Literature DB >> 17885617

Genetic polymorphisms and benzene metabolism in humans exposed to a wide range of air concentrations.

Sungkyoon Kim1, Qing Lan, Suramya Waidyanatha, Stephen Chanock, Brent A Johnson, Roel Vermeulen, Martyn T Smith, Luoping Zhang, Guilan Li, Min Shen, Songnian Yin, Nathaniel Rothman, Stephen M Rappaport.   

Abstract

Using generalized linear models with natural-spline smoothing functions, we detected effects of specific xenobiotic metabolizing genes and gene-environment interactions on levels of benzene metabolites in 250 benzene-exposed and 136 control workers in Tianjin, China (for all individuals, the median exposure was 0.512 p.p.m. and the 10th and 90th percentiles were 0.002 and 6.40 p.p.m., respectively). We investigated five urinary metabolites (E,E-muconic acid, S-phenylmercapturic acid, phenol, catechol, and hydroquinone) and nine polymorphisms in seven genes coding for key enzymes in benzene metabolism in humans {cytochrome P450 2E1 [CYP2E1, rs2031920], NAD(P)H: quinone oxidoreductase [NQO1, rs1800566 and rs4986998], microsomal epoxide hydrolase [EPHX1, rs1051740 and rs2234922], glutathione-S-transferases [GSTT1, GSTM1 and GSTP1(rs947894)] and myeloperoxidase [MPO, rs2333227]}. After adjusting for covariates, including sex, age, and smoking status, NQO1*2 (rs1800566) affected all five metabolites, CYP2E1 (rs2031920) affected most metabolites but not catechol, EPHX1 (rs1051740 or rs2234922) affected catechol and S-phenylmercapturic acid, and GSTT1 and GSTM1 affected S-phenylmercapturic acid. Significant interactions were also detected between benzene exposure and all four genes and between smoking status and NQO1*2 and EPHX1 (rs1051740). No significant effects were detected for GSTP1 or MPO. Results generally support prior associations between benzene hematotoxicity and specific gene mutations, confirm earlier evidence that GSTT1 affects production of S-phenylmercapturic acid, and provide additional evidence that genetic polymorphisms in NQO1*2, CYP2E1, and EPHX1 (rs1051740 or rs2234922) affect metabolism of benzene in the human liver.

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Year:  2007        PMID: 17885617     DOI: 10.1097/FPC.0b013e3280128f77

Source DB:  PubMed          Journal:  Pharmacogenet Genomics        ISSN: 1744-6872            Impact factor:   2.089


  21 in total

1.  Modulation of the metabolism of airborne pollutants by glucoraphanin-rich and sulforaphane-rich broccoli sprout beverages in Qidong, China.

Authors:  Thomas W Kensler; Derek Ng; Steven G Carmella; Menglan Chen; Lisa P Jacobson; Alvaro Muñoz; Patricia A Egner; Jian Guo Chen; Geng Sun Qian; Tao Yang Chen; Jed W Fahey; Paul Talalay; John D Groopman; Jian-Min Yuan; Stephen S Hecht
Journal:  Carcinogenesis       Date:  2011-11-01       Impact factor: 4.944

2.  Are polymorphisms in metabolism protective or a risk for reduced white blood cell counts in a Chinese population with low occupational benzene exposures?

Authors:  Ling-li Ye; Guang-hui Zhang; Jing-wen Huang; Yong Li; Guo-qiao Zheng; De-ting Zhang; Li-fang Zhou; Xi-dan Tao; Jing Zhang; Yun-jie Ye; Pin Sun; Arthur Frank; Zhao-lin Xia
Journal:  Int J Occup Environ Health       Date:  2015-07-16

Review 3.  The use of biomonitoring data in exposure and human health risk assessment: benzene case study.

Authors:  Scott M Arnold; Juergen Angerer; Peter J Boogaard; Michael F Hughes; Raegan B O'Lone; Steven H Robison; A Robert Schnatter
Journal:  Crit Rev Toxicol       Date:  2013-02       Impact factor: 5.635

4.  Xenobiotic-Metabolizing gene polymorphisms and ovarian cancer risk.

Authors:  Ellen L Goode; Kristin L White; Robert A Vierkant; Catherine M Phelan; Julie M Cunningham; Joellen M Schildkraut; Andrew Berchuck; Melissa C Larson; Brooke L Fridley; Janet E Olson; Penelope M Webb; Xiaoqing Chen; Jonathan Beesley; Georgia Chenevix-Trench; Thomas A Sellers
Journal:  Mol Carcinog       Date:  2010-12-28       Impact factor: 4.784

5.  Human benzene metabolism following occupational and environmental exposures.

Authors:  Stephen M Rappaport; Sungkyoon Kim; Qing Lan; Guilan Li; Roel Vermeulen; Suramya Waidyanatha; Luoping Zhang; Songnian Yin; Martyn T Smith; Nathaniel Rothman
Journal:  Chem Biol Interact       Date:  2009-12-22       Impact factor: 5.192

6.  Genetic variation in metabolic genes, occupational solvent exposure, and risk of non-hodgkin lymphoma.

Authors:  Kathryn Hughes Barry; Yawei Zhang; Qing Lan; Shelia Hoar Zahm; Theodore R Holford; Brian Leaderer; Peter Boyle; H Dean Hosgood; Stephen Chanock; Meredith Yeager; Nathaniel Rothman; Tongzhang Zheng
Journal:  Am J Epidemiol       Date:  2011-01-12       Impact factor: 4.897

Review 7.  Low-dose metabolism of benzene in humans: science and obfuscation.

Authors:  Stephen M Rappaport; Sungkyoon Kim; Reuben Thomas; Brent A Johnson; Frederic Y Bois; Lawrence L Kupper
Journal:  Carcinogenesis       Date:  2012-12-07       Impact factor: 4.944

Review 8.  Benzene exposure: an overview of monitoring methods and their findings.

Authors:  Clifford P Weisel
Journal:  Chem Biol Interact       Date:  2010-01-06       Impact factor: 5.192

9.  Evidence that humans metabolize benzene via two pathways.

Authors:  Stephen M Rappaport; Sungkyoon Kim; Qing Lan; Roel Vermeulen; Suramya Waidyanatha; Luoping Zhang; Guilan Li; Songnian Yin; Richard B Hayes; Nathaniel Rothman; Martyn T Smith
Journal:  Environ Health Perspect       Date:  2009-02-19       Impact factor: 9.031

Review 10.  Microsomal epoxide hydrolase 1 (EPHX1): Gene, structure, function, and role in human disease.

Authors:  Radka Václavíková; David J Hughes; Pavel Souček
Journal:  Gene       Date:  2015-07-26       Impact factor: 3.688

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