New approach methodologies for exposure science
暂无分享,去创建一个
Jane C. Bare | Olivier Jolliet | Daniel A. Vallero | Barbara A. Wetmore | David E. Meyer | Xiaoyu Liu | John F. Wambaugh | Courtney C. Carignan | Kathie L. Dionisio | Robin E. Dodson | Seth R. Newton | Katherine Phillips | Paul S. Price | Caroline Ring | Hyeong-Moo Shin | Jon R. Sobus | Tamara L. Tal | Elin M. Ulrich | Kristin K. Isaacs | Katherine A. Phillips | O. Jolliet | J. Bare | J. Wambaugh | D. Vallero | Xiaoyu Liu | Hyeong-Moo Shin | P. Price | J. Sobus | K. Dionisio | K. Isaacs | D. Meyer | T. Tal | B. Wetmore | E. Ulrich | C. Ring | Caroline L Ring
[1] Ruthann A Rudel,et al. PCB-containing wood floor finish is a likely source of elevated PCBs in residents' blood, household air and dust: a case study of exposure , 2008, Environmental health : a global access science source.
[2] Alejandro Caballero Guzman. Environmental Exposure of Nanomaterials: Methodological Advances and New Predictions , 2017 .
[3] Paul S Price,et al. Using publicly available information to create exposure and risk-based ranking of chemicals used in the workplace and consumer products , 2009, Journal of Exposure Science and Environmental Epidemiology.
[4] Jing Meng,et al. A review of sources, multimedia distribution and health risks of perfluoroalkyl acids (PFAAs) in China. , 2015, Chemosphere.
[5] Robert G. Pearce,et al. An Intuitive Approach for Predicting Potential Human Health Risk with the Tox21 10k Library. , 2017, Environmental science & technology.
[6] Barbara A. Wetmore,et al. Identifying populations sensitive to environmental chemicals by simulating toxicokinetic variability. , 2017, Environment international.
[7] Mark A. J. Huijbregts,et al. USEtox—the UNEP-SETAC toxicity model: recommended characterisation factors for human toxicity and freshwater ecotoxicity in life cycle impact assessment , 2008 .
[8] Monia Niero,et al. Challenges of including human exposure to chemicals in food packaging as a new exposure pathway in life cycle impact assessment , 2018, The International Journal of Life Cycle Assessment.
[9] D J Paustenbach,et al. THE PRACTICE OF EXPOSURE ASSESSMENT: A STATE-OF-THE-ART REVIEW , 2000, Journal of toxicology and environmental health. Part B, Critical reviews.
[10] Michael A. Gonzalez,et al. Mining Available Data from the United States Environmental Protection Agency to Support Rapid Life Cycle Inventory Modeling of Chemical Manufacturing. , 2016, Environmental science & technology.
[11] Thomas M Young,et al. LC- and GC-QTOF-MS as Complementary Tools for a Comprehensive Micropollutant Analysis in Aquatic Systems. , 2017, Environmental science & technology.
[12] Rachel Morello-Frosch,et al. Semivolatile Organic Compounds in Homes: Strategies for Efficient and Systematic Exposure Measurement Based on Empirical and Theoretical Factors , 2014, Environmental science & technology.
[13] Jonathan W. Martin,et al. Discovery of C5-C17 poly- and perfluoroalkyl substances in water by in-line SPE-HPLC-Orbitrap with in-source fragmentation flagging. , 2015, Analytical chemistry.
[14] Ann M Richard,et al. Suspect Screening Analysis of Chemicals in Consumer Products. , 2018, Environmental science & technology.
[15] Gregor Reid,et al. Microbiota-Mediated Modulation of Organophosphate Insecticide Toxicity by Species-Dependent Interactions with Lactobacilli in a Drosophila melanogaster Insect Model , 2018, Applied and Environmental Microbiology.
[16] A. Zidek,et al. Fate and exposure modeling in regulatory chemical evaluation: new directions from retrospection. , 2018, Environmental science. Processes & impacts.
[17] John F. Wambaugh,et al. High-throughput dietary exposure predictions for chemical migrants from food contact substances for use in chemical prioritization. , 2017, Environment international.
[18] James Vail,et al. The exposure data landscape for manufactured chemicals. , 2012, The Science of the total environment.
[19] Christopher M Grulke,et al. High-throughput screening of chemicals as functional substitutes using structure-based classification models. , 2017, Green chemistry : an international journal and green chemistry resource : GC.
[20] Elaine A. Cohen Hubal,et al. Exposure as Part of a Systems Approach for Assessing Risk , 2009, Environmental health perspectives.
[21] A. Olshan,et al. Occupational exposure assessment in case–control studies: opportunities for improvement , 2002, Occupational and environmental medicine.
[22] Elaine A Cohen Hubal,et al. Biologically relevant exposure science for 21st century toxicity testing. , 2009, Toxicological sciences : an official journal of the Society of Toxicology.
[23] Di Hu,et al. Determination of 2,8-dichlorodibenzo-p-dioxin in toothpaste and mouthwash consumer products using GC-MS , 2015, Environmental Science and Pollution Research.
[24] Dean P. Jones,et al. The Exposome: Molecules to Populations. , 2019, Annual review of pharmacology and toxicology.
[25] W. T. Berge,et al. A generic, cross-chemical predictive PBTK model with multiple entry routes running as application in MS Excel; design of the model and comparison of predictions with experimental results. , 2011, The Annals of occupational hygiene.
[26] Jon R. Sobus,et al. Biomonitoring: Uses and Considerations for Assessing Nonoccupational Human Exposure to Pesticides , 2010 .
[27] Michael Goodman,et al. A proposal for assessing study quality: Biomonitoring, Environmental Epidemiology, and Short-lived Chemicals (BEES-C) instrument , 2014, Environment international.
[28] D. Jacob,et al. Global modeling of tropospheric chemistry with assimilated meteorology : Model description and evaluation , 2001 .
[29] Jon A Arnot,et al. Model for screening-level assessment of near-field human exposure to neutral organic chemicals released indoors. , 2014, Environmental science & technology.
[30] Rogelio Tornero-Velez,et al. Quantifying children's aggregate (dietary and residential) exposure and dose to permethrin: application and evaluation of EPA's probabilistic SHEDS-Multimedia model , 2012, Journal of Exposure Science and Environmental Epidemiology.
[31] Thomas Peyret,et al. A unified algorithm for predicting partition coefficients for PBPK modeling of drugs and environmental chemicals. , 2010, Toxicology and applied pharmacology.
[32] Division on Earth. Environmental Chemicals, the Human Microbiome, and Health Risk: A Research Strategy , 2018 .
[33] E. Hubal,et al. Exposure-based prioritization of chemicals for risk assessment , 2011 .
[34] Daniel Vallero,et al. SHEDS-HT: an integrated probabilistic exposure model for prioritizing exposures to chemicals with near-field and dietary sources. , 2014, Environmental science & technology.
[35] Linda Phillips,et al. A review of soil and dust ingestion studies for children , 2014, Journal of Exposure Science and Environmental Epidemiology.
[36] P. Price,et al. Assessing aggregate and cumulative pesticide risks using a probabilistic model. , 2001, The Annals of occupational hygiene.
[37] Halûk Özkaynak,et al. Computational Exposure Science: An Emerging Discipline to Support 21st-Century Risk Assessment , 2015, Environmental health perspectives.
[38] Richard S Judson,et al. Empirical models for anatomical and physiological changes in a human mother and fetus during pregnancy and gestation , 2018, bioRxiv.
[39] Susan L Makris,et al. Generation of hazard indices for cumulative exposure to phthalates for use in cumulative risk assessment. , 2014, Regulatory toxicology and pharmacology : RTP.
[40] Ki‐Hyun Kim,et al. Characterization and flux assessment of airborne phthalates released from polyvinyl chloride consumer goods , 2018, Environmental research.
[41] Avrum Spira,et al. The Importance of the Biological Impact of Exposure to the Concept of the Exposome , 2016, Environmental health perspectives.
[42] John C. Little,et al. A simple method to measure the gas-phase SVOC concentration adjacent to a material surface. , 2016, Indoor air.
[43] C M Grulke,et al. Development of a consumer product ingredient database for chemical exposure screening and prioritization. , 2014, Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association.
[44] Robert F Herrick,et al. Biomarker variance component estimation for exposure surrogate selection and toxicokinetic inference. , 2010, Toxicology letters.
[45] Lesa L. Aylward,et al. Evaluation of Biomonitoring Data from the CDC National Exposure Report in a Risk Assessment Context: Perspectives across Chemicals , 2012, Environmental health perspectives.
[46] Nichole E Brinkman,et al. Microbiota alter metabolism and mediate neurodevelopmental toxicity of 17β-estradiol , 2019, Scientific Reports.
[47] Jay Barracato. Toxics Release Inventory , 2002 .
[48] Claire Granier,et al. Influence of anthropogenic emission inventories on simulations of air quality in China during winter and summer 2010 , 2019, Atmospheric Environment.
[49] Ann M Richard,et al. The Next Generation Blueprint of Computational Toxicology at the U.S. Environmental Protection Agency. , 2019, Toxicological sciences : an official journal of the Society of Toxicology.
[50] Jitender Kumar Bhardwaj,et al. Influence of Toxic Chemicals on Female Reproduction: A Review , 2014 .
[51] Yu-Mei Tan,et al. Uses of NHANES Biomarker Data for Chemical Risk Assessment: Trends, Challenges, and Opportunities , 2015, Environmental health perspectives.
[52] Paul T C Harrison,et al. Endocrine disrupters and menopausal health , 2004, The journal of the British Menopause Society.
[53] Jianxin Hu,et al. Emissions estimates of carbon tetrachloride for 1992-2014 in China. , 2017, Environmental pollution.
[54] Harvey J. Clewell,et al. Incorporating population variability and susceptible subpopulations into dosimetry for high-throughput toxicity testing. , 2014, Toxicological sciences : an official journal of the Society of Toxicology.
[55] Sean M Hays,et al. Interpreting human biomonitoring data in a public health risk context using Biomonitoring Equivalents. , 2012, International journal of hygiene and environmental health.
[56] Paul S Price,et al. A conceptual framework for modeling aggregate and cumulative exposures to chemicals , 2005, Journal of Exposure Analysis and Environmental Epidemiology.
[57] Imran Shah,et al. Toxicokinetic Triage for Environmental Chemicals. , 2015, Toxicological sciences : an official journal of the Society of Toxicology.
[58] Emma L. Schymanski,et al. Nontarget Screening with High Resolution Mass Spectrometry in the Environment: Ready to Go? , 2017, Environmental science & technology.
[59] Robert G. Pearce,et al. httk: R Package for High-Throughput Toxicokinetics. , 2017, Journal of statistical software.
[60] William W Nazaroff,et al. Embracing microbes in exposure science , 2018, Journal of Exposure Science & Environmental Epidemiology.
[61] Peter Fantke,et al. Defining Product Intake Fraction to Quantify and Compare Exposure to Consumer Products. , 2015, Environmental science & technology.
[62] S M Rappaport,et al. Air samples versus biomarkers for epidemiology , 2005, Occupational and Environmental Medicine.
[63] Ying-Hong Wang,et al. Confidence Assessment of the Simcyp Time-Based Approach and a Static Mathematical Model in Predicting Clinical Drug-Drug Interactions for Mechanism-Based CYP3A Inhibitors , 2010, Drug Metabolism and Disposition.
[64] Ann M Richard,et al. Linking high resolution mass spectrometry data with exposure and toxicity forecasts to advance high-throughput environmental monitoring. , 2016, Environment international.
[65] Julian D Marshall,et al. InMAP: A model for air pollution interventions , 2017, PloS one.
[66] Tina Bahadori,et al. Adoption of an official ISEA glossary , 2005, Journal of Exposure Analysis and Environmental Epidemiology.
[67] John Balbus,et al. CHILDREN's SUSCEPTIBILITY TO CHEMICALS: A REVIEW BY DEVELOPMENTAL STAGE , 2004, Journal of toxicology and environmental health. Part B, Critical reviews.
[68] Antony J. Williams,et al. The CompTox Chemistry Dashboard: a community data resource for environmental chemistry , 2017, Journal of Cheminformatics.
[69] N Oreskes,et al. Evaluation (not validation) of quantitative models. , 1998, Environmental health perspectives.
[70] Sean M Hays,et al. Interpreting variability in population biomonitoring data: Role of elimination kinetics , 2012, Journal of Exposure Science and Environmental Epidemiology.
[71] S. Keely,et al. Microbial colonization is required for normal neurobehavioral development in zebrafish , 2017, Scientific Reports.
[72] David M. Reif,et al. High-throughput models for exposure-based chemical prioritization in the ExpoCast project. , 2013, Environmental science & technology.
[73] A. Calafat,et al. The U.S. National Health and Nutrition Examination Survey and human exposure to environmental chemicals. , 2012, International journal of hygiene and environmental health.
[74] Manuel Pastor,et al. Ground-Truthing Validation to Assess the Effect of Facility Locational Error on Cumulative Impacts Screening Tools , 2015 .
[75] Thomas M Young,et al. Household Dust as a Repository of Chemical Accumulation: New Insights from a Comprehensive High-Resolution Mass Spectrometric Study. , 2018, Environmental science & technology.
[76] M. Blaser,et al. Antibiotics in early life alter the murine colonic microbiome and adiposity , 2012, Nature.
[77] Peter Fantke,et al. Multiscale Spatial Modeling of Human Exposure from Local Sources to Global Intake. , 2018, Environmental science & technology.
[78] M. Jamei,et al. A framework for assessing inter-individual variability in pharmacokinetics using virtual human populations and integrating general knowledge of physical chemistry, biology, anatomy, physiology and genetics: A tale of 'bottom-up' vs 'top-down' recognition of covariates. , 2009, Drug metabolism and pharmacokinetics.
[79] Panos G Georgopoulos,et al. Reconstructing population exposures to environmental chemicals from biomarkers: Challenges and opportunities , 2009, Journal of Exposure Science and Environmental Epidemiology.
[80] Robert J Kavlock,et al. Accelerating the Pace of Chemical Risk Assessment. , 2018, Chemical research in toxicology.
[81] T. E. McKone,et al. The Precision of QSAR Methods For Estimating Intermedia Transfer Factors in Exposure Assessments , 1993 .
[82] Yu-Mei Tan,et al. Estimating Methylmercury Intake for the General Population of South Korea Using Physiologically Based Pharmacokinetic Modeling , 2017, Toxicological sciences : an official journal of the Society of Toxicology.
[83] Xiaoyu Liu,et al. Characterise sources for exposure assessment of chemicals in indoor environment , 2018, Indoor + built environment : the journal of the International Society of the Built Environment.
[84] O. Jolliet,et al. Risk-Based High-Throughput Chemical Screening and Prioritization using Exposure Models and in Vitro Bioactivity Assays. , 2015, Environmental science & technology.
[85] Barbara A Wetmore,et al. Quantitative in vitro-to-in vivo extrapolation in a high-throughput environment. , 2015, Toxicology.
[86] Melvin E Andersen,et al. Toxicokinetic modeling and its applications in chemical risk assessment. , 2003, Toxicology letters.
[87] Dominik Fiedler,et al. Perfluoroalkyl and polyfluoroalkyl substances in consumer products , 2015, Environmental Science and Pollution Research.
[88] Antony J. Williams,et al. OPERA models for predicting physicochemical properties and environmental fate endpoints , 2018, Journal of Cheminformatics.
[89] Jeremy K Nicholson,et al. Gut microbiome interactions with drug metabolism, efficacy, and toxicity. , 2017, Translational research : the journal of laboratory and clinical medicine.
[90] John W. Nichols,et al. Informing the Human Plasma Protein Binding of Environmental Chemicals by Machine Learning in the Pharmaceutical Space: Applicability Domain and Limits of Predictability , 2016, J. Chem. Inf. Model..
[91] Thomas E McKone,et al. Intake fraction for the indoor environment: a tool for prioritizing indoor chemical sources. , 2012, Environmental science & technology.
[92] Johann Gasteiger,et al. New Publicly Available Chemical Query Language, CSRML, To Support Chemotype Representations for Application to Data Mining and Modeling , 2015, J. Chem. Inf. Model..
[93] Li Li,et al. Tracking chemicals in products around the world: introduction of a dynamic substance flow analysis model and application to PCBs. , 2016, Environment international.
[94] Barbara A. Wetmore,et al. Advancing internal exposure and physiologically-based toxicokinetic modeling for 21st-century risk assessments , 2018, Journal of Exposure Science & Environmental Epidemiology.
[95] John F. Young,et al. A physiologically based pharmacokinetic computer model for human pregnancy. , 1994, Teratology.
[96] Kamel Mansouri,et al. Rapid experimental measurements of physicochemical properties to inform models and testing. , 2018, The Science of the total environment.
[97] Tatsiana Dudzina,et al. The probabilistic aggregate consumer exposure model (PACEM): validation and comparison to a lower-tier assessment for the cyclic siloxane D5. , 2015, Environment international.
[98] Harvey J. Clewell,et al. High-throughput in-silico prediction of ionization equilibria for pharmacokinetic modeling. , 2018, The Science of the total environment.
[99] Paul S Price,et al. Consumer product chemical weight fractions from ingredient lists , 2018, Journal of Exposure Science and Environmental Epidemiology.
[100] Morton Lippmann,et al. Exposure science in the 21st century: a vision and a strategy , 2013, Journal of Exposure Science and Environmental Epidemiology.
[101] Robert J Kavlock,et al. Integration of dosimetry, exposure, and high-throughput screening data in chemical toxicity assessment. , 2012, Toxicological sciences : an official journal of the Society of Toxicology.
[102] Peter Fantke,et al. High-throughput exposure modeling to support prioritization of chemicals in personal care products. , 2016, Chemosphere.
[103] Michael A. Gonzalez,et al. Coupling Computer-Aided Process Simulation and Estimations of Emissions and Land Use for Rapid Life Cycle Inventory Modeling. , 2017, ACS sustainable chemistry & engineering.
[104] R. Woodrow Setzer,et al. A Method for Identifying Prevalent Chemical Combinations in the U.S. Population , 2017, Environmental health perspectives.
[105] Peter Fantke,et al. Consensus Modeling of Median Chemical Intake for the U.S. Population Based on Predictions of Exposure Pathways. , 2018, Environmental science & technology.
[106] Kamel Mansouri,et al. EPA’s non-targeted analysis collaborative trial (ENTACT): genesis, design, and initial findings , 2018, Analytical and Bioanalytical Chemistry.
[107] A. M. Api,et al. Application of the expanded Creme RIFM consumer exposure model to fragrance ingredients in cosmetic, personal care and air care products , 2017, Regulatory toxicology and pharmacology : RTP.
[108] R. Judson,et al. High throughput heuristics for prioritizing human exposure to environmental chemicals. , 2014, Environmental science & technology.
[109] CHUN WEI YAP,et al. PaDEL‐descriptor: An open source software to calculate molecular descriptors and fingerprints , 2011, J. Comput. Chem..
[110] Yu-Mei Tan,et al. Improving the risk assessment of lipophilic persistent environmental chemicals in breast milk , 2014, Critical reviews in toxicology.
[111] Division on Earth. Using 21st Century Science to Improve Risk-Related Evaluations , 2017 .
[112] Robert G. Pearce,et al. Evaluating In Vitro-In Vivo Extrapolation of Toxicokinetics , 2018, Toxicological sciences : an official journal of the Society of Toxicology.
[113] Robert J Kavlock,et al. Incorporating human dosimetry and exposure into high-throughput in vitro toxicity screening. , 2010, Toxicological sciences : an official journal of the Society of Toxicology.
[114] Li Li,et al. Estimating industrial and domestic environmental releases of perfluorooctanoic acid and its salts in China from 2004 to 2012. , 2015, Chemosphere.
[115] Peter Fantke,et al. Exploring consumer exposure pathways and patterns of use for chemicals in the environment , 2015, Toxicology reports.
[116] Aubrey Miller,et al. EPA's exposure assessment tools and models. , 2003, Applied occupational and environmental hygiene.
[117] Daniel Vallero,et al. Statistical properties of longitudinal time-activity data for use in human exposure modeling , 2013, Journal of Exposure Science and Environmental Epidemiology.
[118] Erik Uhde,et al. Analysis of odour compounds from scented consumer products using gas chromatography-mass spectrometry and gas chromatography-olfactometry. , 2016, Analytica chimica acta.
[119] Thomas Letzel,et al. Non-target screening with high-resolution mass spectrometry: critical review using a collaborative trial on water analysis , 2015, Analytical and Bioanalytical Chemistry.
[120] Yu-Mei Tan,et al. Reconstructing Human Exposures Using Biomarkers and other “Clues” , 2012, Journal of toxicology and environmental health. Part B, Critical reviews.
[121] E. Purdom,et al. Diversity of the Human Intestinal Microbial Flora , 2005, Science.
[122] E. Faustman,et al. Mechanisms underlying Children's susceptibility to environmental toxicants. , 2000, Environmental health perspectives.
[123] R. Milo,et al. Revised Estimates for the Number of Human and Bacteria Cells in the Body , 2016, bioRxiv.
[124] Jon A Arnot,et al. A Model for Risk-Based Screening and Prioritization of Human Exposure to Chemicals from Near-Field Sources. , 2018, Environmental science & technology.
[125] Marina Sirota,et al. A Suspect Screening Method for Characterizing Multiple Chemical Exposures among a Demographically Diverse Population of Pregnant Women in San Francisco , 2018, Environmental health perspectives.
[126] Hugh A Barton,et al. Evaluation of physiologically based pharmacokinetic models for use in risk assessment , 2007, Journal of applied toxicology : JAT.
[127] C Sparacino,et al. The TEAM (Total Exposure Assessment Methodology) Study: personal exposures to toxic substances in air, drinking water, and breath of 400 residents of New Jersey, North Carolina, and North Dakota. , 1987, Environmental research.
[128] Timo Hamers,et al. Highly Selective Screening of Estrogenic Compounds in Consumer-Electronics Plastics by Liquid Chromatography in Parallel Combined with Nanofractionation-Bioactivity Detection and Mass Spectrometry. , 2016, Environmental science & technology.
[129] Kamel Mansouri,et al. Suspect screening and non-targeted analysis of drinking water using point-of-use filters. , 2018, Environmental pollution.
[130] Michael S. McLachlan,et al. Prioritizing Chemicals and Data Requirements for Screening-Level Exposure and Risk Assessment , 2012, Environmental health perspectives.
[131] Thomas E. Graedel,et al. ON THE CONCEPT OF INDUSTRIAL ECOLOGY , 1996 .
[132] Yuan Tian,et al. Dietary Broccoli Impacts Microbial Community Structure and Attenuates Chemically Induced Colitis in Mice in an Ah receptor dependent manner. , 2017, Journal of functional foods.
[133] A. Sabljic,et al. QSAR models for estimating properties of persistent organic pollutants required in evaluation of their environmental fate and risk. , 2001, Chemosphere.
[134] Konrad Hungerbühler,et al. Investigation of the Cold Condensation of Persistent Organic Pollutants with a Global Multimedia Fate Model , 2000 .
[135] C. Wild. Complementing the Genome with an “Exposome”: The Outstanding Challenge of Environmental Exposure Measurement in Molecular Epidemiology , 2005, Cancer Epidemiology Biomarkers & Prevention.
[136] Julie B. Zimmerman,et al. Cradle-to-Gate Greenhouse Gas Emissions for Twenty Anesthetic Active Pharmaceutical Ingredients Based on Process Scale-Up and Process Design Calculations , 2019, ACS Sustainable Chemistry and Engineering.
[137] Michael Zimmermann,et al. Separating host and microbiome contributions to drug pharmacokinetics and toxicity , 2019, Science.
[138] Zhishi Guo,et al. Chamber study of PCB emissions from caulking materials and light ballasts. , 2015, Chemosphere.
[139] Bas J Blaauboer,et al. Evaluation of simple in vitro to in vivo extrapolation approaches for environmental compounds. , 2014, Toxicology in vitro : an international journal published in association with BIBRA.
[140] Benno Schwikowski,et al. From the exposome to mechanistic understanding of chemical-induced adverse effects. , 2017, Environment international.
[141] Harvey J Clewell,et al. Development and specification of physiologically based pharmacokinetic models for use in risk assessment. , 2008, Regulatory toxicology and pharmacology : RTP.
[142] Ann M. Richard,et al. Using prepared mixtures of ToxCast chemicals to evaluate non-targeted analysis (NTA) method performance , 2019, Analytical and Bioanalytical Chemistry.
[143] Olivier Jolliet,et al. A parsimonious model for the release of volatile organic compounds (VOCs) encapsulated in products , 2016 .
[144] Antony J. Williams,et al. Integrating tools for non-targeted analysis research and chemical safety evaluations at the US EPA , 2017, Journal of Exposure Science & Environmental Epidemiology.
[145] Emma L. Schymanski,et al. Identifying small molecules via high resolution mass spectrometry: communicating confidence. , 2014, Environmental science & technology.
[146] Jon A Arnot,et al. Screening level risk assessment model for chemical fate and effects in the environment. , 2006, Environmental science & technology.
[147] E. J. Furtaw,et al. An overview of human exposure modeling activities at the USEPA’s National Exposure Research Laboratory , 2001, Toxicology and industrial health.
[148] Lei Huang,et al. Coupled near-field and far-field exposure assessment framework for chemicals in consumer products. , 2016, Environment international.
[149] Qiang Wang,et al. The inventory of sources, environmental releases and risk assessment for perfluorooctane sulfonate in China. , 2012, Environmental pollution.
[150] Kristin Isaacs,et al. Simulating exposure-related behaviors using agent-based models embedded with needs-based artificial intelligence , 2018, Journal of Exposure Science & Environmental Epidemiology.
[151] Yu-Mei Tan,et al. A biomonitoring framework to support exposure and risk assessments. , 2011, The Science of the total environment.
[152] Manuele Margni,et al. Impact of Occupational Exposure to Chemicals in Life Cycle Assessment: A Novel Characterization Model Based on Measured Concentrations and Labor Hours. , 2015, Environmental science & technology.
[153] Olivier Jolliet,et al. Building a model based on scientific consensus for Life Cycle Impact Assessment of chemicals: the search for harmony and parsimony. , 2008, Environmental science & technology.
[154] Rebecca A Clewell,et al. Pharmacokinetics of toxic chemicals in breast milk: use of PBPK models to predict infant exposure. , 2002, Environmental health perspectives.
[155] Wendy McKelvey,et al. Population-Based Inorganic Mercury Biomonitoring and the Identification of Skin Care Products as a Source of Exposure in New York City , 2010, Environmental health perspectives.
[156] Yirui Liang,et al. Measurements of Parameters Controlling the Emissions of Organophosphate Flame Retardants in Indoor Environments. , 2018, Environmental science & technology.
[157] Valerie G Zartarian,et al. Biologically based modeling of multimedia, multipathway, multiroute population exposures to arsenic , 2008, Journal of Exposure Science and Environmental Epidemiology.
[158] Jon R. Sobus,et al. Distribution, variability, and predictors of urinary bisphenol A levels in 50 North Carolina adults over a six-week monitoring period , 2017, Environment international.
[159] Division on Earth. Risk Assessment in the Federal Government: Managing the Process , 1983 .
[160] Robin E. Dodson,et al. Advancements in Life Cycle Human Exposure and Toxicity Characterization , 2018, Environmental health perspectives.
[161] Alan D. Lopez,et al. A comparative risk assessment of burden of disease and injury attributable to 67 risk factors and risk factor clusters in 21 regions, 1990–2010: a systematic analysis for the Global Burden of Disease Study 2010 , 2012, The Lancet.
[162] D. Dix,et al. The ToxCast program for prioritizing toxicity testing of environmental chemicals. , 2007, Toxicological sciences : an official journal of the Society of Toxicology.
[163] Tao Hong,et al. Characterization and prediction of chemical functions and weight fractions in consumer products , 2016, Toxicology reports.
[164] Melvin E. Andersen,et al. Incorporating High-Throughput Exposure Predictions With Dosimetry-Adjusted In Vitro Bioactivity to Inform Chemical Toxicity Testing , 2015, Toxicological sciences : an official journal of the Society of Toxicology.
[165] Stephen W. Edwards,et al. Identification and Prioritization of Relationships between Environmental Stressors and Adverse Human Health Impacts , 2015, Environmental health perspectives.
[166] Harvey J Clewell,et al. Relative impact of incorporating pharmacokinetics on predicting in vivo hazard and mode of action from high-throughput in vitro toxicity assays. , 2013, Toxicological sciences : an official journal of the Society of Toxicology.
[167] Ord,et al. Exposure Factors Handbook (2011 Edition) , 2015 .
[168] Tao Hong,et al. The Chemical and Products Database, a resource for exposure-relevant data on chemicals in consumer products , 2018, Scientific Data.
[169] Konrad Hungerbühler,et al. The State of Multimedia Mass-Balance Modeling in Environmental Science and Decision-Making , 2010 .