Identification of TLR2 Signalling Mechanisms Which Contribute to Barrett’s and Oesophageal Adenocarcinoma Disease Progression
暂无分享,去创建一个
J. O’Sullivan | C. Nulty | B. Keogh | P. Mcguirk | M. Quante | E. Creagh | Gillian Barber | E. Flis | Akanksha Anand
[1] J. O’Sullivan,et al. Characterizing caspase-1 involvement during esophageal disease progression , 2020, Cancer Immunology, Immunotherapy.
[2] G. Murray,et al. Novel biomarkers for risk stratification of Barrett’s oesophagus associated neoplastic progression–epithelial HMGB1 expression and stromal lymphocytic phenotype , 2019, British Journal of Cancer.
[3] M. Moriyama,et al. CD206+ tumor-associated macrophages promote proliferation and invasion in oral squamous cell carcinoma via EGF production , 2019, Scientific Reports.
[4] R. Fitzgerald,et al. High-Fat Diet Accelerates Carcinogenesis in a Mouse Model of Barrett's Esophagus via Interleukin 8 and Alterations to the Gut Microbiome. , 2019, Gastroenterology.
[5] Amanda R. Campbell,et al. Generation of monocyte-derived tumor-associated macrophages using tumor-conditioned media provides a novel method to study tumor-associated macrophages in vitro , 2019, Journal of Immunotherapy for Cancer.
[6] Tie-niu Song,et al. Tumor-derived exosomal HMGB1 promotes esophageal squamous cell carcinoma progression through inducing PD1+ TAM expansion , 2019, Oncogenesis.
[7] Hayley E. Francies,et al. Organoid cultures recapitulate esophageal adenocarcinoma heterogeneity providing a model for clonality studies and precision therapeutics , 2018, Nature Communications.
[8] Haitao Zhu,et al. Radiotherapy-induced cell death activates paracrine HMGB1-TLR2 signaling and accelerates pancreatic carcinoma metastasis , 2018, Journal of experimental & clinical cancer research : CR.
[9] Andrea Sottoriva,et al. Patient-derived organoids model treatment response of metastatic gastrointestinal cancers , 2018, Science.
[10] L. Tian,et al. The dual role and therapeutic potential of high-mobility group box 1 in cancer , 2017, Oncotarget.
[11] G. Falk,et al. Management of Low-Grade Dysplasia in Barrett's Esophagus: Incremental Progress Continues. , 2017, Gastroenterology.
[12] F. Vleggaar,et al. Toll-like Receptor 2 Signalling and the Lysosomal Machinery in Barrett's Esophagus. , 2016, Journal of gastrointestinal and liver diseases : JGLD.
[13] P. Lehenkari,et al. Toll-like receptors 1, 2, 4 and 6 in esophageal epithelium, Barrett's esophagus, dysplasia and adenocarcinoma , 2016, Oncotarget.
[14] Michael Quante,et al. Three-Dimensional Gastrointestinal Organoid Culture in Combination with Nerves or Fibroblasts: A Method to Characterize the Gastrointestinal Stem Cell Niche , 2015, Stem cells international.
[15] J. Peters,et al. Macrophage subtype predicts lymph node metastasis in oesophageal adenocarcinoma and promotes cancer cell invasion in vitro , 2015, British Journal of Cancer.
[16] A. Maitra,et al. Targeting chemokine pathways in esophageal adenocarcinoma , 2014, Cell cycle.
[17] Juergen A. Knoblich,et al. Organogenesis in a dish: Modeling development and disease using organoid technologies , 2014, Science.
[18] H. El‐Serag,et al. Circulating inflammatory cytokines and adipokines are associated with increased risk of Barrett's esophagus: a case-control study. , 2014, Clinical gastroenterology and hepatology : the official clinical practice journal of the American Gastroenterological Association.
[19] Yuwei Zhang,et al. Epidemiology of esophageal cancer. , 2013, World journal of gastroenterology.
[20] Kate L. Irvine,et al. The molecular basis for recognition of bacterial ligands at equine TLR2, TLR1 and TLR6 , 2013, Veterinary Research.
[21] N. Hogg,et al. PHAGOCYTES , GRANULOCYTES , AND MYELOPOIESIS Mast cell and macrophage chemokines CXCL 1 / CXCL 2 control the early stage of neutrophil recruitment during tissue in fl ammation , 2013 .
[22] S. Ha,et al. Recruitment of monocytes/macrophages in different tumor microenvironments. , 2013, Biochimica et biophysica acta.
[23] A. Thrift,et al. The incidence of esophageal adenocarcinoma continues to rise: analysis of period and birth cohort effects on recent trends. , 2012 .
[24] A. Parker,et al. STAT3-driven upregulation of TLR2 promotes gastric tumorigenesis independent of tumor inflammation. , 2012, Cancer cell.
[25] P. Massari,et al. The Role of TLR2 in Infection and Immunity , 2012, Front. Immun..
[26] Zhiheng Pei,et al. Molecular Pathways: Pathogenesis and Clinical Implications of Microbiome Alteration in Esophagitis and Barrett Esophagus , 2012, Clinical Cancer Research.
[27] C. Lightdale,et al. Bile acid and inflammation activate gastric cardia stem cells in a mouse model of Barrett-like metaplasia. , 2012, Cancer cell.
[28] M. Karin,et al. Role of TLR2‐dependent inflammation in metastatic progression , 2011, Annals of the New York Academy of Sciences.
[29] K. Midwood,et al. DAMPening Inflammation by Modulating TLR Signalling , 2010, Mediators of inflammation.
[30] Alberto Mantovani,et al. Tumor-Conditioned Macrophages Secrete Migration-Stimulating Factor: A New Marker for M2-Polarization, Influencing Tumor Cell Motility , 2010, The Journal of Immunology.
[31] H. Ni,et al. Fra-1 protooncogene regulates IL-6 expression in macrophages and promotes the generation of M2d macrophages , 2010, Cell Research.
[32] S. Akira,et al. The role of pattern-recognition receptors in innate immunity: update on Toll-like receptors , 2010, Nature Immunology.
[33] J. Masters,et al. Detection of Mycoplasma in cell cultures , 2010, Nature Protocols.
[34] G. Haraldsen,et al. The murine IL‐8 homologues KC, MIP‐2, and LIX are found in endothelial cytoplasmic granules but not in Weibel‐Palade bodies , 2010, Journal of leukocyte biology.
[35] S. Paik,et al. Recognition of lipopeptide patterns by Toll-like receptor 2-Toll-like receptor 6 heterodimer. , 2009, Immunity.
[36] Zhiheng Pei,et al. Inflammation and intestinal metaplasia of the distal esophagus are associated with alterations in the microbiome. , 2009, Gastroenterology.
[37] M. Cunningham,et al. Cutting Edge: Cardiac Myosin Activates Innate Immune Responses through TLRs1 , 2009, The Journal of Immunology.
[38] G. Mor,et al. Cancers take their Toll—the function and regulation of Toll-like receptors in cancer cells , 2008, Oncogene.
[39] K. Tracey,et al. HMGB1 SIGNALS THROUGH TOLL-LIKE RECEPTOR (TLR) 4 AND TLR2 , 2006, Shock.
[40] M. Horton,et al. Hyaluronan Fragments Act as an Endogenous Danger Signal by Engaging TLR21 , 2006, The Journal of Immunology.
[41] Carlos Manterola,et al. Epidemiology of esophageal adenocarcinoma , 2005, Journal of surgical oncology.
[42] Marian F Young,et al. The matrix component biglycan is proinflammatory and signals through Toll-like receptors 4 and 2 in macrophages. , 2005, The Journal of clinical investigation.
[43] Silvano Sozzani,et al. The chemokine system in diverse forms of macrophage activation and polarization. , 2004, Trends in immunology.
[44] Steffen Mühldorfer,et al. Activation of NFκB Represents the Central Event in the Neoplastic Progression Associated with Barrett's Esophagus: A Possible Link to the Inflammation and Overexpression of COX-2, PPARγ and Growth Factors , 2004, Digestive Diseases and Sciences.
[45] P. Allavena,et al. Macrophage polarization: tumor-associated macrophages as a paradigm for polarized M2 mononuclear phagocytes. , 2002, Trends in immunology.
[46] Benjamin A. Onwuegbusi,et al. Inflammatory gradient in Barrett’s oesophagus: implications for disease complications , 2002, Gut.
[47] Jacques Ferlay,et al. Estimating the world cancer burden: Globocan 2000 , 2001, International journal of cancer.
[48] D. S. Stamm,et al. MIP-2 secreted by epithelial cells increases neutrophil and lymphocyte recruitment in the mouse intestine , 2001, Gut.
[49] Carsten J. Kirschning,et al. Endocytosed HSP60s Use Toll-like Receptor 2 (TLR2) and TLR4 to Activate the Toll/Interleukin-1 Receptor Signaling Pathway in Innate Immune Cells* , 2001, The Journal of Biological Chemistry.
[50] Wan-Wan Lin,et al. Carcinoma-produced factors activate myeloid cells through TLR2 to stimulate metastasis , 2009, Nature.