Literature DB >> 11178572

Application of modelling techniques to the planning of in vitro arsenic kinetic studies.

E M Kenyon1, M Fea, M Styblo, M V Evans.   

Abstract

A kinetic model describing the hepatic methylation of arsenite [As(III)] was developed on the basis of limited data from in vitro mechanistic studies. The model structure is as follows: sequential enzymic methylation of arsenite to its monomethylated (MMA) and dimethylated (DMA) products by first-order and Michaelis-Menten kinetics, respectively; uncompetitive inhibition of the formation of DMA by As(III); and first-order reversible binding of As(III), MMA and DMA to cytosolic proteins. Numerical sensitivity analysis was used to evaluate systematically the impact of changes in input parameters on model responses. Sensitivity analysis was used to investigate the possibility of designing experiments for robust testing of the uncompetitive inhibition hypothesis, and for further refining the model. Based on the sensitivity analysis, the MMA concentration is the most important response on which to focus. The parameters V(max) and k(i) can be reliably estimated by using the same concentration time-course data at intermediate initial arsenite concentrations of 1--5microM at 30 +/- 5 minutes. K(m) must be estimated independently of V(max), since the two parameters are highly correlated at all times, and the optimal experimental conditions would include lower initial concentrations of arsenite (0.1--0.5microM) and earlier time-points (about 8--18 minutes). The use of initial arsenite concentrations much above 5microM would not yield additional useful information, because the sensitivity coefficients for MMA, protein-bound MMA, DMA and protein-bound DMA tend to become extremely small or exhibit erratic trends. Overall trends in the sensitivity analysis indicated the desirability of performing measurements at times shorter than 60 minutes. This work demonstrates that physiological modelling and sensitivity analysis can be efficient tools for experimental planning and hypothesis testing when applied in the earliest phases of kinetic model development, thus allowing more-efficient and more-directed experimentation, and minimising the use of laboratory animals.

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Year:  2001        PMID: 11178572     DOI: 10.1177/026119290102900109

Source DB:  PubMed          Journal:  Altern Lab Anim        ISSN: 0261-1929            Impact factor:   1.303


  5 in total

1.  Pharmacokinetic modeling of arsenite uptake and metabolism in hepatocytes--mechanistic insights and implications for further experiments.

Authors:  Michael R Easterling; Miroslav Styblo; Marina V Evans; Elaina M Kenyon
Journal:  J Pharmacokinet Pharmacodyn       Date:  2002-06       Impact factor: 2.745

2.  Development of a human physiologically based pharmacokinetic (PBPK) model for inorganic arsenic and its mono- and di-methylated metabolites.

Authors:  Hisham A El-Masri; Elaina M Kenyon
Journal:  J Pharmacokinet Pharmacodyn       Date:  2007-10-18       Impact factor: 2.745

3.  Mathematical model insights into arsenic detoxification.

Authors:  Sean D Lawley; Molly Cinderella; Megan N Hall; Mary V Gamble; H Frederik Nijhout; Michael C Reed
Journal:  Theor Biol Med Model       Date:  2011-08-26       Impact factor: 2.432

Review 4.  Arsenic toxicokinetic modeling and risk analysis: Progress, needs and applications.

Authors:  Elaina M Kenyon
Journal:  Toxicology       Date:  2021-05-07       Impact factor: 4.571

5.  Mathematical modeling of the effects of glutathione on arsenic methylation.

Authors:  Sean D Lawley; Jina Yun; Mary V Gamble; Megan N Hall; Michael C Reed; H Frederik Nijhout
Journal:  Theor Biol Med Model       Date:  2014-05-16       Impact factor: 2.432

  5 in total

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