Agriculture Reference
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Lomer MC, Thompson RP, Powell JJ (2002) Fine and ultra- fine particles of the diet: influence on
the mucosal immune response and association with Crohn
s disease. Proc Nutr Soc 61:123-
'
130
Lovern SB, Klaper R (2006) Behavioral and physiological changes in Daphnia magna when
exposed to nanoparticle suspensions (titanium dioxide, nano-C60, and C60HxC70Hx). Envi-
ron Toxicol Chem 25:1132-1137
Manzo S, Miglietta ML, Rametta G, Buono S, Di Francia G (2013) Toxic effects of ZnO
nanoparticles towards marine algae Dunaliella tertiolecta . Sci Total Environ 445:371-376
Mihranyan A, Ferraz N, Strømme M (2012) Current status and future prospects of nanotechnology
in cosmetics. Prog Mater Sci 57:875-910
Miller RJ, Bennett S, Keller AA, Pease S, Lenihan HS (2012) TiO 2 nanoparticles are phototoxic to
marine phytoplankton. PLoS One 7:e30321
Musee N, Thwala M, Nota N (2011) The antibacterial effects of engineered nanomaterials:
implications for wastewater treatment plants. J Environ Monit 13:1164-1183
Nel A, Xia T, M ¨ dler L, Li N (2006) Toxic potential of materials at the nanolevel. Science
311:622-627
Newman MC, Zhao Y (2008) Ecotoxicology nomenclature: LC, LD, LOC, LOEC, MAC. In:
Jorgensen SE, Fath B (eds) Encyclopedia of ecology. Elsevier, Oxford, pp 1187-1193
Oberdorster G, Sharp Z, Atudorei V, Elder A, Gelein R, Kreyling W, Cox C (2004) Translocation
of inhaled ultrafine particles to the brain. Inhal Toxicol 16:437-445
Oberd¨rster G et al (2005a) Principles for characterizing the potential human health effects from
exposure to nanomaterials: elements of a screening strategy. Part Fibre Toxicol 2:8
Oberd¨rster G, Oberd¨rster E, Oberd¨rster J (2005b) Nanotoxicology: an emerging discipline
evolving from studies of ultrafine particles. Environ Health Perspect 113:823
Paschoalino MP, Marcone GPS, Jardim WF (2010) Os nanomateriais ea quest˜o ambiental. Qu´m
Nova 33:421-430
Peters K, Unger RE, Kirkpatrick CJ, Gatti AM, Monari E (2004) Effects of nano-scaled particles
on endothelial cell function in vitro: studies on viability, proliferation and inflammation.
J Mater Sci Mater Med 15:321-325
Planchon M, Ferrari R, Guyot F, G´labert A, Menguy N, Chan´ac C, Thill A, Benedetti MF, Spalla
O (2013) Interaction between Escherichia coli and TiO 2 nanoparticles in natural and artificial
waters. Colloids Surf B Biointerfaces 102:158-164
Polonini HC, Brand˜o HM, Raposo NRB, Mouton L, Y´pr´mian C, Cout´ A, Brayner R (2014)
Ecotoxicological studies of micro-and nanosized barium titanate on aquatic photosynthetic
microorganisms. Aquat Toxicol 154:58-70
Powers KW, Brown SC, Krishna VB, Wasdo SC, Moudgil BM, Roberts SM (2006) Research
strategies for safety evaluation of nanomaterials. Part VI. Characterization of nanoscale
particles for toxicological evaluation. Toxicol Sci 90:296-303
Powers KW, Palazuelos M, Moudgil BM, Roberts SM (2007) Characterization of the size, shape,
and state of dispersion of nanoparticles for toxicological studies. Nanotoxicology 1:42-51
Ramsden CS, Smith TJ, Shaw BJ, Handy RD (2009) Dietary exposure to titanium dioxide
nanoparticles in rainbow trout, (Oncorhynchus mykiss): no effect on growth, but subtle
biochemical disturbances in the brain. Ecotoxicology 18:939-951
Rand GM, Wells PG, McCarty LS (1995) Introduction to aquatic toxicology. In: Rand GM (ed)
Fundamentals of aquatic toxicology: effects, environmental fate, and risk assessment, 2nd edn.
Taylor & Francis, Washington, pp 3-66
Ravera O (2004) Importance and difficulties of research on the metal speciation in the aquatic
ecosystem: an ecologist ' s viewpoint. Ann Chim 94:495
Reeves FJ, Davies SJ, Dodd NJF, Jha AN (2008) Hydroxyl radicals (·OH) are associated with
titanium dioxide (TiO 2 ) nanoparticle-induced cytotoxicity and oxidative DNA damage in fish
cells. Mutat Res 640:113-122
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