Bayesian Calibration of a Physiologically Based Pharmacokinetic/Pharmacodynamic Model of Carbaryl Cholinesterase Inhibition
暂无分享,去创建一个
Harvey J. Clewell | Yu-Mei Tan | Andy Nong | Rory B. Conolly | Curt Lunchick | Jiansuo Wang | H. Clewell | R. Conolly | A. Nong | Y. Tan | Michael E. Krolski | C. Lunchick | Jiansuo Wang | M. Krolski
[1] Rogelio Tornero-Velez,et al. Development of a physiologically based pharmacokinetic model for deltamethrin in the adult male Sprague-Dawley rat. , 2006, Toxicological sciences : an official journal of the Society of Toxicology.
[2] R. Branch,et al. Carbaryl metabolism is inhibited by cimetidine in the isolated perfused rat liver and in man. , 1988, Journal of toxicology. Clinical toxicology.
[3] M. Hooper,et al. Rat brain acetylcholinesterase activity: developmental profile and maturational sensitivity to carbamate and organophosphorus inhibitors. , 1998, Toxicology.
[4] G. W. Jepson,et al. Physiologically based pharmacokinetic model for the inhibition of acetylcholinesterase by organophosphate esters. , 1994, Environmental health perspectives.
[5] L. J. Sullivan,et al. Metabolic Fate, Metabolism of Carbaryl in Rat, Guinea Pin, and Man , 1965 .
[6] Brian J. Smith,et al. BAYESIAN OUTPUT ANALYSIS PROGRAM (BOA) VERSION 1.1 USER'S MANUAL , 2003 .
[7] Melvin E. Andersen,et al. Physiologically based pharmacokinetic and pharmacodynamic model for the inhibition of acetylcholinesterase by diisopropyfluorophosphate , 1990 .
[8] R. Branch,et al. Cimetidine-carbaryl interaction in humans: evidence for an active metabolite of carbaryl. , 1992, The Journal of pharmacology and experimental therapeutics.
[9] F Y Bois,et al. Statistical issues in toxicokinetic modeling: a bayesian perspective. , 2000, Environmental health perspectives.
[10] P. Blain,et al. Nature and role of xenobiotic metabolizing esterases in rat liver, lung, skin and blood. , 1993, Biochemical pharmacology.
[11] F Y Bois,et al. Statistical analysis of Fisher et al. PBPK model of trichloroethylene kinetics. , 2000, Environmental health perspectives.
[12] C. Cambon,et al. Foetal and maternal rat brain acetylcholinesterase: Isoenzymes changes following insecticidal carbamate derivatives poisoning , 1980, Archives of Toxicology.
[13] G. H. Roberts,et al. Comparative Inhibition of Rodent and Human Erythrocyte Acetylcholinesterase by Carbofuran and Carbaryl , 1994 .
[14] J. Bridges,et al. Pharmacokinetics and metabolism of two carbamate insecticides, carbaryl and landrin, in the rat. , 1975, Xenobiotica; the fate of foreign compounds in biological systems.
[15] C. Wang,et al. The role of non-critical binding proteins in the sensitivity of acetylcholinesterase from different species to diisopropyl fluorophosphate (DFP), in vitro. , 1982, Life sciences.
[16] A. Main,et al. Purification of horse serum cholinesterase by preparative polyacrylamide gel electrophoresis. , 1972, The Journal of biological chemistry.
[17] A A Kousba,et al. Physiologically based pharmacokinetic/pharmacodynamic model for the organophosphorus pesticide diazinon. , 2004, Neurotoxicology.
[18] D. Camann,et al. Correlation of environmental carbaryl measurements with serum and urinary 1-naphthol measurements in a farmer applicator and his family. , 1997, Environmental health perspectives.
[19] K. Krishnan,et al. A mechanistic algorithm for predicting blood:air partition coefficients of organic chemicals with the consideration of reversible binding in hemoglobin. , 1996, Toxicology and applied pharmacology.
[20] M. Sogorb,et al. Enzymes involved in the detoxification of organophosphorus, carbamate and pyrethroid insecticides through hydrolysis. , 2002, Toxicology letters.
[21] P. Masson,et al. Pesticides and susceptible populations: people with butyrylcholinesterase genetic variants may be at risk. , 2000, Neurotoxicology.
[22] Fredrik U. Jönsson,et al. Physiologically based pharmacokinetic modeling of inhalation exposure of humans to dichloromethane during moderate to heavy exercise. , 2001, Toxicological sciences : an official journal of the Society of Toxicology.
[23] C Eric Hack,et al. Bayesian analysis of physiologically based toxicokinetic and toxicodynamic models. , 2006, Toxicology.
[24] Fillmore Cm,et al. A cholinesterase testing program for pesticide applicators. , 1993 .
[25] K. Thrall,et al. EVALUATION OF THE DERMAL ABSORPTION OF AQUEOUS TOLUENE IN F344 RATS USING REAL-TIME BREATH ANALYSIS AND PHYSIOLOGICALLY BASED PHARMACOKINETIC MODELING , 2002, Journal of toxicology and environmental health. Part A.
[26] Bradley P. Carlin,et al. BAYES AND EMPIRICAL BAYES METHODS FOR DATA ANALYSIS , 1996, Stat. Comput..
[27] C. P. Carpenter,et al. Insecticide Toxicology, Mammalian Toxicity of 1-Naphthyl-N-methylcarbamate (Sevin Insecticide) , 1961 .
[28] F Y Bois,et al. Population toxicokinetics of benzene. , 1996, Environmental health perspectives.
[29] A. Strother,et al. Excretion and disposition of [14C]carbaryl in pregnant, non-pregnant and foetal tissues of the rat after acute administration. , 1980, Xenobiotica; the fate of foreign compounds in biological systems.
[30] M. Delp,et al. Physiological Parameter Values for Physiologically Based Pharmacokinetic Models , 1997, Toxicology and industrial health.
[31] R. Krieger,et al. Sublethal Acute Toxicity of Carbosulfan [2,3-dihydro-2,2-dimethyl-7-benzofuranyl(di-n-butylaminosulfenyl)(methyl)carbamate] in the Rat after Intravenous and Oral Exposures , 1986 .
[32] S. Mitra,et al. Inhibition of human fetal brain acetylcholinesterase: marker effect of neurotoxicity. , 1991, Journal of toxicology and environmental health.
[33] E. Hodgson,et al. In vitro metabolism of carbaryl by human cytochrome P450 and its inhibition by chlorpyrifos. , 2002, Chemico-biological interactions.
[34] M. Falzon,et al. Carbaryl tricompartmental toxicokinetics and anticholinesterase activity. , 1982, Toxicology letters.
[35] D. M. Maxwell,et al. The effects of blood flow and detoxification on in vivo cholinesterase inhibition by soman in rats. , 1987, Toxicology and applied pharmacology.
[36] P. Bénard,et al. Foetal accumulation of [14C] carbaryl in rats and mice. Autoradiographic study. , 1977, Toxicology.
[37] C Timchalk,et al. A Physiologically based pharmacokinetic and pharmacodynamic (PBPK/PD) model for the organophosphate insecticide chlorpyrifos in rats and humans. , 2002, Toxicological sciences : an official journal of the Society of Toxicology.
[38] F. Oehme,et al. Carbaryl residues in tissues and cholinesterase activities in brain and blood of rats receiving carbaryl. , 1981, Toxicology and applied pharmacology.
[39] M. Abdel‐Rahman,et al. Alterations in rat liver microsomal enzymes following exposure to carbaryl and malathion in combination , 1985, Archives of environmental contamination and toxicology.
[40] M. Suckow,et al. The laboratory rat , 2006 .
[41] S. Fujisawa,et al. Distribution and biliary excretion of carbaryl, dieldrin and paraquat in rats: effect of diets. , 1980, The Journal of toxicological sciences.
[42] H J Clewell,et al. Dermal absorption of organic chemical vapors in rats and humans. , 1990, Fundamental and applied toxicology : official journal of the Society of Toxicology.
[43] R. Dawson. Rate constants of carbamylation and decarbamylation of acetylcholinesterase for physostigmine and carbaryl in the presence of an oxime , 1994, Neurochemistry International.