Ethylene Glycol Monomethyl Ether-Induced Toxicity Is Mediated through the Inhibition of Flavoprotein Dehydrogenase Enzyme Family

被引:29
作者
Takei, Makoto [2 ]
Ando, Yosuke [3 ]
Saitoh, Wataru [4 ]
Tanimoto, Tomoe [4 ]
Kiyosawa, Naoki [4 ]
Manabe, Sunao [5 ]
Sanbuissho, Atsushi [4 ]
Okazaki, Osamu [2 ]
Iwabuchi, Haruo [2 ]
Yamoto, Takashi [4 ]
Adam, Klaus-Peter [1 ]
Weiel, James E. [1 ]
Ryals, John A. [1 ]
Milburn, Michael V. [1 ]
Guo, Lining [1 ]
机构
[1] Metabolon Inc, Durham, NC 27713 USA
[2] Daiichi Sankyo Co Ltd, Drug Metab & Pharmacokinet Res Labs, Shinagawa Ku, Tokyo 1408710, Japan
[3] Daiichi Sankyo Co Ltd, Med Safety Res Labs, Edogawa Ku, Tokyo 1348630, Japan
[4] Daiichi Sankyo Co Ltd, Med Safety Res Labs, Fukuroi, Shizuoka 4370065, Japan
[5] Daiichi Sankyo Co Ltd, Global Project Management Dept, Shinagawa Ku, Tokyo 1408710, Japan
关键词
metabolomics; ethylene glycol monomethyl ether; mode of action; CHAIN ACYL-COENZYME; TANDEM MASS-SPECTROMETRY; ACIDEMIA TYPE-II; METHOXYACETIC ACID; COA DEHYDROGENASES; ISOVALERIC ACIDEMIA; SHIPYARD PAINTERS; GENE-EXPRESSION; DEFICIENCY; METABOLISM;
D O I
10.1093/toxsci/kfq211
中图分类号
R99 [毒物学(毒理学)];
学科分类号
100405 ;
摘要
Ethylene glycol monomethyl ether (EGME) is a widely used industrial solvent known to cause adverse effects to human and other mammals. Organs with high metabolism and rapid cell division, such as testes, are especially sensitive to its actions. In order to gain mechanistic understanding of EGME-induced toxicity, an untargeted metabolomic analysis was performed in rats. Male rats were administrated with EGME at 30 and 100 mg/kg/day. At days 1, 4, and 14, serum, urine, liver, and testes were collected for analysis. Testicular injury was observed at day 14 of the 100 mg/kg/day group only. Nearly 1900 metabolites across the four matrices were profiled using liquid chromatography-mass spectrometry/mass spectrometry and gas chromatography-mass spectrometry. Statistical analysis indicated that the most significant metabolic perturbations initiated from the early time points by EGME were the inhibition of choline oxidation, branched-chain amino acid catabolism, and fatty acid beta-oxidation pathways, leading to the accumulation of sarcosine, dimethylglycine, and various carnitine- and glycine-conjugated metabolites. Pathway mapping of these altered metabolites revealed that all the disrupted steps were catalyzed by enzymes in the primary flavoprotein dehydrogenase family, suggesting that inhibition of flavoprotein dehydrogenase-catalyzed reactions may represent the mode of action for EGME-induced toxicity. Similar urinary and serum metabolite signatures are known to be the hallmarks of multiple acyl-coenzyme A dehydrogenase deficiency in humans, a genetic disorder because of defects in primary flavoprotein dehydrogenase reactions. We postulate that disruption of key biochemical pathways utilizing flavoprotein dehydrogenases in conjugation with downstream metabolic perturbations collectively result in the EGME-induced tissue damage.
引用
收藏
页码:643 / 652
页数:10
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