235
Views
18
CrossRef citations to date
0
Altmetric
Original Article

Influence of hardness on the bioavailability of silver to a freshwater snail after waterborne exposure to silver nitrate and silver nanoparticles

, , , , &
Pages 918-927 | Received 27 Feb 2014, Accepted 16 Nov 2014, Published online: 13 Feb 2015

References

  • Baalousha M, Lead JR. 2013. Nanoparticle dispersity in toxicology. Nat Nanotechnol 8:308–9
  • Bianchini A, Wood CM. 2008. Does sulfide or water hardness protect against chronic silver toxicity in Daphnia magna? A critical assessment of the acute-to-chronic toxicity ratio for silver. Ecotoxicol Environ Safe 71:32–40
  • Cain DJ, Croteau MN, Fuller CC. 2013. Dietary bioavailability of Cu adsorbed to colloidal hydrous ferric oxide. Environ Sci Technol 47:2869–76
  • Campbell PGC. 1995. Interactions between trace metals and aquatic organisms: a critique of the free-ion activity model. In: Tessier A, Turner DR, eds. Metal Speciation and Bioavailability in Aquatic Systems. New York: Wiley, 45–102
  • Croteau MN, Luoma SN, Topping BR, Lopez CB. 2004. Stable metal isotopes reveal copper accumulation and less dynamics in the freshwater bivalve corbicula. Environ Sci Technol 38:5002–9
  • Croteau MN, Luoma SN, Pellet B. 2007. Determining metal assimilation efficiency in aquatic invertebrates using enriched stable metal isotope tracers. Aquat Toxicol 83:116–25
  • Croteau MN, Dybowska AD, Luoma SN, Valsami-Jones E. 2011a. A novel approach reveals that zinc oxide nanoparticles are bioavailable and toxic after dietary exposures. Nanotoxicology 5:79–90
  • Croteau MN, Misra SK, Luoma SN, Valsami-Jones E. 2011b. Silver bioaccumulation dynamics in a freshwater invertebrate after aqueous and dietary exposures to nanosized and ionic Ag. Environ Sci Technol 45:6600–7
  • Croteau MN, Dybowska AD, Luoma SN, Misra S, Jones E. 2014. Isotopically modified silver nanoparticles to assess nanosilver bioavailability and toxicity at environmentally relevant exposures. Environ Chem 11:247–56
  • El Badawy AM, Luxton TP, Silva RG, Scheckel KG, Suidan MT, Tolaymat TM. 2010. Impact of environmental conditions (pH, ionic strength and electrolyte type) on the surface charge and aggregation of silver nanoparticles suspensions. Environ Sci Technol 44:1260–6
  • Erickson RJ, Brooke LT, Kahl MD, Venter FV, Harting SL, Markee TP, Spehar RL. 1998. Effects of laboratory test conditions on the toxicity of silver to aquatic organisms. Environ Toxicol Chem 17:572–8
  • Fabrega J, Fawcett SR, Renshaw JC, Lead JR. 2009. Silver nanoparticle impact on bacterial growth: effect of pH, concentration and organic matter. Environ Sci Technol 43:7285–90
  • Fabrega J, Luoma SN, Tyler CR, Galloway TS, Lead JR. 2011. Silver nanoparticles: behaviour and effects in the aquatic environment. Environ Int 37:517–31
  • Gao J, Youn S, Hovsepyan A, Llaneza VL, Wang Y, Bitton G, Bonzongo JCJ. 2009. Dispersion and toxicity of selected manufactured nanomaterials in natural river water samples: effects of water chemical composition. Environ Sci Technol 43:3322–8
  • Gao J, Powers K, Wang Y, Zhou HY, Roberts SM, Moudgil BM, et al. 2012. Influence of Suwannee River humic acid on particle properties and toxicity of silver nanoparticles. Chemosphere 89:96–101
  • Glaser JA, Foerst DL, Mckee GD, Quave SA, Budde WL. 1981. Trace analyses for wastewaters. Environ Sci Technol 15:1426–35
  • Gottschalk F, Sonderer T, Scholz RW, Nowack B. 2009. Modeled environmental concentrations of engineered nanomaterials (TiO2, ZnO, Ag, CNT, Fullerenes) for different regions. Environ Sci Technol 43:9216–22
  • Gottschalk F, Sun TY, Nowack B. 2013. Environmental concentrations of engineered nanomaterials: review of modeling and analytical studies. Environ Pollut 181:287–300
  • Hadioui M, Leclerc S, Wilkinson KJ. 2013. Multimethod quantification of Ag+ release from nanosilver. Talanta 105:15–19
  • Hassler CS, Slaveykova VI, Wilkinson KJ. 2004. Some fundamental (and often overlooked) considerations underlying the free ion activity and biotic ligand models. Environ Toxicol Chem 23:283–91
  • Hiriart-Baer VP, Fortin C, Lee DY, Campbell PGC. 2006. Toxicity of silver to two freshwater algae, Chlamydomonas reinhardtii and Pseudokirchneriella subcapitata, grown under continuous culture conditions: influence of thiosulphate. Aquat Toxicol 78:136–48
  • Hogstrand C, Wood CM. 1998. Toward a better understanding of the bioavailability, physiology and toxicity of silver in fish: implications for water quality criteria. Environ Toxicol Chem 17:547–61
  • Jin X, Li MH, Wang JW, Marambio-Jones C, Peng FB, Huang XF, et al. 2010. High-throughput screening of silver nanoparticle stability and bacterial inactivation in aquatic media: influence of specific ions. Environ Sci Technol 44:7321–8
  • Karen DJ, Ownby DR, Forsythe BL, Bills TP, La Point TW, Cobb GB, Klaine SJ. 1999. Influence of water quality on silver toxicity to rainbow trout (Oncorhynchus mykiss), fathead minnows (Pimephales promelas) and water fleas (Daphnia magna). Environ Toxicol Chem 18:63–70
  • Khan FR, Misra SK, Bury NR, Smith BD, Rainbow PS, Luoma SN, Valsami-Jones E. 2014. Inhibition of potential uptake pathways for silver nanoparticles in the estuarine snail Peringia ulvae. Nanotoxicology. [Epub ahead of print]. doi:10.3109/17435390.2014.948519
  • Kvitek L, Panacek A, Soukupova J, Kolar M, Vecerova R, Prucek R, et al. 2008. Effect of surfactants and polymers on stability and antibacterial activity of silver nanoparticles (NPs). J Phys Chem C 112:5825–34
  • Lee BT, Ranville JF. 2012. The effect of hardness on the stability of citrate-stabilized gold nanoparticles and their uptake by Daphnia magna. J Hazard Mater 213:434–9
  • Li X, Lenhart JJ. 2012. Aggregation and dissolution of silver nanoparticles in natural surface water. Environ Sci Technol 46:5378–86
  • Lowry GV, Gregory KB, Apte SC, Lead JR. 2012. Transformations of nanomaterials in the environment. Environ Sci Technol 46:6893–9
  • Luoma SN. 2008. Silver nanotechnologies and the environment: old problems or new challenges. Project on Emerging Nanotechnologies, Publication 15. Washington DC
  • Luoma SN, Rainbow PS. 2005. Why is metal bioaccumulation so variable? Biodynamics as a unifying concept. Environ Sci Technol 39:1921–31
  • Luoma SN, Khan FR, Croteau MN. 2014. Bioavailability and bioaccumulation of metal based engineered nanomaterials in aquatic environments: concepts and processes. In: Lead J, Valsami-Jones E, eds. Frontiers of Nanoscience, Vol. 7. Amsterdam: Elsevier, 157–92
  • Mueller NC, Nowack B. 2008. Exposure modeling of engineered nanoparticles in the environment. Environ Sci Technol 42:4447–53
  • Navarro E, Piccapietra F, Wagner B, Marconi F, Kaegi R, Odzak N, et al. 2008. Toxicity of silver nanoparticles to Chlamydomonas reinhardtii. Environ Sci Technol 42:8959–64
  • Niyogi S, Wood CM. 2004. Biotic ligand model, a flexible tool for developing site-specific water quality guidelines for metals. Environ Sci Technol 38:6177–92
  • Nystrom P, Perez JR. 1998. Crayfish predation on the common pond snail (Lymnaea stagnalis): the effect of habitat complexity and snail size on foraging efficiency. Hydrobiologia 368:201–8
  • Pfleger V, Chatfield J. 1983. A Guide to Snails of Britain and Europe. London: The Hamlyn Publishing Group Ltd
  • Ratte HT. 1999. Bioaccumulation and toxicity of silver compounds: a review. Environ Toxicol Chem 18:89–108
  • Romer I, White TA, Baalousha M, Chipman K, Viant MR, Lead JR. 2011. Aggregation and dispersion of silver nanoparticles in exposure media for aquatic toxicity tests. J Chromatogr A 1218:4226–33
  • Shafer MM, Overdier JT, Armstong DE. 1998. Removal, partitioning, and fate of silver and other metals in wastewater treatment plants and effluent-receiving streams. Environ Toxicol Chem 17:630–41
  • Strong CR, Luoma SN. 1981. Variations in the correlation of body size with concentrations of Cu and Ag in the Bivalve Macoma balthica. Can J Fish Aquat Sci 38:1059–64
  • Tejamaya M, Romer I, Merrifield RC, Lead JR. 2012. Stability of citrate, PVP and PEG coated silver nanoparticles in ecotoxicology media. Environ Sci Technol 46:7011–17
  • US EPA. 2002. Methods for Measuring the Acute Toxicity of Effluents and Receiving Water to Freshwater and Marine Organisms. 5th ed. Washington, DC: Office of Water US EPA
  • Wang WX, Fisher NS. 1997. Modeling the influence of body size on trace element accumulation in the mussel Mytilus edulis. Mar Ecol Prog Ser 161:103–15

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.