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Development of a physiologically based pharmacokinetic model of trichloroethylene and its metabolites for use in risk assessment.
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Bayesian population analysis of a harmonized physiologically based pharmacokinetic model of trichloroethylene and its metabolites.
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Pharmacokinetic modeling of trichloroethylene and trichloroacetic acid in humans.
Risk Anal. 1993 Feb;13(1):71-86. doi: 10.1111/j.1539-6924.1993.tb00730.x.

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A biologically based computational model for the hypothalamic-pituitary-thyroid (HPT) axis in Xenopus laevis larvae.
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Human health effects of trichloroethylene: key findings and scientific issues.
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Application of physiologically based pharmacokinetic models in chemical risk assessment.
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3
Evaluating noncancer effects of trichloroethylene: dosimetry, mode of action, and risk assessment.
Environ Health Perspect. 2000 May;108 Suppl 2(Suppl 2):323-34. doi: 10.1289/ehp.00108s2323.
4
Renal cell cancer correlated with occupational exposure to trichloroethene.
J Cancer Res Clin Oncol. 1998;124(7):374-82. doi: 10.1007/s004320050186.
5
Physiological parameter values for physiologically based pharmacokinetic models.
Toxicol Ind Health. 1997 Jul-Aug;13(4):407-84. doi: 10.1177/074823379701300401.
7
Conversion of trichloroacetic acid to dichloroacetic acid in biological samples.
J Anal Toxicol. 1996 Jul-Aug;20(4):236-41. doi: 10.1093/jat/20.4.236.
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9
A 90-day chloroform inhalation study in F-344 rats: profile of toxicity and relevance to cancer studies.
Fundam Appl Toxicol. 1996 Jul;32(1):109-25. doi: 10.1006/faat.1996.0113.
10
The role of regenerative cell proliferation in chloroform-induced cancer.
Toxicol Lett. 1995 Dec;82-83:23-6. doi: 10.1016/0378-4274(95)03543-5.

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