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Inhalation Toxicology
International Forum for Respiratory Research
Volume 25, 2013 - Issue 5
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Research Article

Subacute effects of inhaled Jet Fuel-A (Jet A) on airway and immune function in female rats

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Pages 257-271 | Received 13 Dec 2012, Accepted 23 Feb 2013, Published online: 24 Apr 2013

References

  • Baughman RP, Bosken CG, Loudon RG, et al. (1983). Quantitation of bronchoalveolar lavage with methylene blue. Am Rev Respir Dis 128:266–70
  • Beck BD, Brain JD, Bohannon DE. (1982). An in vivo hamster bioassay to assess the toxicity of particles in the lungs. Toxicol Appl Pharmacol 66:9–29
  • Brown RP, Delp MD, Lindstedt SL, et al. (1997). Physiological parameter values for physiologically based pharmacokinetic models. Toxicol Ind Health 13:407–84
  • Cook-Mills JM, Gallagher JS, Feldbush TL. (1996). Isolation and characterization of high endothelial cell lines derived from mouse lymph nodes. In Vitro Cell Dev Biol Anim 32:167–77
  • Deprés-Brummer P, Bourin P, Pages N, et al. (1997). Persistent T lymphocyte rhythms despite suppressed circadian clock outputs in rats. Am J Physiol 273:R1891–9
  • Driscoll KE, Costa DL, Hatch G, et al. (2000). Intratracheal instillation as an exposure technique for evaluation of respiratory tract toxicity: uses and limitations. Toxicol Sci 55:24–35
  • Griffin AC, Whitacre CC. (1991). Sex and strain differences in the circadian rhythm fluctuation of endocrine and immune function in the rat: implications for rodent models of autoimmune disease. J Neuroimmunol 35:53–64
  • Hanas JS, Briggs GB, Lerner MR, et al. (2010). Systemic molecular and cellular changes induced in rats upon inhalation of JP-8 petroleum fuel vapor. Toxicol Mech Methods 20:204–12
  • Harris DT, Sakiestewa D, Titone D, et al. (2002). JP-8 jet fuel exposure results in immediate immunotoxicity, which is cumulative over time. Toxicol Ind Health 18:77–83
  • Hays AM, Parliman G, Pfaff JK, et al. (1995). Changes in lung permeability correlate with lung histology in a chronic exposure model. Toxicol Ind Health 11:325–36
  • Henderson RF. (1988). Use of bronchoalveolar lavage to detect lung damage. In: Gardner DE, Crapo JD, Massaro EJ, Toxicology of the lung. New York: Raven Press, 239–68
  • Henderson RF, Hobbs CH, Han FF, et al. (1985). A comparison of in vitro and in vivo toxicity of mineral dusts. In: Beck EG, Bignon J, eds. In vitro effects of mineral dusts. New York: Springer-Verlag, Inc., 521–7
  • Henderson RF. (1989). Bronchoalveolar lavage: a tool for assessing the health status of the lung. In: McClellan RO, Henderson RF, eds. Concepts in inhalation toxicology. Washington, DC: Hemisphere Press, 415–44
  • Knave B, Persson HE, Goldberg JM, Westerholm P. (1976). Long-term exposure to jet fuel: an investigation on occupationally exposed workers with special reference to the nervous system. Scand J Work Environ Health 2:152–64
  • Mann CM, Peachee VL, Trimmer GW, et al. (2008). Immunotoxicity evaluation of jet a jet fuel in female rats after 28-day dermal exposure. J Toxicol Environ Health A 71:495–504
  • Martin SA, Campbell JL, Tremblay RT, Fisher JW. (2012). Development of a physiologically based pharmacokinetic model for inhalation of jet fuels in the rat. Inhal Toxicol 24:1–26
  • Martin SA, Tremblay RT, Brunson KF, et al. (2010). Characterization of a nose-only inhalation exposure system for hydrocarbon mixtures and jet fuels. Inhal Toxicol 22:382–93
  • Mattie DR, Marit GB, Flemming CD, Cooper JR. (1995). The effects of JP-8 jet fuel on male Sprague-Dawley rats after a 90-day exposure by oral gavage. Toxicol Ind Health 11:423–35
  • McDougal JN, Rogers JV. (2004). Local and systemic toxicity of JP-8 from cutaneous exposures. Toxicol Lett 149:301–8
  • Navy Occupational Safety and Health (NAVOSH). (1992). Interim recommendations for permissible fuel exposure criteria from the Navy Environmental Health Center’s NAVOSH Standards Update Board. Memorandum 6261, Ser 34/2514. Navy Environmental Health Center, Norfolk, VA. 9 April 1992
  • National Academy of Sciences (2003). Toxicological assessment of jet-propulsion fuel 8. Subcommittee on Jet-Propulsion Fuel 8, Committee on Toxicology. Washington, DC: National Academies Press
  • National Research Council (NRC), Committee on Toxicology. (1996). Permissible exposure levels for selected military fuel vapors. Washington, DC: National Academy Press
  • Pfaff J, Parton K, Lantz RC, et al. (1995). Inhalation exposure to JP-8 jet fuel alters pulmonary function and substance P levels in Fischer 344 rats. J Appl Toxicol 15:249–56
  • Pfaff JK, Tollinger BJ, Lantz RC, et al. (1996). Neutral endopeptidase (NEP) and its role in pathological pulmonary change with inhalation exposure to JP-8 jet fuel. Toxicol Ind Health 12:93–103
  • Ramos G, Limon-Flores AY, Ullrich SE. (2009). JP-8 induces immune suppression via a reactive oxygen species NF-kappabeta-dependent mechanism. Toxicol Sci 108:100–9
  • Reboulet J, Cunningham R, Gunasekar PG, et al. (2007). Development of an infrared spectrophotometric method for the analysis of jet fuel using a loop calibration technique. Naval Health Research Center (Det) Environmental Health Effects Laboratory, Wright-Patterson AFB, OH. Available from: http://handle.dtic.mil/100.2/ADA473934 [Last accessed: 11 Apr 2013]
  • Reboulet J, Cunningham R, Gunasekar PG, et al. (2009). Loop system for creating jet fuel vapor standards used in the calibration of infrared spectrophotometers and gas chromatographs. Toxicol Mech Methods 19:123–8
  • Rhodes AG, LeMasters GK, Lockey JE, et al. (2003). The effects of jet fuel on immune cells of fuel system maintenance workers. J Occup Environ Med 45:79–86
  • Ritchie G, Still K, Rossi J 3rd, et al. (2003). Biological and health effects of exposure to kerosene-based jet fuels and performance additives. J Toxicol Environ Health B Crit Rev 6:357–451
  • Robledo RF, Young RS, Lantz RC, Witten ML. (2000). Short-term pulmonary response to inhaled JP-8 jet fuel aerosol in mice. Toxicol Pathol 28:656–63
  • Rossi J 3rd, Nordholm AF, Carpenter RL, et al. (2001). Effects of repeated exposure of rats to JP-5 or JP-8 jet fuel vapor on neurobehavioral capacity and neurotransmitter levels. J Toxicol Environ Health A 63:397–428
  • Tremblay RT, Martin SA, Fisher JW. (2010a). Evaluation of methods used to generate and characterize jet fuel vapor and aerosol for inhalation toxicology studies. In: Witten ML, Ritchie G, Zeiger E, eds. Jet fuel toxicology. New York: Taylor & Francis, 219–38
  • Tremblay RT, Martin SA, Fisher JW. (2010b). Novel characterization of the aerosol and gas-phase composition of aerosolized jet fuel. Inhal Toxicol 22:394–401
  • U.S. Environmental Protection Agency (EPA). (1996). Biochemicals test guidelines. OPPTS 880.3550. Immunotoxicity. Office of Prevention, Pesticides and Toxic Substances (7101). EPA 712-C-96-280
  • Ullrich SE. (1999). Dermal application of JP-8 jet fuel induces immune suppression. Toxicol Sci 52:61–7
  • Ullrich SE, Lyons HJ. (2000). Mechanisms involved in the immunotoxicity induced by dermal application of JP-8 jet fuel. Toxicol Sci 58:290–8
  • World Health Organization. 2012. Guidance for immunotoxicity risk assessment for chemicals. International Programme on Chemical Safety harmonization project document no. 10. Geneva, Switzerland: World Health Organization Press

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