Revisiting the paradigm of silica pathogenicity with synthetic quartz crystals: the role of crystallinity and surface disorder
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D. Lison | S. Anguissola | B. Fubini | L. Pastero | F. Turci | M. Tomatis | David Garry | C. Pavan | R. Leinardi
[1] V. Cogliano. International Agency for Research on Cancer (IARC) , 2018, The Grants Register 2019.
[2] L. Pastero,et al. Synthesis of α-Quartz with Controlled Properties for the Investigation of the Molecular Determinants in Silica Toxicology , 2016 .
[3] A. P. Bell,et al. Proinflammatory Effects of Pyrogenic and Precipitated Amorphous Silica Nanoparticles in Innate Immunity Cells. , 2016, Toxicological sciences : an official journal of the Society of Toxicology.
[4] M. Wiemann,et al. In vitro and in vivo genotoxicity investigations of differently sized amorphous SiO2 nanomaterials. , 2015, Mutation research. Genetic toxicology and environmental mutagenesis.
[5] M. Lag,et al. Activation of Proinflammatory Responses in Cells of the Airway Mucosa by Particulate Matter: Oxidant- and Non-Oxidant-Mediated Triggering Mechanisms , 2015, Biomolecules.
[6] H. Alkhammash,et al. Native silica nanoparticles are powerful membrane disruptors. , 2015, Physical chemistry chemical physics : PCCP.
[7] V. Fessard,et al. Genotoxicity of synthetic amorphous silica nanoparticles in rats following short‐term exposure, part 2: Intratracheal instillation and intravenous injection , 2015, Environmental and molecular mutagenesis.
[8] D. Lison,et al. The alarmin IL-1α is a master cytokine in acute lung inflammation induced by silica micro- and nanoparticles , 2014, Particle and Fibre Toxicology.
[9] D. Lison,et al. Why does the hemolytic activity of silica predict its pro-inflammatory activity? , 2014, Particle and Fibre Toxicology.
[10] E. Wouters,et al. Silica-induced NLRP3 inflammasome activation in vitro and in rat lungs , 2014, Particle and Fibre Toxicology.
[11] Kenneth A. Dawson,et al. High Content Analysis Provides Mechanistic Insights on the Pathways of Toxicity Induced by Amine-Modified Polystyrene Nanoparticles , 2014, PloS one.
[12] Mark Bradley,et al. Predictive value of in vitro assays depends on the mechanism of toxicity of metal oxide nanoparticles , 2013, Particle and Fibre Toxicology.
[13] D. Lison,et al. In search of the chemical basis of the hemolytic potential of silicas. , 2013, Chemical research in toxicology.
[14] B. Onida,et al. Genotoxicity of amorphous silica particles with different structure and dimension in human and murine cell lines. , 2013, Mutagenesis.
[15] S. Doublier,et al. Carbon in intimate contact with quartz reduces the biological activity of crystalline silica dusts. , 2013, Chemical research in toxicology.
[16] Albert Rimola,et al. Silica surface features and their role in the adsorption of biomolecules: computational modeling and experiments. , 2013, Chemical reviews.
[17] Jinshun Zhao,et al. Titanium dioxide nanoparticles: a review of current toxicological data , 2013, Particle and Fibre Toxicology.
[18] Tian Xia,et al. Processing pathway dependence of amorphous silica nanoparticle toxicity: colloidal vs pyrolytic. , 2012, Journal of the American Chemical Society.
[19] M. Lag,et al. Comparison of non-crystalline silica nanoparticles in IL-1β release from macrophages , 2012, Particle and Fibre Toxicology.
[20] G. Mazzucco,et al. Physicochemical determinants in the cellular responses to nanostructured amorphous silicas. , 2012, Toxicological sciences : an official journal of the Society of Toxicology.
[21] Anthony Seaton,et al. A short history of the toxicology of inhaled particles , 2012, Particle and Fibre Toxicology.
[22] Ivana Fenoglio,et al. Multiple aspects of the interaction of biomacromolecules with inorganic surfaces. , 2011, Advanced drug delivery reviews.
[23] Iseult Lynch,et al. Physical-chemical aspects of protein corona: relevance to in vitro and in vivo biological impacts of nanoparticles. , 2011, Journal of the American Chemical Society.
[24] Dominique Lison,et al. The nanosilica hazard: another variable entity , 2010, Particle and Fibre Toxicology.
[25] D. Frazer,et al. Comparison of stainless and mild steel welding fumes in generation of reactive oxygen species , 2010, Particle and Fibre Toxicology.
[26] Mara Ghiazza,et al. Does vitreous silica contradict the toxicity of the crystalline silica paradigm? , 2010, Chemical research in toxicology.
[27] Ivana Fenoglio,et al. An integrated approach to the study of the interaction between proteins and nanoparticles. , 2010, Langmuir : the ACS journal of surfaces and colloids.
[28] Benjamin Gilbert,et al. Use of a rapid cytotoxicity screening approach to engineer a safer zinc oxide nanoparticle through iron doping. , 2010, ACS nano.
[29] Laetitia Gonzalez,et al. Size-dependent cytotoxicity of monodisperse silica nanoparticles in human endothelial cells. , 2009, Small.
[30] Vicki Stone,et al. Efficacy of Simple Short-Term in Vitro Assays for Predicting the Potential of Metal Oxide Nanoparticles to Cause Pulmonary Inflammation , 2008, Environmental health perspectives.
[31] Yuri Volkov,et al. High-content screening as a universal tool for fingerprinting of cytotoxicity of nanoparticles. , 2008, ACS nano.
[32] David B Warheit,et al. Pulmonary bioassay studies with nanoscale and fine-quartz particles in rats: toxicity is not dependent upon particle size but on surface characteristics. , 2007, Toxicological sciences : an official journal of the Society of Toxicology.
[33] E. Demchuk,et al. Impact of Silanol Surface Density on the Toxicity of Silica Aerosols Measured by Erythrocyte Haemolysis , 2006, Journal of occupational and environmental hygiene.
[34] M. L. Hair. Surface chemistry of silica , 2006 .
[35] Catrin Albrecht,et al. The crucial role of particle surface reactivity in respirable quartz-induced reactive oxygen/nitrogen species formation and APE/Ref-1 induction in rat lung , 2005, Respiratory research.
[36] E. Demchuk,et al. A comparative study of unrelaxed surfaces on quartz and kaolinite, using the periodic density functional theory. , 2005, The journal of physical chemistry. B.
[37] M. Shultz,et al. Time evolution studies of the H2O/quartz interface using sum frequency generation, atomic force microscopy, and molecular dynamics. , 2004, Langmuir : the ACS journal of surfaces and colloids.
[38] V. Castranova. Signaling pathways controlling the production of inflammatory mediators in response to crystalline silica exposure: role of reactive oxygen/nitrogen species. , 2004, Free radical biology & medicine.
[39] K. Donaldson,et al. Effect of coal mine dust and clay extracts on the biological activity of the quartz surface. , 2004, Toxicology letters.
[40] Bindu Raju,et al. Silica, Some Silicates, Coal Dust and Para-aramid Fibrils. IARC Monographs on the Evaluation of Carcinogenic Risks to Humans, Vol. 68 , 1998, Cancer Causes & Control.
[41] Joachim Bruch,et al. Variation of biological responses to different respirable quartz flours determined by a vector model. , 2004, International journal of hygiene and environmental health.
[42] Joachim Bruch,et al. Relationship between the state of the surface of four commercial quartz flours and their biological activity in vitro and in vivo. , 2004, International journal of hygiene and environmental health.
[43] Ivana Fenoglio,et al. Reaction of cysteine and glutathione (GSH) at the freshly fractured quartz surface: a possible role in silica-related diseases? , 2003, Free radical biology & medicine.
[44] Bice Fubini,et al. Reactive oxygen species (ROS) and reactive nitrogen species (RNS) generation by silica in inflammation and fibrosis. , 2003, Free radical biology & medicine.
[45] Vicki Stone,et al. Surface modification of quartz inhibits toxicity, particle uptake, and oxidative DNA damage in human lung epithelial cells. , 2002, Chemical research in toxicology.
[46] W. MacNee,et al. Aluminium lactate treatment of DQ12 quartz inhibits its ability to cause inflammation, chemokine expression, and nuclear factor-kappaB activation. , 2001, Toxicology and applied pharmacology.
[47] P. Borm,et al. Inflammatory effects of respirable quartz collected in workplaces versus standard DQ12 quartz: particle surface correlates. , 2001, Toxicological sciences : an official journal of the Society of Toxicology.
[48] P. Borm,et al. The quartz hazard: effects of surface and matrix on inflammogenic activity. , 2001, Journal of environmental pathology, toxicology and oncology : official organ of the International Society for Environmental Toxicology and Cancer.
[49] S. Philippou,et al. Health hazards due to the inhalation of amorphous silica , 2001, Archives of Toxicology.
[50] B. Fubini,et al. The Role of Mechanochemistry in the Pulmonary Toxicity Caused by Particulate Minerals , 2000 .
[51] K. Guldner. Entwicklung der Silikose in der keramischen und Glas-Industrie , 1999 .
[52] P. Borm,et al. The quartz hazard: a variable entity. , 1998, The Annals of occupational hygiene.
[53] A. Legrand,et al. The surface properties of silicas , 1998 .
[54] B. Fubini. Surface chemistry and quartz hazard. , 1998, The Annals of occupational hygiene.
[55] Nita Sahai,et al. Theoretical prediction of single-site surface-protonation equilibrium constants for oxides and silicates in water , 1996 .
[56] Vincent Castranova,et al. Silica and Silica-Induced Lung Diseases , 1995 .
[57] B. Fubini,et al. Free radical generation at the solid/liquid interface in iron containing minerals. , 1995, Free radical research.
[58] S H White,et al. Leakage of membrane vesicle contents: determination of mechanism using fluorescence requenching. , 1995, Biophysical journal.
[59] M Volante,et al. Chemical functionalities at the silica surface determining its reactivity when inhaled. Formation and reactivity of surface radicals. , 1990, Toxicology and industrial health.
[60] R. Sankila,et al. Cancer risk among glass factory workers: an excess of lung cancer? , 1990, British journal of industrial medicine.
[61] M. Seehra,et al. Surface and bulk infrared modes of crystalline and amorphous silica particles: a study of the relation of surface structure to cytotoxicity of respirable silica. , 1990, Environmental Health Perspectives.
[62] D. Costa,et al. Surface oxygen radicals originating via redox reactions during the mechanical activation of crystalline SiO2 in hydrogen peroxide , 1990 .
[63] Xianglin Shi,et al. Generation of free radicals from freshly fractured silica dust. Potential role in acute silica-induced lung injury. , 1988, The American review of respiratory disease.
[64] H. Mao,et al. Pressure-induced amorphization of crystalline silica , 1988, Nature.
[65] B. Fubini,et al. Mechanically induced defects in quartz and their impact on pathogenicity , 1988 .
[66] B. Fubini,et al. The surface chemistry of crushed quartz dust in relation to its pathogenicity , 1987 .
[67] R. Bégin,et al. Sustained efficacy of aluminum to reduce quartz toxicity in the lung. , 1987, Experimental lung research.
[68] H. Schlipköter,et al. [Polyvinylpyridine N-oxide (Bay 3504, P-204, PVNO) in the treatment of human silicosis]. , 1984, Wiener klinische Wochenschrift.
[69] G. Oster,et al. Quartz hemolysis as related to its surface functionalities. , 1981, Environmental research.
[70] R. Iler. The Chemistry of Silica: Solubility, Polymerization, Colloid and Surface Properties and Biochemistry of Silica , 1979 .
[71] L. le Bouffant,et al. The therapeutic action of aluminium compounds on the development of experimental lesions produced by pure quartz or mixed dust. , 1975, Inhaled particles.
[72] D. Krinsley,et al. Processes of formation and environmental occurrence of microfeatures on detrital quartz grains , 1974 .