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Mechanisms

Lipopolysaccharides promote a shift from Th2-derived airway eosinophilic inflammation to Th17-derived neutrophilic inflammation in an ovalbumin-sensitized murine asthma model

, MD, , MD, , MD, , MS, , MS, , MS, , MS & , PhD show all
Pages 447-455 | Received 28 Feb 2016, Accepted 08 Aug 2016, Published online: 13 Jan 2017

References

  • Lotvall J, Akdis CA, Bacharier LB, Bjermer L, Casale TB, Custovic A, et al. Asthma endotypes: a new approach to classification of disease entities within the asthma syndrome. J Allergy Clin Immunol 2011;127:355–360.
  • Holgate ST. Mechanisms of asthma and implications for its prevention and treatment: a personal journey. Allergy Asthma Immunol Res 2013;5(6):343–347.
  • American Thoracic Society Workshop. Proceedings of the ATS workshop on refractory asthma: current understanding, recommendations, and unanswered questions, Am J Respir Crit Care Med 2000;162(6):2341–2351.
  • Accordini S, Corsico AG, Braggion M, Gerbase MW, Gislason D, Gulsvik A, et al. The cost of persistent asthma in Europe: an international population-based study in adults. Int Arch Allergy Immunol 2013;160:93–101.
  • Kim HY, DeKruyff RH, Umetsu DT. The many paths to asthma: phenotype shaped by innate and adaptive immunity. Nat Immunol 2010;11(7):577–584.
  • Wenzel SE. Asthma phenotype: the evolution from clinical to molecular approaches. Nat Med 2012;18(5):716–725.
  • Wenzel SE, Schwartz LB, Langmack EL, Halliday JL, Trudeau JB, Gibbs RL, et al. Evidence that severe asthma can be divided pathologically into two inflammatory subtypes with distinct physiologic and clinical characteristics. Am J Respir Crit Care Med 1999;160(3):1001–1008.
  • Fahy JV. Eosinophilic and neutrophilic inflammation in asthma: insights from clinical studies. Proc Am Thorac Soc 2009;6(3):256–259.
  • Schleich FN, Manise M, Sele J, Henket M, Seidel L, Louis R. Distribution of sputum cellular phenotype in a large asthma cohort: predicting factors for eosinophilic vs neutrophilic inflammation. BMC Pulm Med 2013;13:11.
  • Jo EJ, Kim MY, Lee SE, Lee SY, Kim MH, Song WJ, et al. Eosinophilic airway inflammation and airway hyperresponsiveness according to aeroallergen sensitization pattern in patients with lower airway symptoms. Allergy Asthma Immunol Res 2014;6(1):39–46.
  • Sur S, Crotty TB, Kephart GM, Hyma BA, Colby TV, Reed CE, et al. Sudden-onset fatal asthma. A distinct entity with few eosinophils and relatively more neutrophils in the airway submucosa? Am Rev Respir Dis 1993;148(3):713–719.
  • Fahy JV, Kim KW, Liu J, Boushey HA. Prominent neutrophilic inflammation in sputum from subjects with asthma exacerbation. J Allergy Clin Immunol 1995;95(4):843–852.
  • Douwes J, Gibson P, Pekkanen J, Pearce N. Non-eosinophilic asthma: importance and possible mechanisms. Thorax 2002;57(7):643–648.
  • Panettieri RA Jr. Neutrophilic and Pauci-immune Phenotypes in Severe Asthma. Immunol Allergy Clin North Am 2016; 36(3):569–579.
  • Bruijnzeel PL, Uddin M, Koenderman L. Targeting neutrophilic inflammation in severe neutrophilic asthma: can we target the disease-relevant neutrophil phenotype? J Leukoc Biol 2015; 98(4):549–556
  • Romagnani S. Human TH1 and TH2 subsets: doubt no more. Immunol Today 1991;12(8):256–257.
  • Bullens DM, Truyen E, Coteur L, Dilissen E, Hellings PW, Dupont LJ, et al. IL-17 mRNA in sputum of asthmatic patients: linking T cell driven inflammation and granulocytic influx? Respir Res 2006;7(1):135.
  • Jiang Y, Zhao S, Yang X, Liu Y, Wang C. Dll4 in the DCs isolated from OVA-sensitized mice is in volved in Th17 differentiation inhibition by 1,25-dihydroxyvitamin D3 in vitro. J Asthma 2015;52(10):989–995.
  • Pepe C, Foley S, Shannon J, Lemiere C, Olivenstein R, Ernst P, et al. Differences in airway remodeling between subjects with severe and moderate asthma. J Allergy Clin Immunol 2005;116(3):544–549.
  • Coelho AL, Hogaboam CM, Kunkel SL. Chemokines provide the sustained inflammatory bridge between innate and acquired immunity. Cytokine Growth Factor Rev 2005;16(6):553–560.
  • Wilson RH, Whitehead GS, Nakano H, Free ME, Kolls JK, Cook DN. Allergic Sensitization through the Airway Primes Th17-dependent Neutrophilia and Airway Hyperresponsiveness. Am J Respir Crit Care Med 2009;180(8):720–730.
  • Myou S, Leff AR, Myo S, Boetticher E, Tong J, Meliton AY, et al. Blockade of inflammation and airway hyperresponsiveness in immune-sensitized mice by dominant-negative phosphoinositide 3-kinase-TAT. J Exp Med 2003;198(10):1573–1582.
  • Padrid P, Snook S, Finucane T, Shiue P, Cozzi P, Solway J, et al. Persistent airway hyperresponsiveness and histologic alterations after chronic antigen challenge in cats. Am J Respir Crit Care Med 1995;151(1):184–193.
  • Kang JY, Lee SY, Rhee CK, Kim SJ, Kwon SS, Kim YK. Effect of aging on airway remodeling and muscarinic receptors in a murine acute asthma model. Clin Interv Aging 2013;8:1393–1403.
  • Van den Broeck W, Derore A, Simoens P. Anatomy and nomenclature of murine lymph nodes: Descriptive study and nomenclatory standardization in BALB/cAnNCrl mice. J Immunol Meth 2006; 312(1–2):12–19.
  • Braun-Fahrländer C, Riedler J, Herz U, Eder W, Waser M, Grize L, et al. Environmental exposure to endotoxin and its relation to asthma in school-age children. N Engl J Med 2002;347(12):869–877.
  • Michel O, Ginanni R, Duchateau J, Vertongen F, Le Bon B, Sergysels R. Domestic endotoxin exposure and clinical severity of asthma. Clin Exp Allergy 1991;21(4):441–448.
  • Michel O, Kips J, Duchateau J, Vertongen F, Robert L, Collet H, et al. Severity of asthma is related to endotoxin in house dust. Am J Respir Crit Care Med 1996;154(6):1641–1646.
  • Thorne PS, Kulh´ankov´a K, Yin M, Cohn R, Arbes SJJ, Zeldin DC. Endotoxin exposure is a risk factor for asthma: the national survey of endotoxin in United States housing. Am J Respir Crit Care Med 2005;172(11):1371–1377.
  • Simpson JL, Grissell TV, Douwes J, Scott RJ, Boyle MJ, Gibson PG. Innate immune activation in neutrophilic asthma and bronchiectasis. Thorax 2007;62(3):211–218.
  • Bisgaard H, Hermansen MN, Buchvald F, Loland L, Halkjaer LB, Bonnelykke K, et al. Childhood asthma after bacterial colonization of the airway in neonates. N Engl J Med 2007;357:1487–1495.
  • Daan de Boer J, Roelofs JJ, de Vos AF, de Beer R, Schouten M, Hommes TJ, et al. Lipopolysaccharide inhibits Th2 lung inflammation induced by house dust mite allergens in mice, Am J Respir Cell Mol Biol 2013;48(3):382–389.
  • Zou Y, Sonderegger I, Lipowsky G, Jennings GT, Schmitz N, Landi M, et al. Com-bined vaccination against IL-5 and eotaxin blocks eosinophilia in mice. Vaccine 2010;28(18):3192–3200.
  • McKinley L, Alcorn JF, Peterson A, Dupont RB, Kapadia S, Logar A, et al. TH17 cells mediate steroid-resistant airway inflammation and airway hyperresponsiveness in mice. J Immunol 2008; 181:4089–4097.
  • Ashino S, Wakita D, Shiohama Y, Iwakura Y, Chamoto K, Ohkuri T, et al. A T(h)17-polarized cell population that has infiltrated the lung requires cells that convert to IFN-{gamma} production in order to induce airway hyperresponsiveness. Int Immunol 2010;22:503–513.
  • Louten J, Boniface K, deWaal Malefyt R. Development and function of TH17 cells in health and disease. J Allergy Clin Immunol 2009;123:1004–1011.
  • Uddin M, Lau LC, Seumois G, Vijayanand P, Staples KJ, Bagmane D, et al. (2013) EGF-induced bronchial epithelial cells drive neutrophil chemotactic and anti-apoptotic activity in asthma. PLoS One 8:e72502.
  • Morishima Y, Ano S, Ishii Y, Ohtsuka S, Matsuyama M, Kawaguchi M, et al. (2013) Th17-associated cytokines as a therapeutic target for steroid-insensitive asthma. Clin Dev Immunol 2013:609395.
  • Barczyk A, Pierzchala W, Sozañska E. Interleukin-17 in sputum correlates with airway hyperresponsiveness to methacholine. Res Med 2003;97(6):726–733.
  • Besnard AG, Togbe D, Couillin I, Tan Z, Zheng SG, Erard F, et al. Inflammasome-IL-1-Th17 response in allergic lung inflammation. Mol Cell Biol. 2012;4(1):3–10.
  • Dechene L. TH1/TH2 immune response. J Allergy Clin Immunol 2002;10:539–540.
  • Wynn TA. T(H)-17: a giant step from T(H)1 and T(H)2. Nat Immunol 2005;6:1069–1070.
  • Cosmi L, Liotta F, Maggi E, Romagnani S, Annunziato F. Th17 cells: new players in asthma pathogenesis. Allergy 2011;66(8):989–998.
  • Busse WW, Holgate S, Kerwin E, Chon Y, Feng J, Lin J, et al. Randomized, double-blind, placebo-controlled study of brodalumab, a human anti–IL-17 receptor monoclonal antibody, in moderate to severe asthma. Am J Respir Crit Care Med 2013;188(11):1294–1302.

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