiobacillus ferrooxidans ATCC 33020. Appl Environ Microbiol 65:4781–4787
CAS
Google Scholar
Appiaayme C, Bengrine A, Cavazza C, Giudiciorticoni MT, Bruschi M, Chippaux M, Bonnefoy V (2010) Characterization and expression of the co-transcribed cyc1 and cyc2 genes encoding the cytochrome c4 (c552) and a high-molecular-mass cytochrome c from Thiobacillus ferrooxidans ATCC 33020. Fems Microbiol Lett 167:171–177. https://doi.org/10.1016/S0378-1097(98)00385-1
Article
Google Scholar
Barrett ML et al (2006) Atomic resolution crystal structures, EXAFS, and quantum chemical studies of rusticyanin and its two mutants provide insight into its unusual properties. Biochemistry 45:2927–2939. https://doi.org/10.1021/bi052372w
CAS
Article
PubMed
Google Scholar
Bonnefoy V, Grail BM, Johnson DB (2018) Salt stress-induced loss of iron oxido-reduction activities and re-acquisition of this phenotype depend on the rus operon transcription in Acidithiobacillus ferridurans. Appl Environ Microbiol 84:e02795–02817. https://doi.org/10.1128/AEM.02795-17
Article
PubMed
PubMed Central
Google Scholar
Bouchal P, Zdrahal Z, Helanova S, Janiczek O, Hallberg KB, Mandl M (2010) Proteomic and bioinformatic analysis of iron- and sulfur-oxidizing Acidithiobacillus ferrooxidans using immobilized pH gradients mass spectrometry. Proteomics 6:4278–4285. https://doi.org/10.1002/pmic.200500719
CAS
Article
Google Scholar
Brasseur G, Bruscella P, Bonnefoy V, Lemesle-Meunier D (2002) The bc1 complex of the iron-grown acidophilic chemolithotrophic bacterium Acidithiobacillus ferrooxidans functions in the reverse but not in the forward direction: is there a second bc1 complex? Biochim Biophys Acta Bioenerg 1555:37–43. https://doi.org/10.1016/S0005-2728(02)00251-7
CAS
Article
Google Scholar
Breed AW, Dempers CJ, Searby GE, Gardner MN, Rawlings DE, Hansford GS (2015) The effect of temperature on the continuous ferrous-iron oxidation kinetics of a predominantly Leptospirillum ferrooxidans culture. Biotechnol Bioeng 65:44–53. https://doi.org/10.1002/(SICI)1097-0290(19991005)65:1%3C44::AID-BIT6%3E3.0.CO;2-V
Article
Google Scholar
Brito JA et al (2009) Structural and functional insights into sulfide: quinone oxidoreductase. Biochemistry 48:5613. https://doi.org/10.1021/bi9003827
CAS
Article
PubMed
Google Scholar
Bruscella P, Appia-Ayme C, Levicã nG, Ratouchniak J, Jedlicki E, Holmes DS, Bonnefoy V (2007) Differential expression of two bc1 complexes in the strict acidophilic chemolithoautotrophic bacterium Acidithiobacillus ferrooxidans suggests a model for their respective roles in iron or sulfur oxidation. Microbiology 153:102–110. https://doi.org/10.1099/mic.0.2006/000067-0
CAS
Article
PubMed
Google Scholar
Bryan CG, Davis-Belmar CS, Van WN, Fraser MK, Dew D, Rautenbach GF, Harrison STL (2012) The effect of CO2 availability on the growth, iron oxidation and CO2-fixation rates of pure cultures of Leptospirillum ferriphilum and Acidithiobacillus ferrooxidans. Biotechnol Bioeng 109:1693–1703. https://doi.org/10.1002/bit.24453
CAS
Article
PubMed
Google Scholar
Casimiro DR, Toy-Palmer A, Dyson HJ (1995) Gene synthesis, high-level expression, and mutagenesis of Thiobacillus ferrooxidans rusticyanin: His 85 is a ligand to the blue copper center. Biochemistry 34:6640. https://doi.org/10.1021/bi00020a009
CAS
Article
PubMed
Google Scholar
Castelle C, Guiral M, Malarte G, Ledgham F, Leroy G, Brugna M, Giudiciorticoni MT (2008) New iron-oxidizing/O2-reducing supercomplex spanning both inner and outer membranes, isolated from the extreme acidophile Acidithiobacillus ferrooxidans. J Biol Chem 283:25803–25811. https://doi.org/10.1074/jbc.M802496200
CAS
Article
PubMed
PubMed Central
Google Scholar
Cavazza C, Giudici-Orticoni MT, Nitschke W, Appia C, Bonnefoy V, Bruschi M (2010) Characterisation of a soluble cytochrome c4 isolated from Thiobacillus ferrooxidans. Eur J Biochem 242:308–314. https://doi.org/10.1111/j.1432-1033.1996.0308r.x
Article
Google Scholar
Ccorahuasanto R, Eca A, Abanto M, Guerra G, Ramírez P (2017) Physiological and comparative genomic analysis of Acidithiobacillus ferrivorans PQ33 provides psychrotolerant fitness evidence for oxidation at low temperature. Res Microbiol 168:482–492. https://doi.org/10.1016/j.resmic.2017.01.007
CAS
Article
Google Scholar
Chen P, Yan L, Wang Q, Li H (2013) Arsenic precipitation in the bioleaching of realgar using Acidithiobacillus ferrooxidans. J Appl Chem 2013:1–5
Google Scholar
Cheng J (2008) Sulfur-oxidation related doxDA operons in Acidithiobacillus ferrooxidans. Microbiology 35:1155–1170
Google Scholar
Cherney MM, Zhang Y, Solomonson M, Weiner JH, James MNG (2010) Crystal structure of sulfide: quinone oxidoreductase from Acidithiobacillus ferrooxidans: insights into sulfidotrophic respiration and detoxification. J Mol Biol 398:292–305
CAS
PubMed
Google Scholar
Chi A, Valenzuela L, Beard S, Mackey AJ, Shabanowitz J, Hunt DF, Jerez CA (2007) Periplasmic proteins of the extremophile Acidithiobacillus ferrooxidans: a high throughput proteomics analysis. Mol Cell Proteom 6:2239–2251
CAS
Google Scholar
Colmer AR, Hinkle ME (1947) The role of microorganisms in acid mine drainage: a preliminary report. Science 106(2751):253–256
CAS
PubMed
Google Scholar
Ferguson SJ, Ingledew WJ (2008) Energetic problems faced by micro-organisms growing or surviving on parsimonious energy sources and at acidic pH: I. Acidithiobacillus ferrooxidans as a paradigm. Biochim Biophys Acta Bioenerg 1777:1471–1479
CAS
Google Scholar
Findlay AJ, Kamyshny A (2017) Turnover rates of intermediate sulfur species (Sx
2–, S0, S2O3
2–, S4O6
2–, SO3
2–) in anoxic freshwater and sediments. Front Microbiol 8:2551–2566
PubMed
PubMed Central
Google Scholar
Giudici-Orticoni MT, Leroy G, Nitschke W, Bruschi M (2000) Characterization of a new dihemic c(4)-type cytochrome isolated from Thiobacillus ferrooxidans. Biochemistry 39:7205–7211
CAS
PubMed
Google Scholar
González-Arribas E, Falk M, Aleksejeva O, Bushnev S, Sebastián P, Feliu JM, Shleev S (2018) A conventional symmetric biosupercapacitor based on rusticyanin modified gold electrodes. J Electroanal Chem 816:253–258
Google Scholar
Harahuc L, Suzuki I (2001) Sulfite oxidation by iron-grown cells of Thiobacillus ferrooxidans at pH 3 possibly involves free radicals, iron, and cytochrome oxidase. Can J Microbiol 47:424–430
CAS
PubMed
Google Scholar
He H, Xia J, Huang G, Jiang HC, Tao XX, Zhao YD, He W (2011) Analysis of the elemental sulfur bio-oxidation by Acidithiobacillus ferrooxidans with sulfur K-edge XANES. World J Microbiol Biotechnol 27:1927–1931
CAS
Google Scholar
He S, Barco RA, Emerson D, Roden EE (2017) Comparative genomic analysis of neutrophilic iron(II) oxidizer genomes for candidate genes in extracellular electron transfer. Front Microbiol 8:1584–1601
PubMed
PubMed Central
Google Scholar
Hedrich S, Schlömann M, Johnson DB (2011) The iron-oxidizing proteobacteria. Microbiology 157:1551–1564
CAS
PubMed
Google Scholar
Hirose T, Suzuki H, Inagaki K, Tanaka H, Tano T, Sugio T (2014) Inhibition of sulfur use by sulfite ion in Thiobacillus ferrooxidans. J Agric Chem Soc Japan 55:2479–2484
Google Scholar
Holmes DS, Bonnefoy V (2007) Genetic and bioinformatic insights into iron and sulfur oxidation mechanisms of bioleaching organisms. Springer, Heidelberg
Google Scholar
Ilbert M, Bonnefoy V (2013) Insight into the evolution of the iron oxidation pathways. Biochim Biophys Acta Bioenerg 1827:161–175
CAS
Google Scholar
Jiang CY, Liu LJ, Guo X, You XY, Liu SJ, Poetsch A (2014) Resolution of carbon metabolism and sulfur-oxidation pathways of Metallosphaera cuprina Ar-4 via comparative proteomics. J Proteom 109:276–289
CAS
Google Scholar
Jonas P, Fabian M, Karin L, Bastian N, Reinhard M, Friedrich L, Arnulf K (2011) An extracellular tetrathionate hydrolase from the thermoacidophilic archaeon Acidianus Ambivalens with an activity optimum at pH 1. Front Microbiol 2:68–80
Google Scholar
Jong GAHD, Hazeu W, Bos P, Kuenen JG (2010) Isolation of the tetrathionate hydrolase from Thiobacillus Acidophilus. Fed Eur Biochem Soc 243:678–683
Google Scholar
Kanao T et al (2013) Crystallization and preliminary X-ray diffraction analysis of tetrathionate hydrolase from Acidithiobacillus ferrooxidans. Acta Crystallogr A 69:692–694
CAS
Google Scholar
Kanbi LD, Antonyuk S, Hough MA, Hall JF, Dodd FE, Hasnain SS (2002) Crystal structures of the Met148Leu and Ser86Asp mutants of rusticyanin from Thiobacillus ferrooxidans: insights into the structural relationship with the cupredoxins and the multi copper proteins. J Mol Biol 320:263–275
CAS
PubMed
Google Scholar
Kato S (2015) Biotechnological aspects of microbial extracellular electron transfer. Microb Environ 30:133–139
Google Scholar
Klatt JM, Polerecky L (2015) Assessment of the stoichiometry and efficiency of CO2 fixation coupled to reduced sulfur oxidation. Front Microbiol 6:484–503
PubMed
PubMed Central
Google Scholar
Kucera J, Pakostova E, Janiczek O, Mandl M (2015) Changes in Acidithiobacillus ferrooxidans ability to reduce ferric iron by elemental sulfur. Adv Mater Res 1130:97–100
Google Scholar
Kucera J, Pakostova E, Lochman J, Janiczek O, Mandl M (2016a) Are there multiple mechanisms of anaerobic sulfur oxidation with ferric iron in Acidithiobacillus ferrooxidans? Res Microbiol 167:357–366
CAS
PubMed
Google Scholar
Kucera J, Sedo O, Potesil D, Janiczek O, Zdrahal Z, Mandl M (2016b) Comparative proteomic analysis of sulfur-oxidizing Acidithiobacillus ferrooxidans CCM 4253 cultures having lost the ability to couple anaerobic elemental sulfur oxidation with ferric iron reduction. Res Microbiol 167:587–594
CAS
PubMed
Google Scholar
Kucera J, Janiczek O, Smoldas J, Mandl M (2017) Proteins binding to immobilized rusticyanin detected by affinity chromatography. Solid State Phenom 262:344–349
Google Scholar
Levican G, Bonnefoy V, Holmes D, Jedlicki E, Lemesle-Meunier D (2004) Apparent redundancy of electron transfer pathways via bc(1) complexes and terminal oxidases in the extremophilic chemolithoautotrophic Acidithiobacillus ferrooxidans. Biochimica Biophysica Acta Bioenerg 1656:114–126
Google Scholar
Levicán G, Bruscella P, Guacunano M, Inostroza C, Bonnefoy V, Holmes DS, Jedlicki E (2002) Characterization of the petI and res operons of Acidithiobacillus ferrooxidans. J Bacteriol 184:1498–1501
PubMed
PubMed Central
Google Scholar
Li Y, Li H (2014) Type IV pili of Acidithiobacillus ferrooxidans can transfer electrons from extracellular electron donors. J Basic Microbiol 54:226–231
CAS
PubMed
Google Scholar
Liu W, Lin J, Pang X, Cui S, Mi S, Lin J (2010) Overexpression of rusticyanin in Acidithiobacillus ferrooxidans ATCC19859 increased Fe(II) oxidation activity. Curr Microbiol 62:320–324
PubMed
Google Scholar
Liu H et al (2011) The co-culture of Acidithiobacillus ferrooxidans and Acidiphilium acidophilum enhances the growth, iron oxidation, and CO2 fixation. Arch Microbiol 193:857–866
CAS
PubMed
Google Scholar
Liu J, Qian L, Zheng C (2013a) Biogenesis and transfer of iron-sulfur clusters from Acidithiobacillus ferrooxidans. In: International biohydrometallurgy symposium pp 198–201
Liu Y, Guo S, Yu R, Ji J, Qiu G (2013b) HdrC2 from Acidithiobacillus ferrooxidans owns two iron-sulfur binding motifs but binds only one variable cluster between [4Fe-4S] and [3Fe-4S]. Curr Microbiol 66:88–95
PubMed
Google Scholar
Liu W, Lin J, Pang X, Mi S, Cui S, Lin J (2014a) Increases of ferrous iron oxidation activity and arsenic stressed cell growth by overexpression of Cyc2 in Acidithiobacillus ferrooxidans ATCC19859. Biotechnol Appl Biochem 60:623–628
Google Scholar
Liu Y, Guo S, Yu R, Zou K, Qiu G (2014b) A new cytoplasmic monoheme cytochrome c from Acidithiobacillus ferrooxidans involved in sulfur oxidation. Curr Microbiol 68:285–292
CAS
PubMed
Google Scholar
Luo H, Shen L, Yin H, Li Q, Chen Q, Luo Y, Liao L, Qiu G, Liu X (2009) Comparative genomic analysis of Acidithiobacillus ferrooxidans strains using the A. ferrooxidans ATCC 23270 whole-genome oligonucleotide microarray Canadian. J Microbiol 55:587–598
CAS
Google Scholar
Maluckov BS, Mitrić MN (2018) Electrochemical behavior of pyrite in sulfuric acid in presence of amino acids belonging to the amino acid sequence of rusticyanin. Bioelectrochemistry 123:112–118
CAS
PubMed
Google Scholar
Mangold S, Valdés J, Holmes DS, Dopson M (2011) Sulfur metabolism in the extreme acidophile Acidithiobacillus Caldus. Front Microbiol 2:17–35
CAS
PubMed
PubMed Central
Google Scholar
Mei K, Nogami S, Kanao T, Takada J, Kamimura K (2013) Tetrathionate-forming thiosulfate dehydrogenase from the acidophilic, chemolithoautotrophic bacterium Acidithiobacillus ferrooxidans. Appl Environ Microbiol 79:113–120
Google Scholar
Mo H et al (2011) Ferric reductase activity of the ArsH protein from Acidithiobacillus ferrooxidans. J Microbiol Biotechnol 21:464–469
CAS
PubMed
Google Scholar
Moinier D, Byrne D, Amouric AS, Bonnefoy V (2013) How the RegBA Redox responding system controls iron and sulfur oxidation in Acidithiobacillus ferrooxidans. Adv Mater Res 825:186–189
Google Scholar
Moinier D, Byrne D, Amouric A, Bonnefoy V (2017) The Global redox responding RegB/RegA signal transduction system regulates the genes involved in ferrous iron and inorganic sulfur compound oxidation of the acidophilic Acidithiobacillus ferrooxidans. Front Microbiol 8:1277–1293
PubMed
PubMed Central
Google Scholar
Morton NM et al (2016) Genetic identification of thiosulfate sulfurtransferase as an adipocyte-expressed antidiabetic target in mice selected for leanness. Nat Med 22:771–779
CAS
PubMed
PubMed Central
Google Scholar
Navarro CA, Von BD, MartãNez-Bussenius C, Castillo RA, Jerez CA (2016) Cytoplasmic CopZ-Like protein and periplasmic rusticyanin and AcoP proteins as possible copper resistance determinants in Acidithiobacillus ferrooxidans ATCC 23270. Appl Environ Microbiol 82:1015–1022
CAS
PubMed
PubMed Central
Google Scholar
Neale C, Bennett WF, Tieleman DP, Pomès R (2011) Statistical convergence of equilibrium properties in simulations of molecular solutes embedded in lipid bilayers. J Chem Theory Comput 7:4175–4189
CAS
PubMed
Google Scholar
Norris PR, Laigle L, Slade S (2018) Cytochromes in anaerobic growth of. Acidithiobacillus ferrooxidans. Microbiology 164:383–394
CAS
PubMed
Google Scholar
Oetiker N et al (2018) Possible role ofenvelope components in the extreme copper resistance of the biomining Acidithiobacillus ferrooxidans. Genes 9:347–362
PubMed Central
Google Scholar
Ouyang J, Chen X (2009) Reserch progresses in ferrous oxidation system of Acidithiobacillus ferrooxidans. Biotechnol Bull 19:46–49
Google Scholar
Ouyang J, Guo W, Li B, Li G, Zhang H, Chen X (2013) Proteomic analysis of differential protein expression in Acidithiobacillus ferrooxidans cultivated in high potassium concentration. Microbiol Res 168:455–460
CAS
PubMed
Google Scholar
Pakostova E, Mandl M, Pokorna BO, Diviskova E, Lojek A (2013) Cellular ATP changes in Acidithiobacillus ferrooxidans cultures oxidizing ferrous iron and elemental sulfur. Geomicrobiol J 30:1–7
CAS
Google Scholar
Panyushkina AE, Tsaplina IA, Kondrat’Eva TF, Belyi AV, Bulaev AG (2018) Physiological and morphological characteristics of acidophilic bacteria Leptospirillum ferriphilum and Acidithiobacillus thiooxidans, members of a chemolithotrophic. Microb Consort Microbiol 87:326–338
CAS
Google Scholar
Paulino LC, de Mello MP, Ottoboni LM (2015) Differential gene expression in response to copper in Acidithiobacillus ferrooxidans analyzed by RNA arbitrarily primed polymerase chain reaction. Electrophoresis 23:520–527
Google Scholar
Pyne P, Alam M, Rameez MJ, Mandal S, Sar A, Mondal N, Debnath U, Mathew B, Misra AK (2018) Homologs from sulfur oxidation (Sox) and methanol dehydrogenation (Xox) enzyme systems collaborate to give rise to a novel pathway of chemolithotrophic tetrathionate oxidation. Mol Microbiol 109:1–23
Google Scholar
Qian L, Zheng C, Liu J (2013) Characterization of iron-sulfur cluster assembly protein IscA from Acidithiobacillus ferrooxidans. Biochemistry 78:244–251
CAS
PubMed
Google Scholar
Quatrini R et al (2006) Insights into the iron and sulfur energetic metabolism of Acidithiobacillus ferrooxidans by microarray transcriptome profiling. Hydrometallurgy 83:263–272
CAS
Google Scholar
Quatrini R, Appia-Ayme C, Denis Y, Jedlicki E, Holmes DS, Bonnefoy V (2009) Extending the models for iron and sulfur oxidation in the extreme acidophile Acidithiobacillus ferrooxidans. BMC Genom 10:394–413. https://doi.org/10.1186/1471-2164-10-394
CAS
Article
Google Scholar
Ramírez P, Guiliani N, Valenzuela L, Beard S, Jerez CA (2004) Differential protein expression during growth of Acidithiobacillus ferrooxidans on ferrous iron, sulfur compounds or metal sulfides. Appl Environ Microbiol 70:4491–4498
PubMed
PubMed Central
Google Scholar
Robin S, Arese M, Forte E, Sarti P, Kolaj-Robin O, Giuffrè A, Soulimane T (2014) Functional dissection of the multi-domain di-heme ctochrome c550 from Thermus thermophilus. PLoS ONE 8:e55129–e55140
Google Scholar
Santana MM, Gonzalez JM, Clara MI (2016) Inferring pathways leading to organic-sulfur mineralization in the Bacillales. Crit Rev Microbiol 42:1–15
Google Scholar
Song JL, Jiang CY, Liu SJ (2015) Insight into the sulfur metabolism by thermoacidophilic archaeon Metallosphaera cuprina with genomic, proteomic and biochemical tools. Adv Mater Res 1130:145–148
Google Scholar
Sugio T, Tano T, Imai K (2006) Isolation and some properties of two kinds of cytochrome c oxidase from iron-grown Thiobacillus ferrooxidans. J Agric Chem Soc Jpn 45:1791–1799
Google Scholar
Sugio T, Taha TM, Kanao T, Takeuchi F (2007) Increase in Fe2+-Producing activity during growth of Acidithiobacillus ferrooxidans ATCC23270 on Sulfur. J Agric Chem Soc Jpn 71:2663–2669
CAS
Google Scholar
Sugio T, Ako A, Takeuchi F (2010) Sulfite oxidation catalyzed by aa(3)-type cytochrome c oxidase in Acidithiobacillus ferrooxidans. J Agric Chem Soc Jpn 74:2242–2247
CAS
Google Scholar
Sugio T, Fujii M, Ninomiya Y, Kanao T, Negishi A, Takeuchi F (2014a) Reduction of Hgwith reduced mammalian cytochrome by cytochrome oxidase purified from a mercury-resistant strain, MON-1. Biosci Biotechnol Biochem 72:1756–1763
Google Scholar
Sugio T, Taha TM, Kanao T, Takeuchi F (2014b) Increase in Fe-producing activity during growth of ATCC23270 on sulfur. Biosci Biotechnol Biochem. https://doi.org/10.1271/bbb.70253
Article
Google Scholar
Sun J, Yu RL, Miao L, Zhong DL, Liu J, Gu GH (2011) Electrochemical mechanism of rusticyanin (Rus.) isolated from A. ferrooxidans measured by Rus.-ZnS-QDs/L-Cys/Au electrode. J Cent South Univ 18(5):1389–1394
CAS
Google Scholar
Taha MTM (2009) Involvement of iron oxidation- and iron-reduction-enzyme systems in sulfur oxidation of iron-oxidizing bacterium Acidithiobacillus ferrooxidans. China Occup Med 27:3892–3895
Google Scholar
Taha TM, Kanao T, Takeuchi F, Sugio T (2007) Involvement of ironoxidation enzyme system in sulfur oxidation of Acidithiobacillus ferrooxidans ATCC 23270. Adv Mater Res 20–21:443–446
Google Scholar
Tu Z, Guo C, Zhang T, Lu G, Wan J, Liao C, Dang Z (2017) Investigation of intermediate sulfur species during pyrite oxidation in the presence and absence of Acidithiobacillus ferrooxidans. Hydrometallurgy 167:58–65
CAS
Google Scholar
Valdés J et al (2008) Acidithiobacillus ferrooxidans metabolism: from genome sequence to industrial applications. BMC Genom 9:597–597
Google Scholar
Violaine B, Holmes DS (2012) Genomic insights into microbial iron oxidation and iron uptake strategies in extremely acidic environments. Environ Microbiol 14:1597–1611
Google Scholar
Walter RL, Ealick SE, Friedman AM, Proctor P, Shoham M (1996) Multiple wavelength anomalous diffraction (MAD) crystal structure of rusticyanin: a highly oxidizing cupredoxin with extreme acid stability. J Mol Biol 263:730–751
CAS
PubMed
Google Scholar
Wang H, Liu S, Liu X, Li X, Wen Q, Lin J (2014) Identification and characterization of an ETHE1-like sulfur dioxygenase in extremely acidophilic Acidithiobacillus spp. Appl Microbiol Biotechnol 98:7511–7522
CAS
PubMed
Google Scholar
White GF, Edwards MJ, Gomez-Perez L, Richardson DJ, Butt JN, Clarke TA (2016) Chapter three-mechanisms of bacterial extracellular electron exchange. Adv Microb Physiol 68:87–138
CAS
PubMed
Google Scholar
Wu X, Liu L, Zhang Z, Deng F, Liu X (2014) Phylogenetic and genetic characterization of Acidithiobacillus strains isolated from different environments. World J Microbiol Biotechnol 30:3197–3209
PubMed
Google Scholar
Yarzã bA, Appia-Ayme C, Ratouchniak J, Bonnefoy V (2004) Regulation of the expression of the Acidithiobacillus ferrooxidans rus operon encoding two cytochromes c a cytochrome oxidase rusticyanin. Microbiology 150:2113–2123
Google Scholar
Yarzábal A, Brasseur G, Bonnefoy V (2002a) Cytochromes c of Acidithiobacillus ferrooxidans. Fems Microbiol Lett 209:189–195
PubMed
Google Scholar
Yarzábal A, Brasseur G, Ratouchniak J, Lund K, Lemeslemeunier D, Demoss JA, Bonnefoy V (2002b) The high-molecular-weight cytochrome c Cyc2 of Acidithiobacillus ferrooxidans is an outer membrane protein. J Bacteriol 184:313
PubMed
PubMed Central
Google Scholar
Yu Y (2010) Isolation and characterization of the petII promoter of Acidithiobacillus ferrooxidans. J Bacteriol 196:2255–2264
Google Scholar
Zeng J, Geng M, Liu Y, Zhao W, Xia L, Liu J, Qiu G (2007) Expression, purification and molecular modelling of the Iro protein from Acidithiobacillus ferrooxidans Fe-1 Protein. Exp Purifi 52:146–152
CAS
Google Scholar
Zhan Q, Ding Z, Cui L, Fan J, Wang W, Liu H (2016) Identification, characterization and expression of NK-lysin in Megalobrama amblycephala. J Fish China 40:1145–1155
Google Scholar
Zhang Y, Yang Y, Liu J, Qiu G (2013) Isolation and characterization of Acidithiobacillus ferrooxidans strain QXS-1 capable of unusual ferrous iron and. sulfur utilization. Hydrometallurgy 136:51–57
Google Scholar
Zhang Y, Cherney MM, Weiner JH (2014) P97 characterization, structure and mechanism of sulfide: quinone oxidoreductase (SQR) from Acidithiobacillus ferrooxidans. Nitric Oxide 39:45–57
Google Scholar
Zhang Y, Qadri A, Weiner JH (2015) The quinone-binding site of Acidithiobacillus ferrooxidans sulfide: quinone oxidoreductase controls both sulfide oxidation and quinone reduction. Biochem Cell Biol 94:1–12
Google Scholar
Zhang R, Wei D, Shen Y, Liu W, Lu T, Han C (2016) Catalytic effect of polyethylene glycol on sulfur oxidation in chalcopyrite bioleaching by Acidithiobacillus ferrooxidans. Miner Eng 95:74–78
CAS
Google Scholar
Zhang R, Hedrich S, Ostertag-Henning C, Schippers A (2018a) Effect of elevated pressure on ferric iron reduction coupled to sulfur oxidation by biomining microorganisms. Hydrometallurgy 178:215–223
CAS
Google Scholar
Zhang S, Yan L, Xing W, Chen P, Zhang Y, Wang W (2018b) Acidithiobacillus ferrooxidans and its potential application. Extremophiles 22:563–579
CAS
PubMed
Google Scholar
Zheng C et al (2009) Characterization and reconstitute of a [Fe4S4] adenosine 5′-phosphosulfate reductase from Acidithiobacillus ferrooxidans. Curr Microbiol 58:586–592
CAS
PubMed
Google Scholar
Zheng C et al (2018) Effects of cadmium exposure on expression of glutathione synthetase system genes in Acidithiobacillus ferrooxidans. Extremophiles 1–8:1431–0651
Google Scholar
Zhi-Guo HE, Yang YP, Zhou S, Yue-Hua HU, Zhong H (2014) Effect of pyrite, elemental sulfur and ferrous ions on EPS production by metal sulfide bioleaching microbes. Trans Nonferrous Met Soc China 24:1171–1178
Google Scholar