Selective removal of transition metals from acidic mine waters by novel consortia of acidophilic sulfidogenic bacteria
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[1] D. Barrie Johnson,et al. Pitfalls of passive mine water treatment , 2002 .
[2] D. Johnson,et al. Enumeration and Characterization of Acidophilic Microorganisms Isolated from a Pilot Plant Stirred-Tank Bioleaching Operation , 2003, Applied and Environmental Microbiology.
[3] M. Koschorreck. Microbial sulphate reduction at a low pH. , 2008, FEMS microbiology ecology.
[4] Piet N.L. Lens,et al. Environmental Technologies to Treat Sulphur Pollution: Principles and Engineering , 2000 .
[5] D. Watson,et al. Functional Diversity and Electron Donor Dependence of Microbial Populations Capable of U(VI) Reduction in Radionuclide-Contaminated Subsurface Sediments , 2008, Applied and Environmental Microbiology.
[6] B. Ollivier,et al. Desulfosporosinus acidiphilus sp. nov.: a moderately acidophilic sulfate-reducing bacterium isolated from acid mining drainage sediments , 2010, Extremophiles.
[7] Paul Edwards,et al. THE CWM RHEIDOL METAL MINES REMEDIATION PROJECT - PHASE 1 , 2007 .
[8] D. Johnson,et al. Microbiological and geochemical dynamics in simulated‐heap leaching of a polymetallic sulfide ore , 2008, Biotechnology and bioengineering.
[9] D. Johnson,et al. Production of Glycolic Acid by Chemolithotrophic Iron- and Sulfur-Oxidizing Bacteria and Its Role in Delineating and Sustaining Acidophilic Sulfide Mineral-Oxidizing Consortia , 2009, Applied and Environmental Microbiology.
[10] 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.
[11] D. Lane. 16S/23S rRNA sequencing , 1991 .
[12] H. Saiki,et al. Anaerobic Respiration Using Fe3+, S0, and H2 in the Chemolithoautotrophic Bacterium Acidithiobacillus ferrooxidans , 2002, Journal of bacteriology.
[13] D. B. Johnson,et al. Acidophilic microbial communities: Candidates for bioremediation of acidic mine effluents , 1995 .
[14] D. Johnson,et al. Sulfidogenesis and selective precipitation of metals at low pH mediated by Acidithiobacillus spp. and acidophilic sulfate-reducing bacteria , 2010 .
[15] M. Suidan,et al. Treatment of Groundwater Contaminated with PAHs, Gasoline Hydrocarbons, and Methyl tert-butyl Ether in a Laboratory Biomass-Retaining Bioreactor , 2006, Biodegradation.
[16] D Barrie Johnson,et al. The microbiology of acidic mine waters. , 2003, Research in microbiology.
[17] D. Johnson,et al. Geochemistry and microbiology of an impounded subterranean acidic water body at Mynydd Parys, Anglesey, Wales , 2004 .
[18] A. Sen,et al. Acidophilic sulphate reducing bacteria : candidates for bioremediation of acid mine drainage pollution , 2001 .
[19] D. Fortin,et al. Identification of sulfate-reducing bacteria in methylmercury-contaminated mine tailings by analysis of SSU rRNA genes. , 2009, FEMS microbiology ecology.
[20] D Barrie Johnson,et al. Acid mine drainage remediation options: a review. , 2005, The Science of the total environment.
[21] D. Nordstrom,et al. Advances in the Hydrogeochemistry and Microbiology of Acid Mine Waters , 2000 .
[22] H. Dijkman,et al. Biological treatment of acid mine drainage , 1999 .
[23] B. W. Bache. Aluminium mobilization in soils and waters , 1986, Journal of the Geological Society.
[24] D. Johnson,et al. Techniques for Detecting and Identifying Acidophilic Mineral-Oxidizing Microorganisms , 2007 .
[25] Martin Stratmann,et al. Iron corrosion by novel anaerobic microorganisms , 2004, Nature.
[26] W. Babel,et al. Bioremediation of acid mine water using facultatively methylotrophic metal-tolerant sulfate-reducing bacteria , 1997 .
[27] W. Wade,et al. Design and Evaluation of Useful Bacterium-Specific PCR Primers That Amplify Genes Coding for Bacterial 16S rRNA , 1998, Applied and Environmental Microbiology.
[28] E. Delong,et al. Culture-Dependent and Culture-Independent Characterization of Microbial Assemblages Associated with High-Temperature Petroleum Reservoirs , 2000, Applied and Environmental Microbiology.
[29] D. Johnson,et al. Microbial communities and geochemical dynamics in an extremely acidic, metal-rich stream at an abandoned sulfide mine (Huelva, Spain) underpinned by two functional primary production systems. , 2007, Environmental microbiology.
[30] Gengxin Zhang,et al. Metal Reduction at Low pH by a Desulfosporosinus species: Implications for the Biological Treatment of Acidic Mine Drainage , 2009 .
[31] P. Bos,et al. Energy Transduction by Anaerobic Ferric Iron Respiration in Thiobacillus ferrooxidans , 1991, Applied and environmental microbiology.
[32] B. Mattiasson,et al. Separation of heavy metals from water solutions at the laboratory scale , 2004, Biotechnology Letters.
[33] S. Kimura,et al. Sulfidogenesis in Low pH (3.8–4.2) Media by a Mixed Population of Acidophilic Bacteria , 2006, Biodegradation.
[34] M. Schlömann,et al. Population dynamics of iron-oxidizing communities in pilot plants for the treatment of acid mine waters. , 2009, Environmental science & technology.