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DOI | 10.1093/toxsci/kfs320 |
Application of an Updated Physiologically Based Pharmacokinetic Model for Chloroform to Evaluate CYP2E1-Mediated Renal Toxicity in Rats and Mice | |
Sasso, Alan F.1; Schlosser, Paul M.2; Kedderis, Gregory L.; Genter, Mary Beth3,4; Snawder, John E.5; Li, Zheng1; Rieth, Susan1; Lipscomb, John C.6 | |
发表日期 | 2013-02-01 |
ISSN | 1096-6080 |
卷号 | 131期号:2页码:360-374 |
英文摘要 | Physiologically based pharmacokinetic (PBPK) models are tools for interpreting toxicological data and extrapolating observations across species and route of exposure. Chloroform (CHCl3) is a chemical for which there are PBPK models available in different species and multiple sites of toxicity. Because chloroform induces toxic effects in the liver and kidneys via production of reactive metabolites, proper characterization of metabolism in these tissues is essential for risk assessment. Although hepatic metabolism of chloroform is adequately described by these models, there is higher uncertainty for renal metabolism due to a lack of species-specific data and direct measurements of renal metabolism. Furthermore, models typically fail to account for regional differences in metabolic capacity within the kidney. Mischaracterization of renal metabolism may have a negligible effect on systemic chloroform levels, but it is anticipated to have a significant impact on the estimated site-specific production of reactive metabolites. In this article, rate parameters for chloroform metabolism in the kidney are revised for rats, mice, and humans. New in vitro data were collected in mice and humans for this purpose and are presented here. The revised PBPK model is used to interpret data of chloroform-induced kidney toxicity in rats and mice exposed via inhalation and drinking water. Benchmark dose (BMD) modeling is used to characterize the dose-response relationship of kidney toxicity markers as a function of PBPK-derived internal kidney dose. Applying the PBPK model, it was also possible to characterize the dose response for a recent data set of rats exposed via multiple routes simultaneously. Consistent BMD modeling results were observed regardless of species or route of exposure. |
英文关键词 | PBPK;chloroform;kidney;renal toxicity;model |
语种 | 英语 |
WOS记录号 | WOS:000314153100004 |
来源期刊 | TOXICOLOGICAL SCIENCES |
来源机构 | 美国环保署 |
文献类型 | 期刊论文 |
条目标识符 | http://gcip.llas.ac.cn/handle/2XKMVOVA/59891 |
作者单位 | 1.US EPA, Natl Ctr Environm Assessment, Off Res & Dev, Washington, DC 20460 USA; 2.US EPA, Natl Ctr Environm Assessment, Off Res & Dev, Res Triangle Pk, NC 27711 USA; 3.Univ Cincinnati, Dept Environm Hlth, Cincinnati, OH USA; 4.Univ Cincinnati, Ctr Environm Genet, Cincinnati, OH USA; 5.NIOSH, Biomonitoring & Hlth Assessment Branch, Div Appl Res & Technol, Ctr Dis Control & Prevent, Cincinnati, OH 45226 USA; 6.US EPA, Natl Ctr Environm Assessment, Off Res & Dev, Cincinnati, OH 45268 USA |
推荐引用方式 GB/T 7714 | Sasso, Alan F.,Schlosser, Paul M.,Kedderis, Gregory L.,et al. Application of an Updated Physiologically Based Pharmacokinetic Model for Chloroform to Evaluate CYP2E1-Mediated Renal Toxicity in Rats and Mice[J]. 美国环保署,2013,131(2):360-374. |
APA | Sasso, Alan F..,Schlosser, Paul M..,Kedderis, Gregory L..,Genter, Mary Beth.,Snawder, John E..,...&Lipscomb, John C..(2013).Application of an Updated Physiologically Based Pharmacokinetic Model for Chloroform to Evaluate CYP2E1-Mediated Renal Toxicity in Rats and Mice.TOXICOLOGICAL SCIENCES,131(2),360-374. |
MLA | Sasso, Alan F.,et al."Application of an Updated Physiologically Based Pharmacokinetic Model for Chloroform to Evaluate CYP2E1-Mediated Renal Toxicity in Rats and Mice".TOXICOLOGICAL SCIENCES 131.2(2013):360-374. |
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