Literature DB >> 10487356

Nitrobenzene potential human cancer risk based on animal studies.

J W Holder1.   

Abstract

Inhaled nitrobenzene (NB) in animals produces cancer at eight sites in three rodent strains. B6C3F1 mice respond with mammary gland malignant tumors and male lung and thyroid benign tumors, and F344/N male rats respond with liver malignant tumors and thyroid and kidney benign tumors, while females respond with endometrial polyps. Male Sprague-Dawley male rats (CD strain) respond with liver benign tumors. NB is oxidized to various phenolic metabolites, while also being reduced to nitrosobenzene (NOB), phenylhydroxylamine (PH), related free radicals, and aniline (AN) in the cecum by bacteria and in the body by the microsomes. In reduction, NB first forms the nitroanion free radical, which can react with O2 to form O2*-. Repeated NB dosing produces a persistent redox couple NOB<==>PH in red blood cells that generates met-Hb and expends NAD(P)H. NOB forms activated glutathione conjugates. These biochemical effects may lead to critical redox imbalances and macromolecular binding. Known effects are hemosiderosis, methemoglobinemia, and anemia--and now dispersed cancer in rodents. Based on structural and mechanistic similarities, NB compares with other animal and human carcinogenic nitroarenes and aromatic amines. The cancer hazard evaluation of NB is that it is a probable human carcinogen by any route of exposure. The maximum response is in F344/N male rats which is used for dose-response modelling. The model to estimate the upper 95% confidence limit (UCL95%) of NB human carcinogenicity is a no-threshold, linear low-dose, and multistaged animal model (LMS). The UCL95% of cancer slope is estimated to be 0.11(6) mg/kg/day (mkd). At de minimus risk (1:10(6)), the virtually safe dose (VSD) is estimated to be 9.1 ng/kg/day (nkd).

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Year:  1999        PMID: 10487356

Source DB:  PubMed          Journal:  Toxicol Ind Health        ISSN: 0748-2337            Impact factor:   2.273


  8 in total

1.  Sensitive and selective gas chromatography-tandem mass spectrometry method for the detection of nitrobenzene in tobacco smoke.

Authors:  Gala M Chapman; Roberto Bravo; Rayman D Stanelle; Clifford H Watson; Liza Valentín-Blasini
Journal:  J Chromatogr A       Date:  2018-06-11       Impact factor: 4.759

2.  Cancer of the urinary bladder in highly exposed workers in the production of dinitrotoluenes: a case report.

Authors:  Volker Harth; Hermann M Bolt; Thomas Brüning
Journal:  Int Arch Occup Environ Health       Date:  2005-10-12       Impact factor: 3.015

3.  Cancer incidence among workers occupationally exposed to dinitrotoluene in the copper mining industry.

Authors:  Andreas Seidler; Thomas Brüning; Dirk Taeger; Matthias Möhner; Katarzyna Gawrych; Annekatrin Bergmann; Johannes Haerting; Hermann Maximilian Bolt; Kurt Straif; Volker Harth
Journal:  Int Arch Occup Environ Health       Date:  2012-12-30       Impact factor: 3.015

4.  Contribution of reactive oxygen species (ROS) to genotoxicity of nitrobenzene on V. faba.

Authors:  Donglin Guo; Jun Ma; Wenyue Su; Baoming Xie; Changhong Guo
Journal:  Ecotoxicology       Date:  2014-03-28       Impact factor: 2.823

5.  Potential Effect of Bacopa monnieri on Nitrobenzene Induced Liver Damage in Rats.

Authors:  B Rajalakshmy Menon; M A Rathi; L Thirumoorthi; V K Gopalakrishnan
Journal:  Indian J Clin Biochem       Date:  2010-09-14

6.  Acute methaemoglobinaemia after massive nitrobenzene ingestion.

Authors:  Mark Perera; Fatima Shihana; Keerthi Kularathne; Damika Dissanayake; Andrew Dawson
Journal:  BMJ Case Rep       Date:  2009-04-28

Review 7.  Hazardous air pollutants and asthma.

Authors:  George D Leikauf
Journal:  Environ Health Perspect       Date:  2002-08       Impact factor: 9.031

8.  Insights into the electrocatalysis of nitrobenzene using chemically-modified carbon nanotube electrodes.

Authors:  Yutao Sang; Baoyan Wang; Qinchao Wang; George Zhao; Peizhi Guo
Journal:  Sci Rep       Date:  2014-09-10       Impact factor: 4.379

  8 in total

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