Effects of different dissolved organic matter on microbial communities and arsenic mobilization in aquifers.
暂无分享,去创建一个
Yan-xin Wang | Ping Li | Zhou Jiang | Yanhong Wang | Han Liu | Helin Wang | Guanglong Zhang | Yu Cheng
[1] Ping Li,et al. Arsenic mobilization affected by extracellular polymeric substances (EPS) of the dissimilatory iron reducing bacteria isolated from high arsenic groundwater. , 2020, The Science of the total environment.
[2] Chen He,et al. Molecular evidence of arsenic mobility linked to biodegradable organic matter. , 2020, Environmental science & technology.
[3] P. Zhang,et al. Sorption and molecular fractionation of biochar-derived dissolved organic matter on ferrihydrite. , 2020, Journal of hazardous materials.
[4] J. Lloyd,et al. Linking microbial community composition to hydrogeochemistry in the western Hetao Basin: Potential importance of ammonium as an electron donor during arsenic mobilization. , 2020, Environment international.
[5] C. Jing,et al. A review of arsenic interfacial geochemistry in groundwater and the role of organic matter. , 2019, Ecotoxicology and environmental safety.
[6] Jun Lin,et al. The effects of biochar as the electron shuttle on the ferrihydrite reduction and related arsenic (As) fate. , 2019, Journal of hazardous materials.
[7] T. Hori,et al. Soil Microbial Communities Involved in Reductive Dissolution of Arsenic from Arsenate-laden Minerals with Different Carbon Sources. , 2019, Environmental science & technology.
[8] Pinaki Sar,et al. Role of cost-effective organic carbon substrates in bioremediation of acid mine drainage–impacted soil of Malanjkhand Copper Project, India: a biostimulant for autochthonous microbial populations , 2019, Environmental Science and Pollution Research.
[9] Ping Li,et al. Arsenic mobilization in a high arsenic groundwater revealed by metagenomic and Geochip analyses , 2019, Scientific Reports.
[10] Andreas C Scheinost,et al. Complexation of arsenite, arsenate, and monothioarsenate with oxygen-containing functional groups of natural organic matter: An XAS Study. , 2019, Environmental science & technology.
[11] Yong-guan Zhu,et al. Coupling metabolisms of arsenic and iron with humic substances through microorganisms in paddy soil. , 2019, Journal of hazardous materials.
[12] Qingbiao Li,et al. The Role of Low-Molecular-Weight Organic Carbons in Facilitating the Mobilization and Biotransformation of As(V)/Fe(III) from a Realgar Tailing Mine Soil , 2018 .
[13] Fangbai Li,et al. Roles of different active metal-reducing bacteria in arsenic release from arsenic-contaminated paddy soil amended with biochar. , 2018, Journal of hazardous materials.
[14] S. Soda,et al. Effect of extracellular electron shuttles on arsenic-mobilizing activities in soil microbial communities. , 2018, Journal of hazardous materials.
[15] Jizhong Zhou,et al. Analysis of the functional gene structure and metabolic potential of microbial community in high arsenic groundwater. , 2017, Water research.
[16] S. Fazi,et al. Arsenic-related microorganisms in groundwater: a review on distribution, metabolic activities and potential use in arsenic removal processes , 2017, Reviews in Environmental Science and Bio\/technology.
[17] J. Jastrow,et al. The importance of anabolism in microbial control over soil carbon storage , 2017, Nature Microbiology.
[18] C. Demergasso,et al. First draft genome sequence of a strain from the genus Fusibacter isolated from Salar de Ascotán in Northern Chile , 2017, Standards in genomic sciences.
[19] Yong-guan Zhu,et al. Linking Genes to Microbial Biogeochemical Cycling: Lessons from Arsenic. , 2017, Environmental science & technology.
[20] H. Moon,et al. Effect of the redox dynamics on microbial-mediated As transformation coupled with Fe and S in flow-through sediment columns. , 2017, Journal of hazardous materials.
[21] Yan-xin Wang,et al. Microbial Community of High Arsenic Groundwater in Agricultural Irrigation Area of Hetao Plain, Inner Mongolia , 2016, Front. Microbiol..
[22] M. Doebeli,et al. Decoupling function and taxonomy in the global ocean microbiome , 2016, Science.
[23] Fangbai Li,et al. Dynamics of the microbial community and Fe(III)-reducing and dechlorinating microorganisms in response to pentachlorophenol transformation in paddy soil. , 2016, Journal of hazardous materials.
[24] Yuanpeng Wang,et al. Enhanced bioreduction of iron and arsenic in sediment by biochar amendment influencing microbial community composition and dissolved organic matter content and composition. , 2016, Journal of hazardous materials.
[25] H. Westerhoff,et al. Iron Cycling Potentials of Arsenic Contaminated Groundwater in Bangladesh as Revealed by Enrichment Cultivation , 2016 .
[26] Bing Li,et al. Evidence of arsenic mobilization mediated by an indigenous iron reducing bacterium from high arsenic groundwater aquifer in Hetao Basin of Inner Mongolia, China , 2016 .
[27] A. Boyce,et al. Tracing organic matter composition and distribution and its role on arsenic release in shallow Cambodian groundwaters , 2016 .
[28] J. Xing,et al. Bacterial communities in haloalkaliphilic sulfate-reducing bioreactors under different electron donors revealed by 16S rRNA MiSeq sequencing. , 2015, Journal of hazardous materials.
[29] D. Nemergut,et al. Dissolved Organic Matter Quality in a Shallow Aquifer of Bangladesh: Implications for Arsenic Mobility. , 2015, Environmental science & technology.
[30] D. Sparks,et al. Influence of Coprecipitated Organic Matter on Fe2+(aq)-Catalyzed Transformation of Ferrihydrite: Implications for Carbon Dynamics. , 2015, Environmental science & technology.
[31] C. Noiriel,et al. Arsenic behavior in river sediments under redox gradient: a review. , 2015, The Science of the total environment.
[32] B. Kocar,et al. Arsenic mobility during flooding of contaminated soil: the effect of microbial sulfate reduction. , 2014, Environmental science & technology.
[33] Yan-xin Wang,et al. Bacterial Diversity and Community Structure in High Arsenic Aquifers in Hetao Plain of Inner Mongolia, China , 2014 .
[34] M. Berg,et al. Groundwater Arsenic Contamination Throughout China , 2013, Science.
[35] Robert C. Edgar,et al. UPARSE: highly accurate OTU sequences from microbial amplicon reads , 2013, Nature Methods.
[36] R. Wanty,et al. Pathways of coupled arsenic and iron cycling in high arsenic groundwater of the Hetao basin, Inner Mongolia, China: an iron isotope approach , 2013 .
[37] Tran V. Long,et al. Groundwater arsenic concentrations in Vietnam controlled by sediment age , 2012 .
[38] J. Sharp,et al. Dissolved Organic Carbon Influences Microbial Community Composition and Diversity in Managed Aquifer Recharge Systems , 2012, Applied and Environmental Microbiology.
[39] J. Gescher,et al. Dissimilatory Reduction of Extracellular Electron Acceptors in Anaerobic Respiration , 2011, Applied and Environmental Microbiology.
[40] S. Salzberg,et al. FLASH: fast length adjustment of short reads to improve genome assemblies , 2011, Bioinform..
[41] S. Kelly,et al. Extracellular reduction of uranium via Geobacter conductive pili as a protective cellular mechanism , 2011, Proceedings of the National Academy of Sciences.
[42] Yong Kong,et al. Btrim: A fast, lightweight adapter and quality trimming program for next-generation sequencing technologies , 2011, Genomics.
[43] B. Zhang,et al. Control of organic and iron colloids on arsenic partition and transport in high arsenic groundwaters in the Hetao basin, Inner Mongolia , 2011 .
[44] Guangliang Liu,et al. Complexation of arsenite with humic acid in the presence of ferric iron. , 2011, Environmental science & technology.
[45] A. Kappler,et al. Formation of binary and ternary colloids and dissolved complexes of organic matter, Fe and As. , 2010, Environmental science & technology.
[46] Y. Igarashi,et al. Identification of iron-reducing microorganisms in anoxic rice paddy soil by 13C-acetate probing , 2010, The ISME Journal.
[47] J. Lloyd,et al. The role of indigenous microorganisms in the biodegradation of naturally occurring petroleum, the reduction of iron, and the mobilization of arsenite from west bengal aquifer sediments. , 2009, Journal of environmental quality.
[48] H. Griffiths,et al. Soil priming by sugar and leaf-litter substrates: A link to microbial groups , 2009 .
[49] S. Soda,et al. Removal of arsenic from contaminated soils by microbial reduction of arsenate and quinone. , 2008, Environmental science & technology.
[50] A. Stams,et al. The ecology and biotechnology of sulphate-reducing bacteria , 2008, Nature Reviews Microbiology.
[51] J. Tiedje,et al. Naïve Bayesian Classifier for Rapid Assignment of rRNA Sequences into the New Bacterial Taxonomy , 2007, Applied and Environmental Microbiology.
[52] J. Lloyd,et al. Molecular Analysis of Arsenate-Reducing Bacteria within Cambodian Sediments following Amendment with Acetate , 2006, Applied and Environmental Microbiology.
[53] R. Oremland,et al. Dissimilatory Arsenate and Sulfate Reduction in Sediments of Two Hypersaline, Arsenic-Rich Soda Lakes: Mono and Searles Lakes, California , 2006, Applied and Environmental Microbiology.
[54] C. Mulligan,et al. Effect of natural organic matter on arsenic release from soils and sediments into groundwater , 2006, Environmental geochemistry and health.
[55] Markus Bauer,et al. Mobilization of arsenic by dissolved organic matter from iron oxides, soils and sediments. , 2006, The Science of the total environment.
[56] Kees Roest,et al. Occurrence of methanogenesis during start-up of a full-scale synthesis gas-fed reactor treating sulfate and metal-rich wastewater. , 2006, Water research.
[57] Debashis Chatterjee,et al. Role of metal-reducing bacteria in arsenic release from Bengal delta sediments , 2004, Nature.
[58] P. Dixon. VEGAN, a package of R functions for community ecology , 2003 .
[59] John F. Stolz,et al. The Ecology of Arsenic , 2003, Science.
[60] E. Matzner,et al. Biodegradation of soil-derived dissolved organic matter as related to its properties , 2003 .
[61] J. Suflita,et al. Characterization of Two Subsurface H2-Utilizing Bacteria, Desulfomicrobium hypogeium sp. nov. and Acetobacterium psammolithicumsp. nov., and Their Ecological Roles , 1999, Applied and Environmental Microbiology.
[62] Q. Ma,et al. Influences of size-fractionated humic acids on arsenite and arsenate complexation and toxicity to Daphnia magna. , 2017, Water research.
[63] M. Gomez,et al. Effects of nutrient and sulfate additions on As mobility in contaminated soils: a laboratory column study. , 2015, Chemosphere.
[64] F. Widdel,et al. Gram-Negative Mesophilic Sulfate-Reducing Bacteria , 1992 .