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Inhalation Toxicology
International Forum for Respiratory Research
Volume 27, 2015 - Issue 6
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Research Article

PM2.5-rich dust collected from the air in Fukuoka, Kyushu, Japan, can exacerbate murine lung eosinophilia

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Pages 287-299 | Received 14 Jan 2015, Accepted 20 Apr 2015, Published online: 28 May 2015

References

  • Alexis NE, Lay JC, Almond M, Peden DB. (2004). Inhalation of low-dose endotoxin favors local T(H)2 response and primes airway phagocytes in vivo. J Allergy Clin Immunol 114:1325–31
  • Brito TN, Vilar MJ, Almeida JB, et al. (2014). Measuring eosinophiluria, urinary eosinophil cationic protein and urinary interleukin-5 in patients with Lupus Nephritis. Allergy Asthma Clin Immunol 10:61
  • Chen Y, Liu F, Weng D, et al. (2013). T(reg) cells may regulate interlukin-17 production by modulating TH1 responses in 1,3-β-glucan-induced lung inflammation in mice. J Immunotoxicol 10:253–61
  • Dabbagh K, Dahl ME, Stepick-Biek P, Lewis D. (2002). Toll-like receptor 4 is required for optimal development of Th2 immune responses: role of dendritic cells. J Immunol 168:4524–30
  • Dahinden CA, Geiser T, Brunner T, et al. (1994). Monocyte chemotactic protein 3 is a most effective basophil-and eosinophil-activating chemokine. J Exp Med 179:751–6
  • Delfino RJ, Staimer N, Tjoa T, et al. (2008). Personal and ambient air pollution exposures and lung function decrements in children with asthma. Environ Health Perspect 116:550–8
  • Delfino RJ, Wu J, Tjoa T, et al. (2014). Asthma morbidity and ambient air pollution: effect modification by residential traffic-related air pollution. Epidemiology 25:48–57
  • Eisenbarth SC, Piggott DA, Huleatt JW, et al. (2002). Lipopolysaccharide-enhanced, toll-like receptor 4-dependent T helper cell type 2 responses to inhaled antigen. J Exp Med 196:1645–51
  • Gleich GJ. (1990). The eosinophil and bronchial asthma: current understanding. J Allergy Clin Immunol 85:422–36
  • Grünig G, Warnock M, Wakil AE, et al. (1998). Requirement for IL-13 independently of IL-4 in experimental asthma. Science 282:2261–3
  • He M, Ichinose T, Yoshida S, et al. (2010). Airborne Asian sand dust enhances murine lung eosinophilia. Inhal Toxicol 22:1012–25
  • He M, Ichinose T, Song Y, et al. (2013). Effects of two Asian sand dusts transported from the dust source regions of Inner Mongolia and northeast China on murine lung eosinophilia. Toxicol Appl Pharmacol 272:647–55
  • Hiyoshi K, Ichinose T, Sadakane K, et al. (2005). Asian sand dust enhances ovalbumin-induced eosinophil recruitment in the alveoli and airway of mice. Environ Res 99:361–8
  • Ichinose T, Takano H, Sadakane K, et al. (2003). Differences in airway-inflammation development by house dust mite and diesel exhaust inhalation among mouse strains. Toxicol Appl Pharmacol 187:29–37
  • Ichinose T, Yoshida S, Hiyoshi K, et al. (2008). The effects of microbial materials adhered to Asian sand dust on allergic lung inflammation. Arch Environ Contam Toxicol 55:348–57
  • Iskandar A, Andersen ZJ, Bønnelykke K, et al. (2012). Coarse and fine particles but not ultrafine particles in urban air trigger hospital admission for asthma in children. Thorax 67:252–7
  • Jin B, Sun T, Yu XH, et al. (2012). The effects of TLR activation on T-cell development and differentiation. Clin Dev Immunol 2012:836485
  • Joh EH, Gu W, Kim DH. (2012). Echinocystic acid ameliorates lung inflammation in mice and alveolar macrophages by inhibiting the binding of LPS to TLR4 in NF-κB and MAPK pathways. Biochem Pharmacol 84:331–40
  • Kaneko M, Swanson MC, Gleich GJ, Kita H. (1995). Allergen-specific IgG1 and IgG3 through Fc gamma RII induce eosinophil degranulation. J Clin Invest 95:2813–21
  • Kita H. (2011). Eosinophils: multifaceted biological properties and roles in health and disease. Immunol Rev 242:161–77
  • Kodama Y, Arashidani K. (1983). Simplified analysis of benzo(a)pyrene in airborne particulates by high-performance liquid chromatography. J Chromatogr 261:103–10
  • Li N, Hao M, Phalen RF, et al. (2003). Particulate air pollutants and asthma: a paradigm for the role of oxidative stress in PM-induced adverse health effects. Clin Immunol 109:250–65
  • Loomis D, Grosse Y, Lauby-Secretan B, et al., on behalf of IARC. (2013). The carcinogenicity of outdoor air pollution. Lancet Oncol 14:1262–3
  • Mar T, Koenig JQ, Primomo J. (2010). Associations between asthma emergency visits and particulate matter sources, including diesel emissions from stationary generators in Tacoma, Washington. Inhal Toxicol 22:445–8
  • Medzhitov R. (2001). Toll-like receptors and innate immunity. Nat Rev Immunol 1:135–45
  • Michikawa T, Ueda K, Takeuchi A, et al. (2015). Impact of short-term exposure to fine particulate matter on emergency ambulance dispatches in Japan. J Epidemiol Commun Health 69:86–91
  • Ng D, Kokot N, Hiura T, et al. (1998). Macrophage activation by polycyclic aromatic hydrocarbons: evidence for the involvement of stress-activated protein kinases, activator protein-1, and antioxidant response elements. J Immunol 161:942–51
  • Padilla J, Daley E, Chow A, et al. (2005). IL-13 regulates the immune response to inhaled antigens. J Immunol 15;174:8097–105
  • Piggott DA, Eisenbarth SC, Xu L, et al. (2005). MyD88-dependent induction of allergic Th2 responses to intranasal antigen. J Clin Invest 115:459–67
  • Ponath PD, Qin S, Ringler DJ, et al. (1996). Cloning of the human eosinophil chemoattractant, eotaxin: expression, receptor binding, and functional properties suggest a mechanism for the selective recruitment of eosinophils. J Clin Invest 97:604–12
  • Rabinovitch N, Strand M, Gelfand EW. (2006). Particulate levels are associated with early asthma worsening in children with persistent disease. Am J Respir Crit Care Med 173:1098–105
  • Redecke V, Häcker H, Datta SK, et al. (2004). Cutting edge: activation of Toll-like receptor 2 induces a Th2 immune response and promotes experimental asthma. J Immunol 172:2739–43
  • Ren Y, Ichinose T, He M, et al. (2014). Enhancement of OVA-induced murine lung eosinophilia by co-exposure to contamination levels of LPS in Asian sand dust and heated dust. Allergy Asthma Clin Immunol 10:30
  • Ribeiro AL, Shimada AL, Hebeda CB, et al. (2011). In vivo hydroquinone exposure alters circulating neutrophil activities and impairs LPS-induced lung inflammation in mice. Toxicology 288:1–7
  • Shamri R, Xenakis JJ, Spencer LA. (2011). Eosinophils in innate immunity: an evolving story. Cell Tissue Res 343:57–83
  • Shoenfelt J, Mitkus RJ, Zeisler R, et al. (2009). Involvement of TLR2 and TLR4 in inflammatory immune responses induced by fine and coarse ambient air particulate matter. J Leukoc Biol 86:303–12
  • Smit LA, Heederik D, Doekes G, et al. (2008). Exposure–response analysis of allergy and respiratory symptoms in endotoxin exposed adults. Eur Respir J 31:1241–8
  • Trenga CA, Sullivan JH, Schildcrout JS, et al. (2006). Effect of particulate air pollution on lung function in adult and pediatric subjects in a Seattle panel study. Chest 129:1614–22
  • Vempilly J, Abejie B, Diep V, et al. (2013). The synergetic effect of ambient PM2.5 exposure and rhinovirus infection in airway dysfunction in asthma: a pilot observational study from the central valley of California. Exp Lung Res 39:434–40
  • Weir CH, Yeatts KB, Sarnat JA, et al. (2013). Nitrogen dioxide and allergic sensitization in the 2005–2006 National Health and Nutrition Examination Survey. Respir Med 107:1763–72
  • Wills-Karp M, Luyimbazi J, Xu X, et al. (1998). Interleukin-13: central mediator of allergic asthma. Science 282:2258–61
  • Yamakawa Y, Ohtsuka Y, Ohtani K, et al. (2010). Effects of leukotriene receptor antagonists on peripheral eosinophil counts and serum IgE levels in children with food allergy. Drugs R D 10:147–15
  • Zhu Z, Homer RJ, Wang Z, et al. (1999). Pulmonary expression of interleukin-13 causes inflammation, mucus hypersecretion, subepithelial fibrosis, physiologic abnormalities, and eotaxin production. J Clin Invest 103:779–88

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