Comparative pulmonary toxicities of lunar dusts and terrestrial dusts (TiO2 & SiO2) in rats and an assessment of the impact of particle-generated oxidants on the dusts’ toxicities
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J. James | R. McClellan | D. Gardner | V. Castranova | C. Lam | B. Cooper | K. Driscoll | R. McCluskey | R. R. Scully | Valerie E. Ryder | R. Renne | M. Barger | W. T. Wallace | P. Zeidler-Erdely | T. Meighan | Robert Hunter | Ye Zhang | David McKay | Richard McCluskey | R. Scully
[1] Joel A. Hurowitz,et al. Assessing Toxicity and Nuclear and Mitochondrial DNA Damage Caused by Exposure of Mammalian Cells to Lunar Regolith Simulants , 2018, GeoHealth.
[2] M. Schoonen,et al. The role of Iraqi dust in inducing lung injury in United States soldiers—An interdisciplinary study , 2017, GeoHealth.
[3] M. Schoonen,et al. Acute Meteorite Dust Exposure and Pulmonary Inflammation - Implications for Human Space Exploration , 2017 .
[4] Ziyan Wang,et al. Advanced Role of Neutrophils in Common Respiratory Diseases , 2017, Journal of immunology research.
[5] Jenny R. Roberts,et al. Pulmonary Toxicity, Distribution, and Clearance of Intratracheally Instilled Silicon Nanowires in Rats , 2015, Journal of nanomaterials.
[6] B. Fubini,et al. Free-radical chemistry as a means to evaluate lunar dust health hazard in view of future missions to the moon. , 2015, Astrobiology.
[7] William T. Wallace,et al. Physicochemical properties of respirable-size lunar dust , 2015 .
[8] J. James,et al. Estimating safe human exposure levels for lunar dust using benchmark dose modeling of data from inhalation studies in rats , 2013, Inhalation toxicology.
[9] J. James,et al. Toxicity of lunar dust assessed in inhalation-exposed rats , 2013, Inhalation toxicology.
[10] J. James,et al. Estimate of safe human exposure levels for lunar dust based on comparative benchmark dose modeling , 2013, Inhalation toxicology.
[11] Akio Makishima,et al. Space environment of an asteroid preserved on micrograins returned by the Hayabusa spacecraft , 2012, Proceedings of the National Academy of Sciences.
[12] M. Wiemann,et al. Siderite (FeCO3) and magnetite (Fe3O4) overload-dependent pulmonary toxicity is determined by the poorly soluble particle not the iron content , 2011, Inhalation toxicology.
[13] Junichiro Kawaguchi,et al. Itokawa Dust Particles: A Direct Link Between S-Type Asteroids and Ordinary Chondrites , 2011, Science.
[14] M. Lodovici,et al. Oxidative Stress and Air Pollution Exposure , 2011, Journal of toxicology.
[15] Hiroyuki Kawamoto,et al. Extracting Respirable Particles from Lunar Regolith for Toxicology Studies , 2010 .
[16] L. Taylor,et al. IMPORTANT CONSIDERATIONS FOR LUNAR SOIL SIMULANTS , 2010 .
[17] Richard B. Bilder. A Legal Regime for the Mining of Helium-3 on the Moon: U.S. Policy Options , 2009 .
[18] A. do Vale,et al. Secondary necrosis in multicellular animals: an outcome of apoptosis with pathogenic implications , 2008, Apoptosis.
[19] Bonnie L. Cooper,et al. Lunar dust and lunar simulant activation and monitoring , 2008 .
[20] Andrij Holian,et al. Toxicity of Lunar and Martian Dust Simulants to Alveolar Macrophages Isolated from Human Volunteers , 2008, Inhalation toxicology.
[21] Vincent Castranova,et al. Mechanisms of action of inhaled fibers, particles and nanoparticles in lung and cardiovascular diseases , 2007, Particle and Fibre Toxicology.
[22] J. Erjefält,et al. Direct evidence of secondary necrosis of neutrophils during intense lung inflammation , 2006, European Respiratory Journal.
[23] K. E. Livo. Return to the Moon: Exploration, Enterprise, and Energy in the Human Settlement of Space.Harrison Schmitt (SEG 2001 F). 352 Pp. Copernicus Books, Springer Science + Business Media, New York. 2005. ISBN 0-387-24285-6. Price US$25. , 2006 .
[24] Roel P F Schins,et al. Inhaled particles and lung cancer. Part A: Mechanisms , 2004, International journal of cancer.
[25] J. Everitt,et al. Pulmonary responses of mice, rats, and hamsters to subchronic inhalation of ultrafine titanium dioxide particles. , 2004, Toxicological sciences : an official journal of the Society of Toxicology.
[26] Ivana Fenoglio,et al. Surface reactivity of volcanic ash from the eruption of Soufrière Hills volcano, Montserrat, West Indies with implications for health hazards. , 2003, Environmental research.
[27] David B Warheit,et al. Long-term pulmonary responses of three laboratory rodent species to subchronic inhalation of pigmentary titanium dioxide particles. , 2002, Toxicological sciences : an official journal of the Society of Toxicology.
[28] Shawn Cowper,et al. PULMONARY TOXICITY OF SIMULATED LUNAR AND MARTIAN DUSTS IN MICE: I. HISTOPATHOLOGY 7 AND 90 DAYS AFTER INTRATRACHEAL INSTILLATION , 2002, Inhalation toxicology.
[29] David B Warheit,et al. TIME COURSE OF QUARTZ AND TiO 2 PARTICLE-INDUCED PULMONARY INFLAMMATION AND NEUTROPHIL APOPTOTIC RESPONSES IN RATS , 2002, Experimental lung research.
[30] John T. James,et al. PULMONARY TOXICITY OF SIMULATED LUNAR AND MARTIAN DUSTS IN MICE: II. BIOMARKERS OF ACUTE RESPONSES AFTER INTRATRACHEAL INSTILLATION , 2002, Inhalation toxicology.
[31] 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.
[32] Richard V. Morris,et al. JSC MARS-1: A Martian Soil Simulant , 1998 .
[33] J. Carter,et al. Effects of particle exposure and particle-elicited inflammatory cells on mutation in rat alveolar epithelial cells. , 1997, Carcinogenesis.
[34] K. Donaldson,et al. Free radical activity associated with the surface of particles: a unifying factor in determining biological activity? , 1996, Toxicology letters.
[35] J. Haseman,et al. The maximum tolerated dose for inhalation bioassays: toxicity vs overload. , 1996, Fundamental and applied toxicology : official journal of the Society of Toxicology.
[36] V. Castranova,et al. Freshly fractured quartz inhalation leads to enhanced lung injury and inflammation. Potential role of free radicals. , 1995, American journal of respiratory and critical care medicine.
[37] V. Vallyathan. Generation of oxygen radicals by minerals and its correlation to cytotoxicity. , 1994, Environmental health perspectives.
[38] 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.
[39] N. Clark,et al. Direct Evidence , 1934 .
[40] C. Anastasio,et al. A Comparison of Hydroxyl Radical and Hydrogen Peroxide Generation in Ambient Particle Extracts and Laboratory Metal Solutions. , 2012, Atmospheric environment.
[41] Ramesh B. Malla,et al. Earth and Space 2010 : Engineering, Science, Construction, and Operations in Challenging Environments , 2010 .
[42] W. T. Wallace,et al. Lunar Dust and Lunar Simulant Activation, Monitoring, Solution and Cellular Toxicity Properties , 2009 .
[43] J. Carter,et al. The role of inflammation, oxidative stress, and proliferation in silica-induced lung disease: a species comparison. , 2001, Journal of environmental pathology, toxicology and oncology : official organ of the International Society for Environmental Toxicology and Cancer.
[44] M. Gimbrone,et al. Oxygen and Nitrogen Reactive Metabolites and Phagocytic Cells , 2000 .
[45] K. Summer,et al. Assaying for hydroxyl radicals: hydroxylated terephthalate is a superior fluorescence marker than hydroxylated benzoate. , 1999, Free radical research.
[46] B. Fubini. Surface chemistry and quartz hazard. , 1998, The Annals of occupational hygiene.
[47] J. Paul Robinson,et al. Phagocyte function : a guide for research and clinical evaluation , 1998 .
[48] C. Allen,et al. JSC-1: A NEW LUNAR SOIL SIMULANT , 1994 .
[49] Rodney G. Galloway,et al. Engineering, Construction, and Operations in Space IV , 1994 .
[50] J. Higginson,et al. International Agency for Research on Cancer. , 1968, WHO chronicle.