Characterization of the pharmacokinetics of gasoline using PBPK modeling with a complex mixtures chemical lumping approach

被引:36
作者
Dennison, JE [1 ]
Andersen, ME [1 ]
Yang, RSH [1 ]
机构
[1] Colorado State Univ, Ctr Environm Toxicol & Technol, Dept Environm & Radiol Hlth Sci, Quantit & Computat Toxicol Grp, Ft Collins, CO 80523 USA
关键词
D O I
10.1080/08958370390215749
中图分类号
R99 [毒物学(毒理学)];
学科分类号
100405 ;
摘要
Gasoline consists of a few toxicologically significant components and a large number of other hydrocarbons in a complex mixture. By using an integrated, physiologically based pharmacokinetic (PBPK) modeling and lumping approach, we have developed a method for characterizing the pharmacokinetics (PKs) of gasoline in rats. The PBPK model tracks selected target components (benzene, toluene, ethylbenzene, o-xylene [BTEX], and n-hexane) and a lumped chemical group representing all nontarget components, with competitive metabolic inhibition between all target compounds and the lumped chemical. PK data was acquired by performing gas uptake PK studies with male F344 rats in a closed chamber. Chamber air samples were analyzed every 10-20 min by gas chromatography/flame ionization detection and all nontarget chemicals were co-integrated. A four-compartment PBPK model with metabolic interactions was constructed using the BTEX, n-hexane, and lumped chemical data. Target chemical kinetic parameters were refined by studies with either the single chemical alone or with all five chemicals together. o-Xylene, at high concentrations, decreased alveolar ventilation, consistent with respiratory irritation. A six-chemical interaction model with the lumped chemical group was used to estimate lumped chemical partitioning and metabolic parameters for a winter blend of gasoline with methyl t-butyl ether and a summer blend without any oxygenate. Computer simulation results from this model matched well with experimental data from single chemical, five-chemical mixture, and the two blends of gasoline. The PBPK model analysis indicated that metabolism of individual components was inhibited up to 27% during the 6-h gas uptake experiments of gasoline exposures.
引用
收藏
页码:961 / 986
页数:26
相关论文
共 59 条
[51]   Determination of biokinetic interactions in chemical mixtures using real-time breath analysis and physiologically based pharmacokinetic modeling [J].
Thrall, KD ;
Poet, TS .
JOURNAL OF TOXICOLOGY AND ENVIRONMENTAL HEALTH-PART A, 2000, 59 (08) :653-670
[52]   Design and evaluation of a breath-analysis system for biological monitoring of volatile compounds [J].
Thrall, KD ;
Callahan, PJ ;
Weitz, KK ;
Edwards, JA ;
Brinkman, MC ;
Kenny, DV .
AIHAJ, 2001, 62 (01) :28-35
[53]   RAT LUNG AND LIVER MICROSOMAL CYTOCHROME-P-450 ISOZYMES INVOLVED IN THE HYDROXYLATION OF NORMAL-HEXANE [J].
TOFTGARD, R ;
HAAPARANTA, T ;
ENG, L ;
HALPERT, J .
BIOCHEMICAL PHARMACOLOGY, 1986, 35 (21) :3733-3738
[54]   COEXPOSURE TO GASOLINE VAPOR DECREASES BENZENE METABOLISM IN FISCHER-344 RATS [J].
TRAVIS, CC ;
FOX, MT ;
SIMMONS, WM ;
LYON, BF .
TOXICOLOGY LETTERS, 1992, 62 (2-3) :231-240
[55]   PHARMACOKINETICS OF BENZENE [J].
TRAVIS, CC ;
QUILLEN, JL ;
ARMS, AD .
TOXICOLOGY AND APPLIED PHARMACOLOGY, 1990, 102 (03) :400-420
[56]  
*US EPA, 2002, REC ACT USEPA 2002
[57]  
Verhaar Henk J. M., 1997, Environmental Health Perspectives, V105, P179, DOI 10.2307/3433406
[58]  
WIXTROM RN, 1992, J EXPO ANAL ENV EPID, V2, P23
[59]   Physiologically based pharmacokinetic modeling of metabolic interactions between n-hexane and toluene in humans [J].
Yu, XZ ;
Johanson, G ;
Ichihara, G ;
Shibata, E ;
Kamijima, M ;
Ono, Y ;
Takeuchi, Y .
JOURNAL OF OCCUPATIONAL HEALTH, 1998, 40 (04) :293-301