Animal models of asthma: reprise or reboot?
暂无分享,去创建一个
[1] Malcolm W Johnson. Molecular mechanisms of β2-adrenergic receptor function, response, and regulation , 2006 .
[2] Florence Demenais,et al. A large-scale, consortium-based genomewide association study of asthma. , 2010, The New England journal of medicine.
[3] I. Pavord,et al. A new perspective on concepts of asthma severity and control , 2008, European Respiratory Journal.
[4] T. Wrin,et al. Anti-IgE efficacy in murine asthma models is dependent on the method of allergen sensitization. , 2001, The Journal of allergy and clinical immunology.
[5] G. Folkerts,et al. The guinea pig as an animal model for asthma. , 2008, Current drug targets.
[6] W. Abraham. Modeling of asthma, COPD and cystic fibrosis in sheep. , 2008, Pulmonary pharmacology & therapeutics.
[7] J. Virchow,et al. Untangling asthma phenotypes and endotypes , 2012, Allergy.
[8] S. Holgate. A look at the pathogenesis of asthma: the need for a change in direction. , 2010, Discovery medicine.
[9] P. Gergen,et al. Asthma cases attributable to atopy: results from the Third National Health and Nutrition Examination Survey. , 2007, The Journal of allergy and clinical immunology.
[10] Reynold A Panettieri,et al. Asthma , 1894, Annals of Internal Medicine.
[11] S. Holgate,et al. The mouse trap: It still yields few answers in asthma. , 2006, American journal of respiratory and critical care medicine.
[12] L. Boulet,et al. The Effects of IL-13 Blockade on Allergen-Induced Airway Responses in Mild Atopic Asthma , 2010 .
[13] E. Kidd,et al. Increased muscarinic receptor activity of airway smooth muscle isolated from a mouse model of allergic asthma. , 2010, Pulmonary pharmacology & therapeutics.
[14] Keith S. Sheppard,et al. Integration of Mouse and Human Genome-Wide Association Data Identifies KCNIP4 as an Asthma Gene , 2013, PloS one.
[15] S. Keir,et al. The rabbit as a model to study asthma and other lung diseases. , 2008, Pulmonary pharmacology & therapeutics.
[16] M. Ryu,et al. Models to study airway smooth muscle contraction in vivo, ex vivo and in vitro: implications in understanding asthma. , 2013, Pulmonary pharmacology & therapeutics.
[17] I. Olcay. Anti-Immunoglobulin E Treatment with Omalizumab in Allergic Diseases an Update on Anti-Inflammatory Activity and Clinical Efficacy , 2008 .
[18] C. Lloyd,et al. Functions of T cells in asthma: more than just TH2 cells , 2010, Nature Reviews Immunology.
[19] W. Busse,et al. The US Food and Drug Administration and long-acting beta2-agonists: the importance of striking the right balance between risks and benefits of therapy? , 2010, The Journal of allergy and clinical immunology.
[20] J. Vandenbroucke,et al. Clinical control and histopathologic outcome of asthma when using airway hyperresponsiveness as an additional guide to long-term treatment. The AMPUL Study Group. , 1999, American journal of respiratory and critical care medicine.
[21] R. Coffman,et al. Nonhuman primate models of asthma , 2005, The Journal of experimental medicine.
[22] L. Heaney,et al. Omalizumab: the evidence for its place in the treatment of allergic asthma , 2008, Core evidence.
[23] R. Locksley,et al. A protective role for periostin and TGF-β in IgE-mediated allergy and airway hyperresponsiveness , 2011, Clinical and experimental allergy : journal of the British Society for Allergy and Clinical Immunology.
[24] Frank Koentgen,et al. Preclinical development of CAT-354, an IL-13 neutralizing antibody, for the treatment of severe uncontrolled asthma , 2012, British journal of pharmacology.
[25] J. Lötvall,et al. Differential effects of fluticasone and montelukast on allergen‐induced asthma , 2005, Allergy.
[26] E. Gelfand,et al. Montelukast during primary infection prevents airway hyperresponsiveness and inflammation after reinfection with respiratory syncytial virus. , 2010, American journal of respiratory and critical care medicine.
[27] Tamara K. Redman, Karin Rudolph, Edward B. Barr, L. PULMONARY IMMUNITY TO RAGWEED IN A BEAGLE DOG MODEL OF ALLERGIC ASTHMA , 2001 .
[28] C. Ober,et al. Asthma genetics 2006: the long and winding road to gene discovery , 2006, Genes and Immunity.
[29] K. Svenson,et al. Comparison of unrestrained plethysmography and forced oscillation for identifying genetic variability of airway responsiveness in inbred mice. , 2011, Physiological genomics.
[30] K. Ohta,et al. Effect of tiotropium bromide on airway inflammation and remodelling in a mouse model of asthma , 2010, Clinical and experimental allergy : journal of the British Society for Allergy and Clinical Immunology.
[31] L. Boulet,et al. Inhibitory effects of an anti-IgE antibody E25 on allergen-induced early asthmatic response. , 1997, American journal of respiratory and critical care medicine.
[32] E. Gelfand,et al. Understanding asthma using animal models , 2009, Allergy, asthma & immunology research.
[33] L. Gregory,et al. Orchestrating house dust mite-associated allergy in the lung. , 2011, Trends in immunology.
[34] S. Wenzel,et al. Effect of an interleukin-4 variant on late phase asthmatic response to allergen challenge in asthmatic patients: results of two phase 2a studies , 2007, The Lancet.
[35] T. Williams,et al. New cell for asthma: enter the myeloid , 2012, Thorax.
[36] A. Joetham,et al. Effects of combination therapy with montelukast and carbocysteine in allergen‐induced airway hyperresponsiveness and airway inflammation , 2010, British journal of pharmacology.
[37] M. Kraft,et al. Assessment of murine lung mechanics outcome measures: alignment with those made in asthmatics , 2013, Front. Physio..
[38] D. Triggle. Nous sommes tous des bacteries: implications for medicine, pharmacology and public health. , 2012, Biochemical pharmacology.
[39] J. Barrett,et al. New IBD genetics: common pathways with other diseases , 2011, Gut.
[40] J. Renauld. New insights into the role of cytokines in asthma , 2001, Journal of clinical pathology.
[41] W. Busse,et al. Genome-wide association study identifies TH1 pathway genes associated with lung function in asthmatic patients. , 2013, The Journal of allergy and clinical immunology.
[42] D. Hyde,et al. The non-human primate as a model for studying COPD and asthma. , 2008, Pulmonary pharmacology & therapeutics.
[43] P. Gergen,et al. Total IgE levels and asthma prevalence in the US population: results from the National Health and Nutrition Examination Survey 2005-2006. , 2009, The Journal of allergy and clinical immunology.
[44] P. Barnes,et al. New drugs for asthma, allergy and COPD , 2001 .
[45] Q. Hamid,et al. Involvement of the cysteinyl-leukotrienes in allergen-induced airway eosinophilia and hyperresponsiveness in the mouse. , 2003, American journal of respiratory cell and molecular biology.
[46] Z. Modrušan,et al. Lung gene expression in a rhesus allergic asthma model correlates with physiologic parameters of disease and exhibits common and distinct pathways with human asthma and a mouse asthma model. , 2011, The American journal of pathology.
[47] Kevin Kim,et al. A TALEN genome-editing system for generating human stem cell-based disease models. , 2013, Cell stem cell.
[48] S. Yamanaka. Induced pluripotent stem cells: past, present, and future. , 2012, Cell stem cell.
[49] P. Callaerts,et al. Effects of acute and chronic administration of beta-adrenoceptor ligands on airway function in a murine model of asthma. , 2004, Proceedings of the National Academy of Sciences of the United States of America.
[50] A. Pich,et al. Experimental bronchial asthma - the strength of the species rat. , 2008, Current drug targets.
[51] D. D'Ambrosio,et al. Chemokines and their receptors guiding T lymphocyte recruitment in lung inflammation. , 2001, American journal of respiratory and critical care medicine.
[52] B. J. Knoll,et al. β2-Adrenoceptor agonists are required for development of the asthma phenotype in a murine model. , 2013, American journal of respiratory cell and molecular biology.
[53] Lior Pachter,et al. Disordered Microbial Communities in Asthmatic Airways , 2010, PloS one.
[54] K. Mullane. The increasing challenge of discovering asthma drugs. , 2011, Biochemical pharmacology.
[55] I. Adcock,et al. Con: Genome-wide association studies have not been useful in understanding asthma. , 2011, American journal of respiratory and critical care medicine.
[56] Lee, Jk,et al. Lebrikizumab treatment in adults with asthma. , 2011 .
[57] S. Liggett,et al. Molecular mechanisms of beta2-adrenergic receptor function and regulation. , 2005, Proceedings of the American Thoracic Society.
[58] Barmak Modrek,et al. T-helper type 2-driven inflammation defines major subphenotypes of asthma. , 2009, American journal of respiratory and critical care medicine.
[59] J. Bates,et al. Animal models of asthma. , 2009, American journal of physiology. Lung cellular and molecular physiology.
[60] D. van Velzen,et al. Kinetics and quantitation of eosinophil and neutrophil recruitment to allergic lung inflammation in a brown Norway rat model. , 1997, American journal of respiratory cell and molecular biology.
[61] Asthma and COPD Genetics and Genomics: An Overview , 2001 .
[62] S. Wenzel. Asthma phenotypes: the evolution from clinical to molecular approaches , 2012, Nature Medicine.
[63] F. Finkelman,et al. Importance of Cytokines in Murine Allergic Airway Disease and Human Asthma , 2010, The Journal of Immunology.
[64] K. Mullane. Asthma translational medicine: report card. , 2011, Biochemical pharmacology.
[65] Stephen T Holgate,et al. Animal models of asthma: value, limitations and opportunities for alternative approaches. , 2011, Drug discovery today.
[66] A. Wanner. clinical implications of basic research Utility of Animal Models in the Study of Human Airway Disease , 2022 .
[67] I. Pavord,et al. An official American Thoracic Society/European Respiratory Society statement: asthma control and exacerbations: standardizing endpoints for clinical asthma trials and clinical practice. , 2009, American journal of respiratory and critical care medicine.
[68] A. Oosterhout,et al. Effect of dexamethasone and endogenous corticosterone on airway hyperresponsiveness and eosinophilia in the mouse , 1996, British journal of pharmacology.
[69] C. Lemière,et al. Variability of sputum inflammatory cells in asthmatic patients receiving corticosteroid therapy: A prospective study using multiple samples. , 2010, The Journal of allergy and clinical immunology.
[70] S. Mosesova,et al. Periostin is a systemic biomarker of eosinophilic airway inflammation in asthmatic patients. , 2011, The Journal of allergy and clinical immunology.
[71] D. Webb. Animal models of human disease: inflammation. , 2014, Biochemical pharmacology.
[72] Barmak Modrek,et al. Gene Expression Patterns of Th2 Inflammation and Intercellular Communication in Asthmatic Airways , 2011, The Journal of Immunology.
[73] K. Austen,et al. No audible wheezing : nuggets and conundrums from mouse asthma models , 2005 .
[74] S. Liggett,et al. Molecular Mechanisms of β2-Adrenergic Receptor Function and Regulation , 2005 .
[75] Gemma Buckland. Harnessing opportunities in non-animal asthma research for a 21st-century science. , 2011, Drug discovery today.
[76] B. Vargaftig,et al. Suppression of immediate and late responses to antigen by a non-anaphylactogenic anti-IgE antibody in a murine model of asthma. , 1999, The European respiratory journal.
[77] C. Brightling,et al. A phase II placebo-controlled study of tralokinumab in moderate-to-severe asthma , 2012, European Respiratory Journal.
[78] Rakesh K. Kumar,et al. Are mouse models of asthma appropriate for investigating the pathogenesis of airway hyper-responsiveness? , 2012, Front. Physio..
[79] M. Wjst,et al. Genome-wide association studies in asthma: what they really told us about pathogenesis , 2013, Current opinion in allergy and clinical immunology.
[80] C. Lloyd. Building better mouse models of asthma , 2007, Current allergy and asthma reports.
[81] L. Boulet,et al. Effects of interleukin-13 blockade on allergen-induced airway responses in mild atopic asthma. , 2011, American journal of respiratory and critical care medicine.
[82] D. Corry,et al. Promise and pitfalls in animal-based asthma research , 2006, Immunologic research.
[83] A. Kisselgof,et al. Genetic variability in pulmonary physiological, cellular, and antibody responses to antigen in mice. , 1999, American journal of respiratory and critical care medicine.
[84] D. Broide,et al. ORMDL3 is an inducible lung epithelial gene regulating metalloproteases, chemokines, OAS, and ATF6 , 2012, Proceedings of the National Academy of Sciences.