A simulation model for the prediction of tissue:plasma partition coefficients for drug residues in natural casings.
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[1] Sven Björkman,et al. Prediction of drug disposition in infants and children by means of physiologically based pharmacokinetic (PBPK) modelling: theophylline and midazolam as model drugs. , 2005, British journal of clinical pharmacology.
[2] S. Ziccone,et al. Pharmacokinetics of intravenous and oral salbutamol and its sulphate conjugate. , 1986, British journal of clinical pharmacology.
[3] David S. Wishart,et al. DrugBank: a knowledgebase for drugs, drug actions and drug targets , 2007, Nucleic Acids Res..
[4] F. Theil,et al. A priori prediction of tissue:plasma partition coefficients of drugs to facilitate the use of physiologically-based pharmacokinetic models in drug discovery. , 2000, Journal of pharmaceutical sciences.
[5] G. Grass,et al. Physiologically-based pharmacokinetic simulation modelling. , 2002, Advanced drug delivery reviews.
[6] U. Holzgrabe,et al. Plasma protein binding of gyrase inhibitors. , 1998, Journal of pharmaceutical sciences.
[7] Aziza,et al. Some Pharmacokinetic Data for Danofloxacin in Healthy Goats , 2001, Veterinary Research Communications.
[8] F. Theil,et al. Prediction of adipose tissue: plasma partition coefficients for structurally unrelated drugs. , 2001, Journal of pharmaceutical sciences.
[9] P. Lees,et al. Pharmacokinetics (PK), Pharmacodynamics (PD), and PK-PD Integration of Danofloxacin in Sheep Biological Fluids , 2003, Antimicrobial Agents and Chemotherapy.
[10] M. Shimoda,et al. Pharmacokinetics and Bioavailability of Florfenicol Following Intravenous, Intramuscular and Oral Administrations in Rabbits , 2004, Veterinary Research Communications.
[11] Han van de Waterbeemd,et al. Simulation models for drug disposition and drug interactions , 2004 .
[12] H. Sauerwein,et al. Characterisation of the affinity of different anabolics and synthetic hormones to the human androgen receptor, human sex hormone binding globulin and to the bovine progestin receptor , 2000, APMIS : acta pathologica, microbiologica, et immunologica Scandinavica.
[13] M. Świtała,et al. Pharmacokinetics of florfenicol, thiamphenicol, and chloramphenicol in turkeys. , 2007, Journal of veterinary pharmacology and therapeutics.
[14] W. Rodkey,et al. Splenic red cell sequestration and blood volume measurements in conscious pigs. , 1985, The American journal of physiology.
[15] Olav Sand,et al. Physiology of Domestic Animals , 2007 .
[16] H. Vial,et al. Cationomycin and monensin partition between serum proteins and erythrocyte membrane: consequences for Na+ and K+ transport and antimalarial activities. , 1999, Archives of biochemistry and biophysics.
[17] M. Welch,et al. 6α-[18F]Fluoroprogesterone: Synthesis via halofluorination-oxidation, receptor binding and tissue distribution , 1995 .
[18] P. Meulenberg,et al. Salivary progesterone excellently reflects free and total progesterone in plasma during pregnancy. , 1989, Clinical chemistry.
[19] Patrick Poulin,et al. Prediction of pharmacokinetics prior to in vivo studies. II. Generic physiologically based pharmacokinetic models of drug disposition. , 2002, Journal of pharmaceutical sciences.
[20] J. Estelrich,et al. Physicochemical properties of enrofloxacin. , 1997, Journal of pharmaceutical and biomedical analysis.
[21] B. Fichtl,et al. Binding of drugs to tissues. , 1983, Drug metabolism reviews.
[22] J. R. Howes,et al. Blood Volume of Brahman and Hereford Cattle as Measured by Injected Radioiodinated Bovine Serum Albumin , 1963 .
[23] M. Arboix,et al. Thiamphenicol disposition in pigs. , 1999, Research in veterinary science.
[24] S. Symchowicz,et al. Plasma binding of betamethasone-3H, dexamethasone-3H, and cortisol-14C--a comparative study. , 1969, Biochemical pharmacology.
[25] G. Grass. Physiologically-based pharmacokinetic simulation modeling , 2002 .
[26] F. Aarestrup,et al. Distribution of enrofloxacin in intestinal tissue and contents of healthy pigs after oral and intramuscular administrations. , 2002, Journal of veterinary pharmacology and therapeutics.
[27] Leslie D. Thompson,et al. A simplified method for cholesterol determination in meat and meat products , 2008 .
[28] A. Hirschfelder. THE UNITED STATES PHARMACOPEIAL CONVENTION , 1930 .
[29] J. Wood,et al. Manipulating the fatty acid composition of muscle and adipose tissue in beef cattle , 2001, British Journal of Nutrition.
[30] S. Yalkowsky,et al. Comparison of the octanol/water partition coefficients calculated by ClogP, ACDlogP and KowWin to experimentally determined values. , 2005, International journal of pharmaceutics.
[31] Takemi Yoshida,et al. Quantitative estimation of myocardial fibrosis based on receptor occupancy for beta2-adrenergic receptor agonists in rats. , 2004, The Journal of toxicological sciences.
[32] J A Nienaber,et al. Effect of fasting and transportation on various physiological parameters and meat quality of slaughter hogs. , 1989, Journal of animal science.
[33] Patrick Poulin,et al. Utility of physiologically based pharmacokinetic models to drug development and rational drug discovery candidate selection. , 2003, Toxicology letters.
[34] T. Terasaki,et al. Physiologically Based Pharmacokinetic Model for β-Lactam Antibiotics I: Tissue Distribution and Elimanation Rates , 1983 .
[35] E. I. Evans,et al. Comparison of fluoroquinolone pharmacokinetic parameters after treatment with marbofloxacin, enrofloxacin, and difloxacin in dogs. , 2000, Journal of veterinary pharmacology and therapeutics.
[36] R. Little. Changes in the blood volume of the rabbit with age , 1970, The Journal of physiology.
[37] G. Plastow,et al. Association between body composition of growing pigs determined by magnetic resonance imaging, deuterium dilution technique, and chemical analysis. , 2006, Meat science.
[38] D. Prough,et al. Volume Turnover Kinetics of Fluid Shifts after Hemorrhage, Fluid Infusion, and the Combination of Hemorrhage and Fluid Infusion in Sheep , 2005, Anesthesiology.
[39] J. Sutra,et al. Metabolism and disposition of [3H]zeranol implanted in the pig , 1992 .
[40] W. R. Duncan,et al. Blood lipids. 5. The lipids of sheep plasma. , 1964, The Biochemical journal.
[41] Patrick Poulin,et al. Prediction of pharmacokinetics prior to in vivo studies. 1. Mechanism-based prediction of volume of distribution. , 2002, Journal of pharmaceutical sciences.
[42] Kannan Krishnan,et al. Molecular Structure-Based Prediction of the Partition Coefficients of Organic Chemicals for Physiological Pharmacokinetic Models , 1996 .
[43] Kazuto Yamazaki,et al. Computational prediction of the plasma protein-binding percent of diverse pharmaceutical compounds. , 2004, Journal of pharmaceutical sciences.
[44] J. Schrickx. ABC-transporters in the pig , 2006 .
[45] D. Brocks,et al. Stereoselective Pharmacokinetics and Pharmacodynamics of Anti-Asthma Agents , 2002, The Annals of pharmacotherapy.
[46] K. Krishnan,et al. A tissue composition-based algorithm for predicting tissue:air partition coefficients of organic chemicals. , 1996, Toxicology and applied pharmacology.
[47] W. Welshons,et al. The Effective Free Fraction of Estradiol and Xenoestrogens in Human Serum Measured by Whole Cell Uptake Assays: Physiology of Delivery Modifies Estrogenic Activity , 1998, Proceedings of the Society for Experimental Biology and Medicine. Society for Experimental Biology and Medicine.
[48] L. Aarons,et al. Quantitative Structure–Pharmacokinetics Relationships: II. A Mechanistically Based Model to Evaluate the Relationship Between Tissue Distribution Parameters and Compound Lipophilicity , 1998, Journal of Pharmacokinetics and Biopharmaceutics.
[49] J. Sharp,et al. Blood volume determination in the mouse , 1973, The Journal of physiology.
[50] N. A. Cole,et al. Influence of a three-day feed and water deprivation period on gut fill, tissue weights, and tissue composition in mature wethers. , 1995, Journal of animal science.
[51] Q. Mckellar,et al. Pharmacokinetics of Enrofloxacin and Danofloxacin in Plasma, Inflammatory Exudate, and Bronchial Secretions of Calves following Subcutaneous Administration , 1999, Antimicrobial Agents and Chemotherapy.
[52] T. Hoagland,et al. Effect of dietary bulk on organ mass, fasting heat production and metabolism of the small and large intestines in sheep. , 1988, The Journal of nutrition.
[53] T. Iga,et al. Pharmacokinetic study on the mechanism of tissue distribution of doxorubicin: interorgan and interspecies variation of tissue-to-plasma partition coefficients in rats, rabbits, and guinea pigs. , 1984, Journal of pharmaceutical sciences.
[54] J. López-Pedrosa,et al. Severe malnutrition alters lipid composition and fatty acid profile of small intestine in newborn piglets. , 1998, The Journal of nutrition.
[55] S. Banni,et al. Total Lipids of Sarda Sheep Meat that Include the Fatty Acid and Alkenyl Composition and the CLA and Trans-18:1 Isomers , 2007, Lipids.
[56] K. Krishnan,et al. Mechanistic Animal-Replacement Approaches for Predicting Pharmacokinetics of Organic Chemicals , 1999 .
[57] T. Whittem,et al. Effect of polyaspartic acid on pharmacokinetics of gentamicin after single intravenous dose in the dog , 1996, Antimicrobial agents and chemotherapy.
[58] B. Testa,et al. Determination of lipophilicity by reversed-phase high-performance liquid chromatography. Influence of 1-octanol in the mobile phase. , 2005, Journal of chromatography. A.
[59] J. Wood,et al. Effect of a high-linolenic acid diet on lipogenic enzyme activities, fatty acid composition, and meat quality in the growing pig. , 2003, Journal of animal science.
[60] C. Fry,et al. Membrane action of chloramphenicol measured by protozoan motility inhibition , 1996, Archives of Toxicology.