Ecotoxicological assessment of TiO2 byproducts on the earthworm Eisenia fetida.
暂无分享,去创建一个
Catherine Sirguey | Jérôme Labille | Jérôme Rose | Johanne Nahmani | F. Rodius | J. Rose | J. Labille | E. Joner | L. Foucaud | J. Falla | J. Nahmani | Erik J Joner | C. Sirguey | Emilie Bigorgne | Céline Botta | C. Botta | Jaïro Falla | Laurent Foucaud | Emmanuel Lapied | François Rodius | E. Lapied | Emilie Bigorgne
[1] Yong-guan Zhu,et al. DNA damage and repair process in earthworm after in-vivo and in vitro exposure to soils irrigated by wastewaters. , 2007, Environmental pollution.
[2] S. Stürzenbaum,et al. Toxicological, cellular and gene expression responses in earthworms exposed to copper and cadmium. , 2004, Comparative biochemistry and physiology. Toxicology & pharmacology : CBP.
[3] Nengwen Xiao,et al. Biomarkers responses of the earthworm Eisenia fetida to acetochlor exposure in OECD soil. , 2006, Chemosphere.
[4] M. Hodson,et al. Effects of metals on life cycle parameters of the earthworm Eisenia fetida exposed to field-contaminated, metal-polluted soils. , 2007, Environmental pollution.
[5] Jérôme Labille,et al. Aging of TiO(2) nanocomposites used in sunscreen. Dispersion and fate of the degradation products in aqueous environment. , 2010, Environmental pollution.
[6] Steffen Foss Hansen,et al. Categorization framework to aid hazard identification of nanomaterials , 2007 .
[7] A. Parrish,et al. Metal-induced apoptosis: mechanisms. , 2003, Mutation research.
[8] D. Oughton,et al. Ecotoxicological effects of an aged TiO2 nanocomposite measured as apoptosis in the anecic earthworm Lumbricus terrestris after exposure through water, food and soil. , 2011, Environment international.
[9] P. Kille,et al. Metallothionein expression and Neutral Red uptake as biomarkers of metal exposure and effect in Eisenia fetida and Lumbricus terrestris exposed to Cd , 2007 .
[10] Pratim Biswas,et al. Crystal structure mediates mode of cell death in TiO2 nanotoxicity , 2009 .
[11] Jing Chen,et al. Toxicological effects of TiO2 and ZnO nanoparticles in soil on earthworm Eisenia fetida. , 2010 .
[12] J. Steevens,et al. Assessing the fate and effects of nano aluminum oxide in the terrestrial earthworm, Eisenia fetida , 2010, Environmental toxicology and chemistry.
[13] D. Oughton,et al. Silver nanoparticle exposure causes apoptotic response in the earthworm Lumbricus terrestris (Oligochaeta). , 2010, Nanomedicine.
[14] Jason M Unrine,et al. Effects of particle size on chemical speciation and bioavailability of copper to earthworms (Eisenia fetida) exposed to copper nanoparticles. , 2010, Journal of environmental quality.
[15] G. Mitta,et al. The strong induction of metallothionein gene following cadmium exposure transiently affects the expression of many genes in Eisenia fetida: a trade-off mechanism? , 2007, Comparative biochemistry and physiology. Toxicology & pharmacology : CBP.
[16] Julian Moger,et al. Sublethal toxicity of nano-titanium dioxide and carbon nanotubes in a sediment dwelling marine polychaete. , 2010, Environmental pollution.
[17] G. Mitta,et al. Identification and expression profile of gene transcripts differentially expressed during metallic exposure in Eisenia fetida coelomocytes. , 2008, Developmental and comparative immunology.
[18] Armand Masion,et al. Structural degradation at the surface of a TiO(2)-based nanomaterial used in cosmetics. , 2010, Environmental science & technology.
[19] David M. Brown,et al. Measurement of reactive species production by nanoparticles prepared in biologically relevant media. , 2007, Toxicology letters.
[20] M. Bonnard,et al. Genotoxic effects of nickel, trivalent and hexavalent chromium on the Eisenia fetida earthworm. , 2010, Chemosphere.
[21] J. Römbke,et al. Effects of three pesticides on the avoidance behavior of earthworms in laboratory tests performed under temperate and tropical conditions. , 2008, Environmental pollution.
[22] K. Kasemets,et al. Toxicity of nanoparticles of CuO, ZnO and TiO2 to microalgae Pseudokirchneriella subcapitata. , 2009, The Science of the total environment.
[23] B. Nowack,et al. Exposure modeling of engineered nanoparticles in the environment. , 2008, Environmental science & technology.
[24] M. Hodson,et al. Development of a methodology to investigate the importance of chemical speciation on the bioavailability of contaminants to Eisenia andreiThe 7th international symposium on earthworm ecology · Cardiff · Wales · 2002 , 2003 .
[25] Zhi Pan,et al. Adverse effects of titanium dioxide nanoparticles on human dermal fibroblasts and how to protect cells. , 2009, Small.
[26] P. Mill. Physiology of annelids , 1978 .
[27] P. Deetjen,et al. Salt and Water Balance , 1975 .
[28] A. Kiewiet,et al. Effect of pH and calcium on lead and cadmium uptake by earthworms in water. , 1991, Ecotoxicology and environmental safety.
[29] O. Tsyusko,et al. Evidence for bioavailability of Au nanoparticles from soil and biodistribution within earthworms (Eisenia fetida). , 2010, Environmental science & technology.
[30] F. Hong,et al. Hepatocyte apoptosis and its molecular mechanisms in mice caused by titanium dioxide nanoparticles. , 2010, Journal of hazardous materials.
[31] P. Vasseur,et al. Ecotoxicity of a polycyclic aromatic hydrocarbon (PAH)-contaminated soil. , 2007, Ecotoxicology and environmental safety.
[32] G. Pojana,et al. In vitro effects of suspensions of selected nanoparticles (C60 fullerene, TiO2, SiO2) on Mytilus hemocytes. , 2010, Aquatic toxicology.
[33] James B. Mitchell,et al. Evaluation of a tetrazolium-based semiautomated colorimetric assay: assessment of chemosensitivity testing. , 1987, Cancer research.
[34] Pratim Biswas,et al. Characterization of size, surface charge, and agglomeration state of nanoparticle dispersions for toxicological studies , 2009 .
[35] Eva Pellicer,et al. Neutron activation of engineered nanoparticles as a tool for tracing their environmental fate and uptake in organisms , 2008, Environmental toxicology and chemistry.
[36] R. Aitken,et al. Manufacture and use of nanomaterials: current status in the UK and global trends. , 2006, Occupational medicine.
[37] Armand Masion,et al. TiO₂-based nanoparticles released in water from commercialized sunscreens in a life-cycle perspective: structures and quantities. , 2011, Environmental pollution.
[38] Tina Masciangioli,et al. Environmental technologies at the nanoscale. , 2003, Environmental science & technology.
[39] Thomas D. Schmittgen,et al. Analysis of relative gene expression data using real-time quantitative PCR and the 2(-Delta Delta C(T)) Method. , 2001, Methods.
[40] R. Scholz,et al. Modeled environmental concentrations of engineered nanomaterials (TiO(2), ZnO, Ag, CNT, Fullerenes) for different regions. , 2009, Environmental science & technology.
[41] A. Reinecke,et al. Photometric application of the MTT- and NRR-assays as biomarkers for the evaluation of cytotoxicity ex vivo in Eisenia andrei , 2008 .
[42] J. M. Baveco,et al. Effects of C60 nanoparticle exposure on earthworms (Lumbricus rubellus) and implications for population dynamics. , 2011, Environmental pollution.
[43] Pratim Biswas,et al. Role of Synthesis Method and Particle Size of Nanostructured TiO2 on Its Photoactivity , 2002 .
[44] Robert W Sobol,et al. Mutation research/fundamental and molecular mechanisms of mutagenesis: special issue: DNA repair and genetic instability. , 2013, Mutation research.
[45] E. Cooper,et al. A non-invasive technique for sequential collection of earthworm (Lumbricus terrestris) leukocytes during subchronic immunotoxicity studies , 1991, Laboratory animals.
[46] Tae-Hyun Bae,et al. Effect of TiO2 nanoparticles on fouling mitigation of ultrafiltration membranes for activated sludge filtration , 2005 .
[47] M. Janssen,et al. The effects of soil chemical characteristics on the 134Cs concentrations in earthworms. Uptake from liquid medium , 1997 .
[48] Richard D Handy,et al. Toxicity of titanium dioxide nanoparticles to rainbow trout (Oncorhynchus mykiss): gill injury, oxidative stress, and other physiological effects. , 2007, Aquatic toxicology.
[49] M. Reigosa,et al. Comparative study of the cytotoxic and genotoxic effects of titanium oxide and aluminium oxide nanoparticles in Chinese hamster ovary (CHO-K1) cells. , 2010, Journal of hazardous materials.
[50] K. Donaldson,et al. Impairment of alveolar macrophage phagocytosis by ultrafine particles. , 2001, Toxicology and applied pharmacology.
[51] Nathalie Tufenkji,et al. Aggregation of titanium dioxide nanoparticles: role of a fulvic acid. , 2009, Environmental science & technology.
[52] P. Masson,et al. PCBs increase molecular-related activities (lysozyme, antibacterial, hemolysis, proteases) but inhibit macrophage-related functions (phagocytosis, wound healing) in earthworms. , 1995, Journal of invertebrate pathology.
[53] F. Gagné,et al. Ecotoxicity of selected nano‐materials to aquatic organisms , 2008, Environmental toxicology.
[54] Richard J. Williams,et al. An assessment of the fate, behaviour and environmental risk associated with sunscreen TiO₂ nanoparticles in UK field scenarios. , 2011, The Science of the total environment.
[55] D. Cyr,et al. Phagocytosis as a Biomarker of Immunotoxicity in Wildlife Species Exposed to Environmental Xenobiotics1 , 2000 .
[56] P. Krogh,et al. The toxicity testing of double-walled nanotubes-contaminated food to Eisenia veneta earthworms. , 2008, Ecotoxicology and environmental safety.
[57] Mark R. Wiesner,et al. Environmental Nanotechnology: Applications and Impacts of Nanomaterials , 2007 .
[58] Gareth Wakefield,et al. The effects of manganese doping on UVA absorption and free radical generation of micronised titanium dioxide and its consequences for the photostability of UVA absorbing organic sunscreen components , 2004, Photochemical & photobiological sciences : Official journal of the European Photochemistry Association and the European Society for Photobiology.