Effects of environmentally relevant concentrations of mixtures of TiO2, ZnO and Ag ENPs on a river bacterial community

Chemosphere - Tập 230 - Trang 567-577 - 2019
Nathalia Londono1, Ariel R. Donovan2, Honglan Shi2,3, Matthew Geisler4, Yanna Liang5
1Department of Civil and Environmental Engineering, 1230 Lincoln Drive, Southern Illinois University, Carbondale, IL 62901, USA
2Department of Chemistry, Missouri University of Science and Technology, Rolla, MO, 65409, USA
3Center for Single Nanoparticle, Single Cell, and Single Molecule Monitoring (CS3M), Rolla, MO, 65409, USA
4Department of Plant Biology, Life Science II, Southern Illinois University, Carbondale, IL, 62901-6509, USA
5Department of Environmental and Sustainable Engineering, 1400 Washington Ave., University at Albany, State University of New York, Albany, NY 12222, USA

Tài liệu tham khảo

Aruoja, 2009, Toxicity of nanoparticles of CuO, ZnO and TiO2 to microalgae Pseudokirchneriella subcapitata, Sci. Total Environ., 407, 1461, 10.1016/j.scitotenv.2008.10.053 Bao, 2016, Characterization of silver nanoparticles internalized by Arabidopsis plants using single particle ICP-MS analysis, Front. Plant Sci., 7, 32, 10.3389/fpls.2016.00032 Barnes, 2010, The impact of zero-valent iron nanoparticles on a river water bacterial community, J. Hazard Mater., 184, 73, 10.1016/j.jhazmat.2010.08.006 Battin, 2009, Nanostructured TiO2: transport behavior and effects on aquatic microbial communities under environmental conditions, Environ. Sci. Technol., 43, 8098, 10.1021/es9017046 Bennett, 2011, Comparative photoactivity of CeO2, γ-Fe2O3, TiO2 and ZnO in various aqueous systems, Appl. Catal. B Environ., 102, 600, 10.1016/j.apcatb.2010.12.045 Bi, 2017, A formation water-based nutrient recipe for potentially increasing methane release from coal in situ, Fuel, 209, 498, 10.1016/j.fuel.2017.08.008 Bondarenko, 2013, Toxicity of Ag, CuO and ZnO nanoparticles to selected environmentally relevant test organisms and mammalian cells in vitro: a critical review, Arch. Toxicol., 87, 1181, 10.1007/s00204-013-1079-4 Bradford, 2009, Impact of silver nanoparticle contamination on the genetic diversity of natural bacterial assemblages in estuarine sediments, Environ. Sci. Technol., 43, 4530, 10.1021/es9001949 Caporaso, 2011, Global patterns of 16S rRNA diversity at a depth of millions of sequences per sample, Proc. Natl. Acad. Sci. Unit. States Am., 108, 4516, 10.1073/pnas.1000080107 Dan, 2016, Single particle ICP-MS method development for the determination of plant uptake and accumulation of CeO2 nanoparticles, Anal. Bioanal. Chem., 1 Dan, 2015, Measurement of titanium dioxide nanoparticles in sunscreen using single particle ICP-MS, PerkinElmer application note Dan, 2015, Characterization of gold nanoparticle uptake by tomato plants using enzymatic extraction followed by single-particle inductively coupled plasma–mass spectrometry analysis, Environ. Sci. Technol., 49, 3007, 10.1021/es506179e Dinesh, 2012, Engineered nanoparticles in the soil and their potential implications to microbial activity, Geoderma, 173, 19, 10.1016/j.geoderma.2011.12.018 Donovan, 2016, Detection of zinc oxide and cerium dioxide nanoparticles during drinking water treatment by rapid single particle ICP-MS methods, Anal. Bioanal. Chem., 1 Donovan, 2016, Single particle ICP-MS characterization of titanium dioxide, silver, and gold nanoparticles during drinking water treatment, Chemosphere, 144, 148, 10.1016/j.chemosphere.2015.07.081 Donovan, 2018, Fate of nanoparticles during alum and ferric coagulation monitored using single particle ICP-MS, Chemosphere, 195, 531, 10.1016/j.chemosphere.2017.12.116 Doolette, 2013, Transformation of PVP coated silver nanoparticles in a simulated wastewater treatment process and the effect on microbial communities, Chem. Cent. J., 7, 46, 10.1186/1752-153X-7-46 Dowd, 2008, Evaluation of the bacterial diversity in the feces of cattle using 16S rDNA bacterial tag-encoded FLX amplicon pyrosequencing (bTEFAP), BMC Microbiol., 8, 125, 10.1186/1471-2180-8-125 Edgar, 2010, Search and clustering orders of magnitude faster than BLAST, Bioinformatics, 26, 2460, 10.1093/bioinformatics/btq461 Edgar, 2011, UCHIME improves sensitivity and speed of chimera detection, Bioinformatics, 27, 2194, 10.1093/bioinformatics/btr381 Eduok, 2017, Aged-engineered nanoparticles effect on sludge anaerobic digestion performance and associated microbial communities, Sci. Total Environ., 609, 232, 10.1016/j.scitotenv.2017.07.178 Eduok, 2015, Insights into the effect of mixed engineered nanoparticles on activated sludge performance, FEMS (Fed. Eur. Microbiol. Soc.) Microbiol. Ecol., 91 Feckler, 2015, Photocatalytic properties of titanium dioxide nanoparticles affect habitat selection of and food quality for a key species in the leaf litter decomposition process, Environ. Pollut., 196, 276, 10.1016/j.envpol.2014.09.022 Frenk, 2013, Effect of metal oxide nanoparticles on microbial community structure and function in two different soil types, PLoS One, 8, 10.1371/journal.pone.0084441 García, 2012, Effect of cerium dioxide, titanium dioxide, silver, and gold nanoparticles on the activity of microbial communities intended in wastewater treatment, J. Hazard Mater., 199, 64, 10.1016/j.jhazmat.2011.10.057 Ge, 2011, Evidence for negative effects of TiO2 and ZnO nanoparticles on soil bacterial communities, Environ. Sci. Technol., 45, 1659, 10.1021/es103040t George, 2014, Differential effect of solar light in increasing the toxicity of silver and titanium dioxide nanoparticles to a fish cell line and zebrafish embryos, Environ. Sci. Technol., 48, 6374, 10.1021/es405768n Hartmann, 2010, Algal testing of titanium dioxide nanoparticles—testing considerations, inhibitory effects and modification of cadmium bioavailability, Toxicology, 269, 190, 10.1016/j.tox.2009.08.008 Hegde, 2016, Current understandings of toxicity, risks and regulations of engineered nanoparticles with respect to environmental microorganisms, Nanotechnology for Environmental Engineering, 1, 5, 10.1007/s41204-016-0005-4 Hegde, 2015, Environmental hazards and risks of nanomaterials, 357 Houšková, 2008, Photoactive materials prepared by homogeneous hydrolysis with thioacetamide: Part 2—TiO2/ZnO nanocomposites, J. Phys. Chem. Solids, 69, 1623, 10.1016/j.jpcs.2007.11.029 Hund-Rinke, 2006, Ecotoxic effect of photocatalytic active nanoparticles (TiO2) on algae and daphnids, Environ. Sci. Pollut. Control Ser., 13, 225, 10.1065/espr2006.06.311 Iswarya, 2015, Combined toxicity of two crystalline phases (anatase and rutile) of Titania nanoparticles towards freshwater microalgae: chlorella sp, Aquat. Toxicol., 161, 154, 10.1016/j.aquatox.2015.02.006 Jeong, 2014, Different susceptibilities of bacterial community to silver nanoparticles in wastewater treatment systems, J. Environ. Sci. Health - Part A Toxic/Hazard. Subst. Environ. Eng., 49, 685, 10.1080/10934529.2014.865454 Johari, 2014, Does physical production of nanoparticles reduce their ecotoxicity? A case of lower toxicity of AgNPs produced by laser ablation to zebrafish (Danio rerio), International Journal of Aquatic Biology, 2, 188 Judy, 2015, Nanomaterials in biosolids inhibit nodulation, shift microbial community composition, and result in increased metal uptake relative to bulk/dissolved metals, Environ. Sci. Technol., 49, 8751, 10.1021/acs.est.5b01208 Kaegi, 2011, Behavior of metallic silver nanoparticles in a pilot wastewater treatment plant, Environ. Sci. Technol., 45, 3902, 10.1021/es1041892 Kägi, 2008, Synthetic TiO2 nanoparticle emission from exterior facades into the aquatic environment, Environ. Pollut., 156, 233, 10.1016/j.envpol.2008.08.004 Kiser, 2009, Titanium nanomaterial removal and release from wastewater treatment plants, Environ. Sci. Technol., 43, 6757, 10.1021/es901102n Kumar, 2014, Inhibition of sulfate reducing bacteria in aquifer sediment by iron nanoparticles, Water Res., 51, 64, 10.1016/j.watres.2013.09.042 Kumar, 2011, Perturbation of an arctic soil microbial community by metal nanoparticles, J. Hazard Mater., 190, 816, 10.1016/j.jhazmat.2011.04.005 Kumar, 2012, Influence of a nanoparticle mixture on an arctic soil community, Environ. Toxicol. Chem., 31, 131, 10.1002/etc.721 Lawrence, 2012, Monitoring the fate of copper nanoparticles in river biofilms using scanning transmission X-ray microscopy (STXM), Chem. Geol., 329, 18, 10.1016/j.chemgeo.2011.07.013 Lee, 2014, Nanoparticle size detection limits by single particle ICP-MS for 40 elements, Environ. Sci. Technol., 48, 10291, 10.1021/es502422v Lee, 2013, Effects of zinc oxide and titanium dioxide nanoparticles on green algae under visible, UVA, and UVB irradiations: no evidence of enhanced algal toxicity under UV pre-irradiation, Chemosphere, 91, 536, 10.1016/j.chemosphere.2012.12.033 Liu, 2010, Ion release kinetics and particle persistence in aqueous nano-silver colloids, Environ. Sci. Technol., 44, 2169, 10.1021/es9035557 Londono, 2017, Impact of TiO2 and ZnO nanoparticles on an aquatic microbial community: effect at environmentally relevant concentrations, Nanotoxicology, 1 Mitrano, 2014, Tracking dissolution of silver nanoparticles at environmentally relevant concentrations in laboratory, natural, and processed waters using single particle ICP-MS (spICP-MS), Environ. Sci.: Nano, 1, 248 Mitrano, 2012, Detecting nanoparticulate silver using single-particle inductively coupled plasma–mass spectrometry, Environ. Toxicol. Chem., 31, 115, 10.1002/etc.719 Osborne, 2011, The influence of sampling strategies and spatial variation on the detected soil bacterial communities under three different land-use types, FEMS (Fed. Eur. Microbiol. Soc.) Microbiol. Ecol., 78, 70, 10.1111/j.1574-6941.2011.01105.x Piccinno, 2012, Industrial production quantities and uses of ten engineered nanomaterials in Europe and the world, J. Nanoparticle Res., 14, 1, 10.1007/s11051-012-1109-9 Piccinno, 2012, Industrial production quantities and uses of ten engineered nanomaterials in Europe and the world, J. Nanoparticle Res., 14, 1109, 10.1007/s11051-012-1109-9 Reed, 2016, Potential environmental impacts and antimicrobial efficacy of silver-and nanosilver-containing textiles, Environ. Sci. Technol., 50, 4018, 10.1021/acs.est.5b06043 Schloss, 2009, Introducing mothur: open-source, platform-independent, community-supported software for describing and comparing microbial communities, Appl. Environ. Microbiol., 75, 7537, 10.1128/AEM.01541-09 Shah, 2009, Influence of metal nanoparticles on the soil microbial community and germination of lettuce seeds, Water Air Soil Pollut., 197, 143, 10.1007/s11270-008-9797-6 Sheng, 2011, Effects of silver nanoparticles on wastewater biofilms, Water Res., 45, 6039, 10.1016/j.watres.2011.08.065 Simonet, 2009, Monitoring nanoparticles in the environment, Anal. Bioanal. Chem., 393, 17, 10.1007/s00216-008-2484-z Simonin, 2017, Toxicity of TiO2 nanoparticles on soil nitrification at environmentally relevant concentrations: lack of classical dose-response relationships, Nanotoxicology, 11, 247, 10.1080/17435390.2017.1290845 Simonin, 2015, Impact of engineered nanoparticles on the activity, abundance, and diversity of soil microbial communities: a review, Environ. Sci. Pollut. Control Ser., 22, 13710, 10.1007/s11356-015-4171-x Smulders, 2015, Toxicity of nanoparticles embedded in paints compared to pristine nanoparticles, in vitro study, Toxicol. Lett., 232, 333, 10.1016/j.toxlet.2014.11.030 Team, 2014 Zhang, 2015, Characterizing microbial communities dedicated for conversion of coal to methane in situ and ex situ, Int. J. Coal Geol., 146, 145, 10.1016/j.coal.2015.05.001