Publication Cover
Inhalation Toxicology
International Forum for Respiratory Research
Volume 27, 2015 - Issue 7
266
Views
12
CrossRef citations to date
0
Altmetric
Research Article

Characterization of biochemical, functional and structural changes in mice respiratory organs chronically exposed to cigarette smoke

, , , , , , , , & show all
Pages 342-353 | Received 27 Jan 2015, Accepted 11 May 2015, Published online: 03 Jul 2015

References

  • Barnes PJ, Shapiro SD, Pauwels RA. (2003). Chronic obstructive pulmonary disease: molecular and cellular mechanisms. Eur Respir J 22:672–88
  • Benowitz NL, Hukkanen J, Jacob P III. (2009). Nicotine chemistry, metabolism, kinetics and biomarkers. Handb Exp Pharmacol 192:29–60
  • Betsuyaku T, Hamamura I, Hata J, et al. (2008). Bronchiolar chemokine expression is different after single versus repeated cigarette smoke exposure. Respir Res 9:7–19
  • Braber S, Henricks PAJ, Nijkamp FP, et al. (2010). Inflammatory changes in the airways of mice caused by cigarette smoke exposure are only partially reversed after smoking cessation. Respir Res 11:99–110
  • Brusselle GG, Demoor T, Brake KR, et al. (2004). Lymphoid follicles in (very) severe COPD: beneficial or harmful? Eur Respir J 34:219–30
  • Churg A, Sin DD, Wright JL. (2011). Everything prevents emphysema. Am J Respir Cell Mol Biol 45:1111–15
  • Churg A, Wright JL. (2009). Testing drugs in animal models of cigarette smoke-induced chronic obstructive pulmonary disease. Proc Am Thorac Soc 6:550–2
  • Crissman JW, Goodman DG, Hilderbrandt PK, et al. (2004). Best practices guideline: toxicologic histopathology. Toxicol Pathol 32:126–31
  • D’hulst AI, Maes T, Bracke KR, et al. (2005). Cigarette smoke-induced pulmonary emphysema in scid-mice. Is the acquired immune system required? Respir Res 6:147–60
  • Eisner MD, Anthonisen N, Coultas D, et al. (2010). An official American Thoracic Society Public Policy Statement: novel risk factors and the global burden of chronic obstructive pulmonary disease. Am J Crit Care Med 182:693–718
  • Eppert BL, Wortham BW, Flury JL, Borchers MT. (2013). Functional characterization of T cell populations in a mouse model of chronic obstructive pulmonary disease. J Immunol 190:1331–40
  • Ernst A, Zibrak JD. (1998). Carbon monoxide poisoning. N Engl J Med 339:1603–8
  • Global Initiative for Chronic Obstructive lung Disease (GOLD). (2013). Global strategy for the diagnosis, management, and prevention of COPD. Available from: www.goldcopd.org [Last accessed: 20 May 2015]
  • Gordon T, Bosland M. (2009). Strain-dependent differences in susceptibility to lung cancer in inbred mice exposed to mainstream cigarette smoke. Cancer Lett 18:213–20
  • Guerassimov A, Hoshino Y, Takubo Y, et al. (2004). The development of emphysema in cigarette smoke-exposed mice is strain dependent. Am J Respir Crit Care Med 180:974–80
  • Hautamaki RD, Kobayashi DK, Denior RM, Shapiro SD. (1997). Requirement for macrophage elastase for cigarette smoke-induced emphysema in mice. Science 277:2002–4
  • Iizuka T, Ishi Y, Itoh K, et al. (2005). Nrf2-deficient mice are highly susceptible to cigarette smoke-induced emphysema. Gene Cells 10:1113–25
  • Ito S, Ingenito EP, Brewer KK, et al. (2005). Mechanics, nonlinearity, and failure strength of lung tissue in a mouse model of emphysema: possible role of collagen remodeling. J Appl Physiol 98:503–11
  • John G, Kohse K, Orasche J, et al. (2014). The composition of cigarette smoke determines inflammatory cell recruitment to the lung in COPD mouse models. Clin Sci 126:207–21
  • Kasahara Y, Tuder RM, Cool CD, et al. (2001). Endothelial cell death and decreased expression of vascular endothelial growth factor and vascular endothelial growth factor receptor 2 in emphysema. Am J Respir Crit Care Med 163:737–44
  • Kasahara Y, Tuder RM, Taraseviciene-Stewart L, et al. (2000). Inhibition of VEGF receptors causes lung cell apoptosis and emphysema. J Clin Invest 106:1311–19
  • Klings ES, Lowry MH, Guihua L, et al. (2009). Hyperoxia-induced lung injury in gamma-glutamyl transferase deficiency is associated with alterations in nitrosative and nitrasive stress. Am J Pathol 175:2309–18
  • Kurimoto E, Miyahara N, Kanehiro A, et al. (2013). IL-17A is essential to the development of elastase-induced pulmonary inflammation and emphysema in mice. Respir Res 14:5–15
  • Law MR, Morris JK, Watt HC, Wald NJ. (1997). The dose-response relationship between cigarette consumption, biochemical markers and risk of lung cancer. Br J Cancer 75:1690–3
  • Le A, Zielinski R, He C, et al. (2009). Pulmonary epithelial neuropilin-1 deletion enhances development of cigarette smoke-induced emphysema. Am J Respir Crit Care Med 180:396–406
  • Leberl M, Kratzer A, Tarasevicience-Stewart L. (2013). Tobacco smoke induced COPD/emphysema in the animal model-are we all on the same page? Front Physiol 4:91–114
  • March TH, Bowen LE, Finch GL, et al. (2005). Effects of strain and treatment with inhaled all-trans-retinoic acid on cigarette smoke-induced pulmonary emphysema in mice. COPD: J Chron Obstruct Dis 2:289–302
  • March TH, Wilder JA, Esparza DC, et al. (2006). Modulators of cigarette smoke-induced pulmonary emphysema in A/J mice. Toxicol Sci 92:545–59
  • Martin J, Dinsdale D, White INH. (1993). Characterization of clara and type II cells isolated from rat lung by fluorescence-activated flow cytometry. Biochem J 295:73–80
  • Motz GT, Eppert BL, Wortham BW, et al. (2010). Chronic cigarette smoke exposure primes NK cell activation in a mouse model of chronic obstructive pulmonary disease. J Immunol 184:4460–9
  • Muhlfeld C, Ochs M. (2013). Quantitative microscopy of the lung: a problem-based approach. Part 2: stereological parameters and study designs in various disease of the respiratory tract. Am J Physiol Lung Cell Mol Physiol 305:L205–21
  • Neef N, Nikula KJ, Carroll SF, Boone L. (2012). Regulatory forum opinion piece: blind reading of histopathology slides in general toxicology studies. Toxicol Pathol 40:697–9
  • Nemmar A, Raza H, Subramaniyan D, et al. (2013). Short-term systemic effects of nose-only cigarette smoke exposure in mice: role of oxidative stress. Cell Physiol Biochem 31:15–24
  • Obot C, Lee KM, Fuciarelli AF, et al. (2004). Characterization of mainstream cigarette smoke-induced biomarker responses in ICR and C57Bl/6 mice. Inhal Toxicol 16:701–19
  • Ochs M, Muhlfeld C. (2013). Quantitative microscopy of the lung: a problem-approach. Part 1: basic principles of lung stereololgy. Am J Physiol Lung Cell Mol Physiol 305:L15–22
  • OECD. (2009). Guidance document for the testing of chemicals; TG403
  • Renne RA, Yoshimura H, Yoshino K, et al. (2006). Effects of flavoring and casing ingredients on the toxicity of mainstream cigarette smoke in rats. Inhal Toxicol 18:685–706
  • Ritter M, Goggel R, Chaudhary N, et al. (2005). Elevated expression of TARC (CCL17) and MDC (CCL22) in models of cigarette smoke-induced pulmonary inflammation. Biochem Biophys Res Comm 334:254–62
  • Roemer E, Schramke H, Weiler H, et al. (2012). Mainstream smoke chemistry and in vitro and in vivo toxicity of the reference 316-cigarette 3R4F and 2R4F. Contrib Tob Res 25:316–30
  • Roething HJ, Koval T, Muhammad-Kah R, et al. (2010). Short term effects of reduced exposure to cigarette smoke on white blood cells, platelets and red blood cells in adult cigarette smokers. Regul Toxicol Pharmacol 57:333–7
  • Schneider JP, Ochs M. (2014). Alterations of mouse lung tissue dimensions during processing for morphometry: A comparison of methods. Am J Physiol Lung Cell Mol Physiol 306:L341–50
  • Suki B, Lutchen KR, Ingenito EP. (2003). On the progressive nature of emphysema: roles of proteases, inflammation, and mechanical forces. Am J Respir Crit Care Med 168:516–21
  • Takubo Y, Guerassimov A, Ghezzo H, et al. (2002). α1-Antitrypsin determines the pattern of emphysema and function in tobacco smoke-exposed mice. Am J Respir Crit Care Med 166:1596–603
  • Tsuji H, Fujimoto H, Matsuura D, et al. (2011a). Comparison of mouse strains and exposure conditions in acute cigarette smoke inhalation studies. Inhal Toxicol 23:602–15
  • Tsuji H, Lee KM, Yoshino K, et al. (2011b). Comparison of the physiological and morphological effects of cigarette smoke exposure at comparable weekly doses on Sprague-Dawley rats. Inhal Toxicol 23:17–32
  • Tsuji H, Fujimoto H, Matsuura D, et al. (2013). Comparison of biological responses in rats under various cigarette smoke exposure conditions. J Toxicol Pathol 26:159–74
  • van der Strate BWA, Postma DS, Brandsma CA, et al. (2006). Cigarette smoke-induced emphysema-A role for the B cell? Am J Respir Crit Care Med 173:751–8
  • van der Toorn M, Slebos DJ, de Bruin HG, et al. (2013). Critical role of aldehydes in cigarette smoke-induced acute airway inflammation. Respir Res 14:45–57
  • Vecchio D, Arezzini B, Pecorelli A, et al. (2010). Reactivity of mouse alveolar macrophages to cigarette smoke is strain dependent. Am J Physiol Lung Cell Mol Physiol 209:L704–13
  • Vlahos R, Bonzinovski S. (2014). Recent advances in pre-clinical mouse models of COPD. Clin Sci 126:253–65
  • Vlahos R, Bozinovski S, Jones JE, et al. (2006). Differential protease, innate immunity, and NF-κB induction profiles during lung inflammation induced by subchronic cigarette smoke exposure in mice. Am J Physiol Lung Cell Mol Physiol 290:L931–45
  • Wright JL, Sun JP. (1994). Effect of smoking cessation on pulmonary and cardiovascular function and structure: Analysis of Guinea pig model. J Appl Physiol 76:2163–8
  • Zhou S, Wright JL, Liu J, et al. (2013). Aging does not enhance experimental cigarette smoke-induced COPD in the mouse. PLoS One 8:e71410

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.