Mechanistic Evaluation of the Impact of Smoking and Chronic Obstructive Pulmonary Disease on the Nasal Epithelium
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M. Peitsch | A. Sewer | K. Luettich | J. Hoeng | G. Vuillaume | P. Leroy | F. Martin | M. Talikka | M. Peck | N. Chaudhary
[1] G. Passalacqua,et al. NASAL cytology: practical aspects and clinical relevance , 2016, Clinical and experimental allergy : journal of the British Society for Allergy and Clinical Immunology.
[2] M. Peitsch,et al. Alterations in the sputum proteome and transcriptome in smokers and early-stage COPD subjects. , 2015, Journal of proteomics.
[3] Ashraf Elamin,et al. A 7-month cigarette smoke inhalation study in C57BL/6 mice demonstrates reduced lung inflammation and emphysema following smoking cessation or aerosol exposure from a prototypic modified risk tobacco product. , 2015, Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association.
[4] Manuel C. Peitsch,et al. Enhancement of COPD biological networks using a web-based collaboration interface , 2015, F1000Research.
[5] Jennifer Park,et al. Causal biological network database: a comprehensive platform of causal biological network models focused on the pulmonary and vascular systems , 2015, Database J. Biol. Databases Curation.
[6] M. Claustres,et al. Nasal epithelial cells: a tool to study DNA methylation in airway diseases. , 2015, Epigenomics.
[7] Raphael Gottardo,et al. Orchestrating high-throughput genomic analysis with Bioconductor , 2015, Nature Methods.
[8] J. Mitchell,et al. Protocol for a human in vivo model of acute cigarette smoke inhalation challenge in smokers with COPD: monitoring the nasal and systemic immune response using a network biology approach , 2015, BMJ Open.
[9] David A. Drubin,et al. Toxicopanomics: Applications of Genomics, Transcriptomics, Proteomics, and Lipidomics in Predictive Mechanistic Toxicology , 2014 .
[10] J. Walters,et al. Diagnosis and early detection of COPD using spirometry. , 2014, Journal of thoracic disease.
[11] T. S. Wilkinson,et al. Differential response to bacteria, and TOLLIP expression, in the human respiratory tract , 2014, BMJ Open Respiratory Research.
[12] Yang Xiang,et al. Quantification of biological network perturbations for mechanistic insight and diagnostics using two-layer causal models , 2014, BMC Bioinformatics.
[13] Julia Hoeng,et al. A 28-day rat inhalation study with an integrated molecular toxicology endpoint demonstrates reduced exposure effects for a prototypic modified risk tobacco product compared with conventional cigarettes. , 2014, Food and chemical toxicology : an international journal published for the British Industrial Biological Research Association.
[14] P. Saldiva,et al. Young "healthy" smokers have functional and inflammatory changes in the nasal and the lower airways. , 2014, Chest.
[15] E. Pace,et al. Oxidative stress and innate immunity responses in cigarette smoke stimulated nasal epithelial cells. , 2014, Toxicology in vitro : an international journal published in association with BIBRA.
[16] Julia Hoeng,et al. Case study: the role of mechanistic network models in systems toxicology. , 2014, Drug discovery today.
[17] I. Jaspers. Cigarette smoke effects on innate immune mechanisms in the nasal mucosa. Potential effects on the microbiome. , 2014, Annals of the American Thoracic Society.
[18] K. Fong,et al. Biomarkers of progression of chronic obstructive pulmonary disease (COPD). , 2014, Journal of thoracic disease.
[19] M. Peluso,et al. DNA adducts and the total sum of at-risk DNA repair alleles in the nasal epithelium, a target tissue of tobacco smoking-associated carcinogenesis , 2014 .
[20] Manuel C. Peitsch,et al. Systems Approaches Evaluating the Perturbation of Xenobiotic Metabolism in Response to Cigarette Smoke Exposure in Nasal and Bronchial Tissues , 2013, BioMed research international.
[21] Yang Xiang,et al. sbv IMPROVER Diagnostic Signature Challenge , 2013 .
[22] Manuel C. Peitsch,et al. Construction of a Computable Network Model of Tissue Repair and Angiogenesis in the Lung , 2013 .
[23] Manuel C. Peitsch,et al. A Modular Cell-Type Focused Inflammatory Process Network Model for Non-Diseased Pulmonary Tissue , 2013, Bioinformatics and biology insights.
[24] Manuel C. Peitsch,et al. Construction of a Computable Network Model for DNA Damage, Autophagy, Cell Death, and Senescence , 2013, Bioinformatics and biology insights.
[25] M. Miravitlles,et al. Chronic bronchial infection in COPD. Is there an infective phenotype? , 2012, Respiratory Medicine.
[26] F. Martinez,et al. Global strategy for the diagnosis, management, and prevention of chronic obstructive pulmonary disease: GOLD executive summary. , 2007, American journal of respiratory and critical care medicine.
[27] L. Konge,et al. Sinonasal inflammation in COPD: a systematic review , 2012, European Respiratory Journal.
[28] Julia Hoeng,et al. A network-based approach to quantifying the impact of biologically active substances. , 2012, Drug discovery today.
[29] R. Simon,et al. The united allergic airway: Connections between allergic rhinitis, asthma, and chronic sinusitis , 2012, American journal of rhinology & allergy.
[30] R. Morty,et al. Comparison of Nasal and Bronchial Epithelial Cells Obtained from Patients with COPD , 2012, PloS one.
[31] Jennifer Park,et al. A computable cellular stress network model for non-diseased pulmonary and cardiovascular tissue , 2011, BMC Systems Biology.
[32] Manuel C. Peitsch,et al. Construction of a computable cell proliferation network focused on non-diseased lung cells , 2011, BMC Systems Biology.
[33] R. Crystal,et al. Down-Regulation of the Canonical Wnt β-Catenin Pathway in the Airway Epithelium of Healthy Smokers and Smokers with COPD , 2011, PloS one.
[34] Bartolome Celli,et al. Induced sputum genes associated with spirometric and radiological disease severity in COPD ex-smokers , 2011, Thorax.
[35] E. Pace,et al. Cilomilast counteracts the effects of cigarette smoke in airway epithelial cells. , 2011, Cellular immunology.
[36] R. Crystal,et al. Cigarette smoking reprograms apical junctional complex molecular architecture in the human airway epithelium in vivo , 2011, Cellular and Molecular Life Sciences.
[37] J. Mezey,et al. Threshold of biologic responses of the small airway epithelium to low levels of tobacco smoke. , 2010, American journal of respiratory and critical care medicine.
[38] Rafael A Irizarry,et al. Frozen robust multiarray analysis (fRMA). , 2010, Biostatistics.
[39] R. Djukanović,et al. Elevation of sputum matrix metalloproteinase-9 persists up to 6 months after smoking cessation: a research study , 2010, BMC pulmonary medicine.
[40] P. Sebastiani,et al. Similarities and differences between smoking-related gene expression in nasal and bronchial epithelium. , 2010, Physiological genomics.
[41] B. Ryffel,et al. IL-1R1/MyD88 Signaling Is Critical for Elastase-Induced Lung Inflammation and Emphysema1 , 2009, The Journal of Immunology.
[42] R. Crystal,et al. Quality control in microarray assessment of gene expression in human airway epithelium , 2009, BMC Genomics.
[43] A. Clark,et al. Trachea Epithelium as a “Canary” for Cigarette Smoking‐Induced Biologic Phenotype of the Small Airway Epithelium , 2009, Clinical and translational science.
[44] Jianhua Ruan,et al. An ensemble learning approach to reverse-engineering transcriptional regulatory networks from time-series gene expression data , 2009, BMC Genomics.
[45] Warren B. Gefter,et al. Small Airway Obstruction in COPD. , 2009, ATS 2009.
[46] J. Mezey,et al. Coordinate Control of Expression of Nrf2-Modulated Genes in the Human Small Airway Epithelium Is Highly Responsive to Cigarette Smoking , 2009, Molecular medicine.
[47] A. Heguy,et al. Down-regulation of the notch pathway in human airway epithelium in association with smoking and chronic obstructive pulmonary disease. , 2009, American journal of respiratory and critical care medicine.
[48] B. Khan,et al. Phylogenetic analysis, homology modelling, molecular dynamics and docking studies of caffeoyl–CoA-O- methyl transferase (CCoAOMT 1 and 2) isoforms isolated from subabul (Leucaena leucocephala) , 2009, Journal of molecular modeling.
[49] Audrey Kauffmann,et al. Bioinformatics Applications Note Arrayqualitymetrics—a Bioconductor Package for Quality Assessment of Microarray Data , 2022 .
[50] J. Abraham. The international conference on harmonisation of technical requirements for registration of pharmaceuticals for human use , 2009 .
[51] R. Crystal,et al. Decreased Expression of Intelectin 1 in the Human Airway Epithelium of Smokers Compared to Nonsmokers1 , 2008, Journal of Immunology.
[52] M. Bonsignore,et al. Cigarette smoke increases Toll‐like receptor 4 and modifies lipopolysaccharide‐mediated responses in airway epithelial cells , 2008, Immunology.
[53] R. Crystal,et al. Variability in small airway epithelial gene expression among normal smokers. , 2008, Chest.
[54] B. Ryffel,et al. Cigarette Smoke-Induced Pulmonary Inflammation Is TLR4/MyD88 and IL-1R1/MyD88 Signaling Dependent1 , 2008, The Journal of Immunology.
[55] J. Zahm,et al. Feasibility of nasal epithelial brushing for the study of airway epithelial functions in CF infants. , 2008, Journal of cystic fibrosis : official journal of the European Cystic Fibrosis Society.
[56] Julie E. Zeskind,et al. Smoking-induced gene expression changes in the bronchial airway are reflected in nasal and buccal epithelium , 2008, BMC Genomics.
[57] J. Harkema,et al. The Nose Revisited: A Brief Review of the Comparative Structure, Function, and Toxicologic Pathology of the Nasal Epithelium , 2006, Toxicologic pathology.
[58] R. Myers,et al. Evolving gene/transcript definitions significantly alter the interpretation of GeneChip data , 2005, Nucleic acids research.
[59] S. Bonassi,et al. Comparison of DNA adduct levels in nasal mucosa, lymphocytes and bronchial mucosa of cigarette smokers and interaction with metabolic gene polymorphisms. , 2004, Carcinogenesis.
[60] A. Shibata,et al. Exposure-response relationships between woodworking, smoking or passive smoking, and squamous cell neoplasms of the maxillary sinus , 1990, Cancer Causes & Control.
[61] Y. Oh,et al. Lung matrix metalloproteinase-9 correlates with cigarette smoking and obstruction of airflow. , 2003, Journal of Korean medical science.
[62] K. Torén,et al. Population-based study of non-infectious rhinitis in relation to occupational exposure, age, sex, and smoking. , 2002, American journal of industrial medicine.
[63] N. McElvaney,et al. Interleukin-8 Up-regulation by Neutrophil Elastase Is Mediated by MyD88/IRAK/TRAF-6 in Human Bronchial Epithelium* , 2001, The Journal of Biological Chemistry.
[64] M. Miravitlles,et al. Smoking characteristics: differences in attitudes and dependence between healthy smokers and smokers with COPD. , 2001, Chest.
[65] T. Murphy,et al. Bacterial Infection in Chronic Obstructive Pulmonary Disease in 2000: a State-of-the-Art Review , 2001, Clinical Microbiology Reviews.
[66] L. Fabbri,et al. Goblet cell hyperplasia and epithelial inflammation in peripheral airways of smokers with both symptoms of chronic bronchitis and chronic airflow limitation. , 2000, American journal of respiratory and critical care medicine.
[67] M. Benninger. The Impact of Cigarette Smoking and Environmental Tobacco Smoke on Nasal and Sinus Disease: A Review of the Literature , 1999, American journal of rhinology.
[68] A. Ambergen,et al. Number and proliferation of clara cells in normal human airway epithelium. , 1999, American journal of respiratory and critical care medicine.
[69] S. Parodi,et al. Detection of DNA adducts in human nasal mucosa tissue by 32P-postlabeling analysis. , 1997, Carcinogenesis.
[70] Y. Benjamini,et al. Controlling the false discovery rate: a practical and powerful approach to multiple testing , 1995 .
[71] J Dosman,et al. The relations between structural changes in small airways and pulmonary-function tests. , 1978, The New England journal of medicine.