Literature DB >> 12487150

Naphthalene-induced respiratory tract toxicity: metabolic mechanisms of toxicity.

A Buckpitt1, B Boland, M Isbell, D Morin, M Shultz, R Baldwin, K Chan, A Karlsson, C Lin, A Taff, J West, M Fanucchi, L Van Winkle, C Plopper.   

Abstract

The lung, which is in intimate contact with the external environment, is exposed to a number of toxicants both by virtue of its large surface area and because it receives 100% of the cardiac output. Lung diseases are a major disease entity in the U.S. population ranking third in terms of morbidity and mortality. Despite the importance of these diseases, key issues remain to be resolved regarding the interactions of chemicals with lung tissue and the factors that are critical determinants of chemical-induced lung injury. The importance of cytochrome P450 monooxygenase dependent metabolism in chemical-induced lung injury in animal models was established over 25 years ago with the furan, 4-ipomeanol. Since then, the significance of biotransformation and the reasons for the high degree of pulmonary selectivity for a myriad of different chemicals has been well documented, mainly in rodent models. However, with many of these chemicals there are substantial differences in the susceptibility of rats vs. mice. Even within the same species, varied levels of the respiratory tract respond differently. Thus, key pieces of data are still missing when evaluating the applicability of data generated in rodents to primates, and as a result of this, there are substantial uncertainties within the regulatory community with regards to assessing the risks to humans for exposure to some of these chemicals. For example, all of the available data suggest that the levels of cytochrome P450 monooxygenases in rodent lungs are 10-100 times greater than those measured in the lungs of nonhuman primates or in man. At first glance, this suggests that a significant margin of safety exists when evaluating the applicability of rodent studies in the human, but the issues are more complex. The intent of this review is to outline some of the work conducted on the site and species selective toxicity and metabolism of the volatile lung toxic aromatic hydrocarbon, naphthalene. We argue that a complete understanding of the cellular and biochemical mechanisms by which this and other lung toxic compounds generate their effects in rodent models with subsequent measurement of these cellular and biochemical events in primate and human tissues in vitro will provide a far better basis for judging whether the results of studies done in rodent models are applicable to humans.

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Year:  2002        PMID: 12487150     DOI: 10.1081/dmr-120015694

Source DB:  PubMed          Journal:  Drug Metab Rev        ISSN: 0360-2532            Impact factor:   4.518


  33 in total

1.  The utility of naphthyl-keratin adducts as biomarkers for jet-fuel exposure.

Authors:  Juei-Chuan C Kang-Sickel; Mary Ann Butler; Lynn Frame; Berrin Serdar; Yi-Chun E Chao; Peter Egeghy; Stephen M Rappaport; Christine A Toennis; Wang Li; Tatyana Borisova; John E French; Leena A Nylander-French
Journal:  Biomarkers       Date:  2011-09-30       Impact factor: 2.658

Review 2.  Role of biotransformation in drug-induced toxicity: influence of intra- and inter-species differences in drug metabolism.

Authors:  Thomas A Baillie; Allan E Rettie
Journal:  Drug Metab Pharmacokinet       Date:  2010-10-22       Impact factor: 3.614

3.  Conditional depletion of airway progenitor cells induces peribronchiolar fibrosis.

Authors:  Anne-Karina T Perl; Dieter Riethmacher; Jeffrey A Whitsett
Journal:  Am J Respir Crit Care Med       Date:  2010-09-24       Impact factor: 21.405

4.  Role of metabolic activation and the TRPA1 receptor in the sensory irritation response to styrene and naphthalene.

Authors:  Michael J Lanosa; Daniel N Willis; Sven Jordt; John B Morris
Journal:  Toxicol Sci       Date:  2010-02-22       Impact factor: 4.849

5.  Generation and characterization of a Cyp2f2-null mouse and studies on the role of CYP2F2 in naphthalene-induced toxicity in the lung and nasal olfactory mucosa.

Authors:  Lei Li; Yuan Wei; Laura Van Winkle; Qing-Yu Zhang; Xin Zhou; Jinping Hu; Fang Xie; Kerri Kluetzman; Xinxin Ding
Journal:  J Pharmacol Exp Ther       Date:  2011-07-05       Impact factor: 4.030

6.  Alterations in the proteome of the respiratory tract in response to single and multiple exposures to naphthalene.

Authors:  Dietmar Kültz; Johnathon Li; Romina Sacchi; Dexter Morin; Alan Buckpitt; Laura Van Winkle
Journal:  Proteomics       Date:  2015-05-13       Impact factor: 3.984

7.  Metabolism and Lung Toxicity of Inhaled Naphthalene: Effects of Postnatal Age and Sex.

Authors:  Sarah A Carratt; Nataliia Kovalchuk; Xinxin Ding; Laura S Van Winkle
Journal:  Toxicol Sci       Date:  2019-08-01       Impact factor: 4.849

8.  Formation of covalently bound protein adducts from the cytotoxicant naphthalene in nasal epithelium: species comparisons.

Authors:  Christina DeStefano-Shields; Dexter Morin; Alan Buckpitt
Journal:  Environ Health Perspect       Date:  2010-05       Impact factor: 9.031

9.  Depurinating naphthalene-DNA adducts in mouse skin related to cancer initiation.

Authors:  Muhammad Saeed; Sheila Higginbotham; Nilesh Gaikwad; Dhrubajyoti Chakravarti; Eleanor Rogan; Ercole Cavalieri
Journal:  Free Radic Biol Med       Date:  2009-07-18       Impact factor: 7.376

10.  Accelerator mass spectrometry targets of submilligram carbonaceous samples using the high-throughput Zn reduction method.

Authors:  Seung-Hyun Kim; Peter B Kelly; Andrew J Clifford
Journal:  Anal Chem       Date:  2009-07-15       Impact factor: 6.986

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