Cholangiocyte pathobiology
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[1] S. Glaser,et al. Ductular Reaction in Liver Diseases: Pathological Mechanisms and Translational Significances , 2018, Hepatology.
[2] A. Franchitto,et al. Contribution of Resident Stem Cells to Liver and Biliary Tree Regeneration in Human Diseases , 2018, International journal of molecular sciences.
[3] S. Bicciato,et al. Transcriptional addiction in cancer cells is mediated by YAP/TAZ through BRD4 , 2018, Nature Medicine.
[4] D. Thorburn,et al. MAIT cells are chronically activated in patients with autoimmune liver disease and promote profibrogenic hepatic stellate cell activation , 2018, Hepatology.
[5] R. Coppel,et al. The immunobiology of mucosal-associated invariant T cell (MAIT) function in primary biliary cholangitis: Regulation by cholic acid-induced Interleukin-7. , 2018, Journal of autoimmunity.
[6] Kari A. Huppert,et al. De novo formation of the biliary system by TGFβ-mediated hepatocyte transdifferentiation , 2018, Nature.
[7] F. Lemaigre,et al. Development of the liver: Insights into organ and tissue morphogenesis. , 2018, Journal of hepatology.
[8] R. Fiorotto,et al. β‐Catenin and interleukin‐1β–dependent chemokine (C‐X‐C motif) ligand 10 production drives progression of disease in a mouse model of congenital hepatic fibrosis , 2018, Hepatology.
[9] N. LaRusso,et al. MicroRNA‐506 promotes primary biliary cholangitis–like features in cholangiocytes and immune activation , 2018, Hepatology.
[10] R. Sandberg,et al. Mouse Model of Alagille Syndrome and Mechanisms of Jagged1 Missense Mutations , 2017, Gastroenterology.
[11] R. Fiorotto,et al. Pathophysiologic implications of innate immunity and autoinflammation in the biliary epithelium. , 2017, Biochimica et biophysica acta. Molecular basis of disease.
[12] M. Marzioni,et al. Role of inflammation and proinflammatory cytokines in cholangiocyte pathophysiology. , 2017, Biochimica et biophysica acta. Molecular basis of disease.
[13] N. LaRusso,et al. Physiology of Cholngiocytes , 2018 .
[14] Anthony Atala,et al. Self‐assembled liver organoids recapitulate hepatobiliary organogenesis in vitro , 2018, Hepatology.
[15] T. Karlsen,et al. Primary sclerosing cholangitis - a comprehensive review. , 2017, Journal of hepatology.
[16] R. Fiorotto,et al. Notch signaling and progenitor/ductular reaction in steatohepatitis , 2017, PloS one.
[17] T. Karlsen,et al. The Microbiome in Primary Sclerosing Cholangitis: Current Evidence and Potential Concepts , 2017, Seminars in Liver Disease.
[18] S. Piccolo,et al. Mechanobiology of YAP and TAZ in physiology and disease , 2017, Nature Reviews Molecular Cell Biology.
[19] M. Bartolini,et al. Structural and functional integrity of human serum albumin: Analytical approaches and clinical relevance in patients with liver cirrhosis. , 2017, Journal of pharmaceutical and biomedical analysis.
[20] M. Manns,et al. Genetic association analysis identifies variants associated with disease progression in primary sclerosing cholangitis , 2017, Gut.
[21] C. Spirlí,et al. Emerging concepts in biliary repair and fibrosis. , 2017, American journal of physiology. Gastrointestinal and liver physiology.
[22] T. Karlsen,et al. Cholangiocytes and the environment in primary sclerosing cholangitis: where is the link? , 2017, Gut.
[23] M. Grompe,et al. Adult Mouse Liver Contains Two Distinct Populations of Cholangiocytes , 2017, Stem cell reports.
[24] T. Karlsen,et al. Reconstruction of the mouse extrahepatic biliary tree using primary human extrahepatic cholangiocyte organoids , 2017, Nature Medicine.
[25] G. Gores,et al. Development and Characterization of Cholangioids from Normal and Diseased Human Cholangiocytes as an In Vitro Model to Study Primary Sclerosing Cholangitis , 2017, Laboratory Investigation.
[26] F. Lund-Johansen,et al. Novel serum and bile protein markers predict primary sclerosing cholangitis disease severity and prognosis. , 2017, Journal of hepatology.
[27] Shenghui He,et al. Senescence in Health and Disease , 2017, Cell.
[28] Wei-Yu Lu,et al. Cholangiocytes act as Facultative Liver Stem Cells during Impaired Hepatocyte Regeneration , 2017, Nature.
[29] S. Monga,et al. Update on the Mechanisms of Liver Regeneration , 2017, Seminars in Liver Disease.
[30] G. Michalopoulos. Hepatostat: Liver regeneration and normal liver tissue maintenance , 2017, Hepatology.
[31] L. Vallier,et al. Directed differentiation of human induced pluripotent stem cells into functional cholangiocyte-like cells , 2017, Nature Protocols.
[32] T. Karlsen,et al. Nlrp3 Activation Induces Il-18 Synthesis and Affects the Epithelial Barrier Function in Reactive Cholangiocytes. , 2017, The American journal of pathology.
[33] T. Karlsen,et al. The role of natural killer T cells in a mouse model with spontaneous bile duct inflammation , 2017, Physiological reports.
[34] T. D. de Assunção,et al. Regenerative Medicine and the Biliary Tree , 2017, Seminars in Liver Disease.
[35] K. Takeishi,et al. Current strategies to generate mature human induced pluripotent stem cells derived cholangiocytes and future applications , 2017, Organogenesis.
[36] G. Gores,et al. Targeting senescent cholangiocytes and activated fibroblasts with Bcl-xL inhibitors ameliorates fibrosis in Mdr 2-/-mice , 2017 .
[37] G. Gores,et al. SOX17 regulates cholangiocyte differentiation and acts as a tumor suppressor in cholangiocarcinoma. , 2017, Journal of hepatology.
[38] G. Cortopassi,et al. Galectin‐3 regulates inflammasome activation in cholestatic liver injury , 2016, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[39] T. Karlsen,et al. Elevated interleukin‐8 in bile of patients with primary sclerosing cholangitis , 2016, Liver international : official journal of the International Association for the Study of the Liver.
[40] T. Itoh. Stem/progenitor cells in liver regeneration , 2016, Hepatology.
[41] A. Miyajima,et al. Heterogeneity and stochastic growth regulation of biliary epithelial cells dictate dynamic epithelial tissue remodeling , 2016, eLife.
[42] G. Carpino,et al. The hepatic, biliary, and pancreatic network of stem/progenitor cell niches in humans: A new reference frame for disease and regeneration , 2016, Hepatology.
[43] K. Sekiguchi,et al. Laminin 411 and 511 promote the cholangiocyte differentiation of human induced pluripotent stem cells. , 2016, Biochemical and biophysical research communications.
[44] P. Klenerman,et al. Biliary epithelium and liver B cells exposed to bacteria activate intrahepatic MAIT cells through MR1 , 2016, Journal of hepatology.
[45] D. Schuppan,et al. Macrophage recruitment by fibrocystin‐defective biliary epithelial cells promotes portal fibrosis in congenital hepatic fibrosis , 2016, Hepatology.
[46] M. Grompe,et al. Stem cells versus plasticity in liver and pancreas regeneration , 2016, Nature Cell Biology.
[47] L. Fabris,et al. Revisiting Epithelial-to-Mesenchymal Transition in Liver Fibrosis: Clues for a Better Understanding of the “Reactive” Biliary Epithelial Phenotype , 2016, Stem cells international.
[48] Z. Yu,et al. [Advances in pathogenesis, diagnosis and treatment of complement dysregulation-associated atypical hemolytic uremic syndrome]. , 2016, Zhonghua er ke za zhi = Chinese journal of pediatrics.
[49] M. Trauner,et al. Bile acids in regulation of inflammation and immunity: friend or foe? , 2016, Clinical and experimental rheumatology.
[50] L. Fabris,et al. Epithelial-to-Mesenchymal Transition and Cancer Invasiveness: What Can We Learn from Cholangiocarcinoma? , 2015, Journal of clinical medicine.
[51] J. McCluskey,et al. The burgeoning family of unconventional T cells , 2015, Nature Immunology.
[52] G. Michalopoulos,et al. Liver Stem Cells: Experimental Findings and Implications for Human Liver Disease. , 2015, Gastroenterology.
[53] T. Karlsen,et al. The biliary epithelium presents antigens to and activates natural killer T cells , 2015, Hepatology.
[54] J. Prieto,et al. CD8+ T cells undergo activation and programmed death-1 repression in the liver of aged Ae2a,b−/− mice favoring autoimmune cholangitis , 2015, Oncotarget.
[55] A. Cole,et al. Hepatic progenitor cells of biliary origin with liver repopulation capacity , 2015, Nature Cell Biology.
[56] Shinichiro Ogawa,et al. Directed differentiation of cholangiocytes from human pluripotent stem cells , 2015, Nature Biotechnology.
[57] T. Evans,et al. Orchestrating liver development , 2015, Development.
[58] Rui Dong,et al. Interleukin‐8: A critical chemokine in biliary atresia , 2015, Journal of gastroenterology and hepatology.
[59] F. Lemaigre. Determining the fate of hepatic cells by lineage tracing: Facts and pitfalls , 2015, Hepatology.
[60] H. Shiraha,et al. TLR4, TLR9, and NLRP3 in biliary epithelial cells of primary sclerosing cholangitis: Relationship with clinical characteristics , 2015, Journal of gastroenterology and hepatology.
[61] Ruslan Medzhitov,et al. Homeostasis, Inflammation, and Disease Susceptibility , 2015, Cell.
[62] Y. Li,et al. Development and Characterization of Human Induced Pluripotent Stem Cell-Derived Cholangiocytes , 2015, Laboratory Investigation.
[63] B. Stanger. Cellular homeostasis and repair in the mammalian liver. , 2015, Annual review of physiology.
[64] M. Strazzabosco,et al. Emerging roles of Notch signaling in liver disease , 2015, Hepatology.
[65] R. Bataller,et al. The biliary epithelium gives rise to liver progenitor cells , 2014, Hepatology.
[66] E. Pikarsky,et al. Adult hepatocytes are generated by self-duplication rather than stem cell differentiation. , 2014, Cell stem cell.
[67] H. Willenbring,et al. Evidence against a Stem Cell Origin of New Hepatocytes in a Common Mouse Model of Chronic Liver Injury , 2014, Cell reports.
[68] N. LaRusso,et al. Characterization of cultured cholangiocytes isolated from livers of patients with primary sclerosing cholangitis , 2014, Laboratory Investigation.
[69] M. Grompe,et al. Clonal tracing of Sox9+ liver progenitors in mouse oval cell injury , 2014, Hepatology.
[70] L. Combettes,et al. Generation of functional cholangiocyte-like cells from human pluripotent stem cells and HepaRG cells , 2014, Hepatology.
[71] D. Adams,et al. Vascular cell adhesion molecule 1 expression by biliary epithelium promotes persistence of inflammation by inhibiting effector T‐cell apoptosis , 2014, Hepatology.
[72] J. Prieto,et al. Anion exchanger 2 is critical for CD8+ T cells to maintain pHi homeostasis and modulate immune responses , 2014, European journal of immunology.
[73] R. Medzhitov,et al. Stress, inflammation, and defense of homeostasis. , 2014, Molecular cell.
[74] A. Miyajima,et al. Liver regeneration by stem/progenitor cells , 2014, Hepatology.
[75] D. Stainier,et al. Extensive conversion of hepatic biliary epithelial cells to hepatocytes after near total loss of hepatocytes in zebrafish. , 2014, Gastroenterology.
[76] Huiqiang Lu,et al. Regeneration of liver after extreme hepatocyte loss occurs mainly via biliary transdifferentiation in zebrafish. , 2014, Gastroenterology.
[77] M. Nagino,et al. Inhibition of Toll-like receptor 4 suppresses liver injury induced by biliary obstruction and subsequent intraportal lipopolysaccharide injection. , 2014, American journal of physiology. Gastrointestinal and liver physiology.
[78] A. Ardura-Fabregat,et al. Role of AE2 for pHi regulation in biliary epithelial cells , 2013, Front. Physiol..
[79] R. Schwabe,et al. Fate-tracing reveals hepatic stellate cells as dominant contributors to liver fibrosis independent of its etiology , 2013, Nature Communications.
[80] L. Fabris,et al. Vascular biology of the biliary epithelium , 2013, Journal of gastroenterology and hepatology.
[81] J. Boyer,et al. Bile formation and secretion. , 2013, Comprehensive Physiology.
[82] R. Fiorotto,et al. Notch signaling regulates tubular morphogenesis during repair from biliary damage in mice. , 2013, Journal of Hepatology.
[83] N. LaRusso,et al. Ciliary subcellular localization of TGR5 determines the cholangiocyte functional response to bile acid signaling. , 2013, American journal of physiology. Gastrointestinal and liver physiology.
[84] A. Franchitto,et al. Recent advances in the morphological and functional heterogeneity of the biliary epithelium , 2013, Experimental biology and medicine.
[85] S. Monga,et al. Cellular and molecular basis of liver development. , 2013, Comprehensive Physiology.
[86] N. LaRusso,et al. The dynamic biliary epithelia: molecules, pathways, and disease. , 2013, Journal of hepatology.
[87] Hans Clevers,et al. In vitro expansion of single Lgr5+ liver stem cells induced by Wnt-driven regeneration , 2013, Nature.
[88] R. Mancinelli,et al. Recent advances on the mechanisms regulating cholangiocyte proliferation and the significance of the neuroendocrine regulation of cholangiocyte pathophysiology. , 2012, Annals of translational medicine.
[89] N. LaRusso,et al. Physiology of cholangiocytes. , 2013, Comprehensive Physiology.
[90] I. Leclercq,et al. Liver progenitor cells yield functional hepatocytes in response to chronic liver injury in mice. , 2012, Gastroenterology.
[91] D. Kavanagh,et al. CXCR3-dependent recruitment and CCR6-mediated positioning of Th-17 cells in the inflamed liver , 2012, Journal of hepatology.
[92] B. Stanger,et al. Molecular mechanisms of liver and bile duct development , 2012, Wiley interdisciplinary reviews. Developmental biology.
[93] Jean S. Campbell,et al. Liver regeneration. , 2012, Journal of hepatology.
[94] N. LaRusso,et al. Up‐regulation of microRNA 506 leads to decreased Cl−/HCO3− anion exchanger 2 expression in biliary epithelium of patients with primary biliary cirrhosis , 2012, Hepatology.
[95] L. Fabris,et al. Development of the bile ducts: essentials for the clinical hepatologist. , 2012, Journal of hepatology.
[96] Fanyin Meng,et al. Interleukin-6 and its receptor, key players in hepatobiliary inflammation and cancer. , 2012, Translational gastrointestinal cancer.
[97] T. Roskams,et al. Macrophage-derived Wnt opposes Notch signaling to specify hepatic progenitor cell fate in chronic liver disease , 2012, Nature Medicine.
[98] P. Schirmacher,et al. S100A9 is a Biliary Protein Marker of Disease Activity in Primary Sclerosing Cholangitis , 2012, PloS one.
[99] C. Paulusma,et al. A biliary HCO3− umbrella constitutes a protective mechanism against bile acid‐induced injury in human cholangiocytes , 2012, Hepatology.
[100] M. Kay,et al. Fate tracing of mature hepatocytes in mouse liver homeostasis and regeneration. , 2011, The Journal of clinical investigation.
[101] A. Franchitto,et al. Castration inhibits biliary proliferation induced by bile duct obstruction: novel role for the autocrine trophic effect of testosterone. , 2011, American journal of physiology. Gastrointestinal and liver physiology.
[102] T. Berg,et al. Enhanced innate immune responsiveness and intolerance to intestinal endotoxins in human biliary epithelial cells contributes to chronic cholangitis , 2011, Liver international : official journal of the International Association for the Study of the Liver.
[103] M. Trauner,et al. Loss of CFTR affects biliary epithelium innate immunity and causes TLR4-NF-κB-mediated inflammatory response in mice. , 2011, Gastroenterology.
[104] P. Lescuyer,et al. A step further in the analysis of human bile proteome. , 2011, Journal of proteome research.
[105] L. Fabris,et al. Epithelial-mesenchymal interactions in biliary diseases. , 2011, Seminars in liver disease.
[106] A. Antoniou,et al. Biliary differentiation and bile duct morphogenesis in development and disease. , 2011, The international journal of biochemistry & cell biology.
[107] J. Deng,et al. Continuous cell supply from a Sox9-expressing progenitor zone in adult liver, exocrine pancreas and intestine , 2011, Nature Genetics.
[108] N. LaRusso,et al. Opisthorchis viverrini excretory/secretory products induce toll-like receptor 4 upregulation and production of interleukin 6 and 8 in cholangiocyte. , 2010, Parasitology international.
[109] D. Rockey,et al. Identification and Functional Characterization of TMEM16A, a Ca2+-activated Cl− Channel Activated by Extracellular Nucleotides, in Biliary Epithelium* , 2010, The Journal of Biological Chemistry.
[110] N. LaRusso,et al. Biliary exosomes influence cholangiocyte regulatory mechanisms and proliferation through interaction with primary cilia. , 2010, American journal of physiology. Gastrointestinal and liver physiology.
[111] Yasunori Sato,et al. Bile ductular cells undergoing cellular senescence increase in chronic liver diseases along with fibrous progression. , 2010, American journal of clinical pathology.
[112] F. Lemaigre. Molecular mechanisms of biliary development. , 2010, Progress in molecular biology and translational science.
[113] J. Tchorz,et al. Notch2 signaling promotes biliary epithelial cell fate specification and tubulogenesis during bile duct development in mice , 2009, Hepatology.
[114] M. Grompe,et al. Stem cells and liver regeneration. , 2009, Gastroenterology.
[115] F. Lemaigre. Mechanisms of liver development: concepts for understanding liver disorders and design of novel therapies. , 2009, Gastroenterology.
[116] M. Gershwin,et al. Lymphocyte recruitment and homing to the liver in primary biliary cirrhosis and primary sclerosing cholangitis , 2009, Seminars in Immunopathology.
[117] D. Wendum,et al. Bile salts control the antimicrobial peptide cathelicidin through nuclear receptors in the human biliary epithelium. , 2009, Gastroenterology.
[118] K. Kaestner,et al. Foxl1 is a marker of bipotential hepatic progenitor cells in mice , 2009, Hepatology.
[119] A. Hofmann. The enterohepatic circulation of bile acids in mammals: form and functions. , 2009, Frontiers in bioscience.
[120] J. Boyer,et al. OST alpha-OST beta: a key membrane transporter of bile acids and conjugated steroids. , 2009, Frontiers in bioscience.
[121] N. LaRusso,et al. Cholangiocyte primary cilia are chemosensory organelles that detect biliary nucleotides via P2Y12 purinergic receptors. , 2008, American journal of physiology. Gastrointestinal and liver physiology.
[122] Nicholas F LaRusso,et al. Cholangiocyte primary cilia in liver health and disease , 2008, Developmental dynamics : an official publication of the American Association of Anatomists.
[123] G. Gores,et al. Cholangiocarcinoma: Advances in pathogenesis, diagnosis, and treatment , 2008, Hepatology.
[124] R. Mancinelli,et al. Progesterone stimulates the proliferation of female and male cholangiocytes via autocrine/paracrine mechanisms. , 2008, American journal of physiology. Gastrointestinal and liver physiology.
[125] R. Medzhitov. Origin and physiological roles of inflammation , 2008, Nature.
[126] L. Fabris,et al. Functional Anatomy of Normal Bile Ducts , 2008, Anatomical record.
[127] J. Prieto,et al. Ae2a,b-deficient mice develop antimitochondrial antibodies and other features resembling primary biliary cirrhosis. , 2008, Gastroenterology.
[128] F. Endo,et al. FGF signaling segregates biliary cell‐lineage from chick hepatoblasts cooperatively with BMP4 and ECM components in vitro , 2008, Developmental dynamics : an official publication of the American Association of Anatomists.
[129] D. Rickman,et al. Stabilization of β‐catenin affects mouse embryonic liver growth and hepatoblast fate , 2007, Hepatology.
[130] L. Boon,et al. Coculture of human liver macrophages and cholangiocytes leads to CD40‐dependent apoptosis and cytokine secretion , 2007, Hepatology.
[131] N. LaRusso,et al. Cholangiocyte cilia express TRPV4 and detect changes in luminal tonicity inducing bicarbonate secretion , 2007, Proceedings of the National Academy of Sciences.
[132] K. Isse,et al. Innate immune response to double‐stranded RNA in biliary epithelial cells is associated with the pathogenesis of biliary atresia , 2007, Hepatology.
[133] S. Glaser,et al. The α2-adrenergic receptor agonist UK 14,304 inhibits secretin-stimulated ductal secretion by downregulation of the cAMP system in bile duct-ligated rats , 2007 .
[134] R. Fiorotto,et al. Analysis of liver repair mechanisms in Alagille syndrome and biliary atresia reveals a role for notch signaling. , 2007, The American journal of pathology.
[135] K. Isse,et al. IL‐8 expression by biliary epithelial cells is associated with neutrophilic infiltration and reactive bile ductules , 2007, Liver international : official journal of the International Association for the Study of the Liver.
[136] Yasunori Sato,et al. Interaction of Toll-like receptors with bacterial components induces expression of CDX2 and MUC2 in rat biliary epithelium in vivo and in culture , 2007, Laboratory Investigation.
[137] A. Bergquist,et al. Biliary epithelial cell antibodies link adaptive and innate immune responses in primary sclerosing cholangitis. , 2007, Gastroenterology.
[138] I. Mackay,et al. AMA production in primary biliary cirrhosis is promoted by the TLR9 ligand CpG and suppressed by potassium channel blockers , 2007, Hepatology.
[139] G. Michalopoulos,et al. Liver Regeneration , 1997, Journal of cellular physiology.
[140] S. Glaser,et al. Proliferating cholangiocytes: a neuroendocrine compartment in the diseased liver. , 2007, Gastroenterology.
[141] S. Glaser,et al. The alpha2-adrenergic receptor agonist UK 14,304 inhibits secretin-stimulated ductal secretion by downregulation of the cAMP system in bile duct-ligated rats. , 2007, American journal of physiology. Cell physiology.
[142] Nicholas F LaRusso,et al. Cholangiocyte cilia detect changes in luminal fluid flow and transmit them into intracellular Ca2+ and cAMP signaling. , 2006, Gastroenterology.
[143] N. LaRusso,et al. Isolation and characterization of cholangiocyte primary cilia. , 2006, American journal of physiology. Gastrointestinal and liver physiology.
[144] A. Franchitto,et al. Cholangiocytes and blood supply. , 2006, World journal of gastroenterology.
[145] A. Franchitto,et al. Estrogens and the pathophysiology of the biliary tree. , 2006, World journal of gastroenterology.
[146] J. Prieto,et al. Cholangiocyte anion exchange and biliary bicarbonate excretion. , 2006, World journal of gastroenterology.
[147] G. Svegliati-Baroni,et al. Estrogens maintain bile duct mass and reduce apoptosis after biliodigestive anastomosis in bile duct ligated rats. , 2006, Journal of hepatology.
[148] J. Prieto,et al. Bicarbonate-rich choleresis induced by secretin in normal rat is taurocholate-dependent and involves AE2 anion exchanger. , 2006, Hepatology.
[149] J. Dranoff,et al. Secretion of MCP-1/CCL2 by bile duct epithelia induces myofibroblastic transdifferentiation of portal fibroblasts. , 2006, American journal of physiology. Gastrointestinal and liver physiology.
[150] J. Prieto,et al. Bicarbonate‐rich choleresis induced by secretin in normal rat is taurocholate‐dependent and involves AE2 anion exchanger , 2006 .
[151] P. Dawson,et al. OSTα‐OSTβ: A major basolateral bile acid and steroid transporter in human intestinal, renal, and biliary epithelia , 2005 .
[152] Hajime Isomoto,et al. Interleukin 6 upregulates myeloid cell leukemia‐1 expression through a STAT3 pathway in cholangiocarcinoma cells , 2005, Hepatology.
[153] N. LaRusso,et al. Multiple TLRs Are Expressed in Human Cholangiocytes and Mediate Host Epithelial Defense Responses to Cryptosporidium parvum via Activation of NF-κB1 , 2005, The Journal of Immunology.
[154] P. Courtoy,et al. Control of liver cell fate decision by a gradient of TGF beta signaling modulated by Onecut transcription factors. , 2005, Genes & development.
[155] Masahiro Ito,et al. Hepatic expression of toll-like receptor 4 in primary biliary cirrhosis. , 2005, Journal of autoimmunity.
[156] G. Gores,et al. Interleukin-6 contributes to Mcl-1 up-regulation and TRAIL resistance via an Akt-signaling pathway in cholangiocarcinoma cells. , 2005, Gastroenterology.
[157] D. Adams,et al. CXC Chemokine Ligand 16 Promotes Integrin-Mediated Adhesion of Liver-Infiltrating Lymphocytes to Cholangiocytes and Hepatocytes within the Inflamed Human Liver1 , 2005, The Journal of Immunology.
[158] M. Harada,et al. Biliary epithelial cells regulate autoreactive T cells: Implications for biliary‐specific diseases , 2005, Hepatology.
[159] P. Dawson,et al. OSTalpha-OSTbeta: a major basolateral bile acid and steroid transporter in human intestinal, renal, and biliary epithelia. , 2005, Hepatology.
[160] E. Porta,et al. Ciliated biliary epithelial cells in the livers of non-human primates , 2005, Experientia.
[161] T. Roskams,et al. α‐1 adrenergic receptor agonists modulate ductal secretion of BDL rats via Ca2+‐ and PKC‐dependent stimulation of cAMP , 2004, Hepatology.
[162] N. LaRusso,et al. The cholangiopathies: disorders of biliary epithelia. , 2004, Gastroenterology.
[163] S. Glaser,et al. cAMP stimulates the secretory and proliferative capacity of the rat intrahepatic biliary epithelium through changes in the PKA/Src/MEK/ERK1/2 pathway. , 2004, Journal of hepatology.
[164] T. Hirayama,et al. Peptide antibiotic human beta‐defensin‐1 and ‐2 contribute to antimicrobial defense of the intrahepatic biliary tree , 2004, Hepatology.
[165] A. Kamiya,et al. TNF‐α regulates mouse fetal hepatic maturation induced by oncostatin M and extracellular matrices , 2004, Hepatology.
[166] A. West,et al. Nomenclature of the finer branches of the biliary tree: Canals, ductules, and ductular reactions in human livers , 2004, Hepatology.
[167] C. Benz,et al. [Primary sclerosing cholangitis]. , 2000, Der Internist.
[168] T. Roskams,et al. Progenitor cells in diseased human liver. , 2003, Seminars in liver disease.
[169] K. Isse,et al. Lipopolysaccharide Activates Nuclear Factor-KappaB through Toll-Like Receptors and Related Molecules in Cultured Biliary Epithelial Cells , 2003, Laboratory Investigation.
[170] N. LaRusso,et al. Agonist-induced Coordinated Trafficking of Functionally Related Transport Proteins for Water and Ions in Cholangiocytes* , 2003, Journal of Biological Chemistry.
[171] G. Stoica,et al. Dopaminergic inhibition of secretin-stimulated choleresis by increased PKC-gamma expression and decrease of PKA activity. , 2003, American journal of physiology. Gastrointestinal and liver physiology.
[172] R. Hultcrantz,et al. The Myofibroblastic Conversion of Peribiliary Fibrogenic Cells Distinct from Hepatic Stellate Cells Is Stimulated by Platelet-Derived Growth Factor During Liver Fibrogenesis , 2003, Laboratory Investigation.
[173] M. Kaplan,et al. Quantitation and phenotypic analysis of natural killer T cells in primary biliary cirrhosis using a human CD1d tetramer. , 2002, Gastroenterology.
[174] D. Adams,et al. The role of cholangiocytes in the development of chronic inflammatory liver disease. , 2002, Frontiers in bioscience : a journal and virtual library.
[175] J. Neuberger,et al. Defective regulation of cholangiocyte Cl−/HCO−3 and Na+/H+ exchanger activities in primary biliary cirrhosis , 2002, Hepatology.
[176] S. Glaser,et al. Stimulation of α2‐adrenergic receptor inhibits cholangiocarcinoma growth through modulation of Raf‐1 and B‐Raf activities , 2002 .
[177] D. Adams,et al. Homing of mucosal lymphocytes to the liver in the pathogenesis of hepatic complications of inflammatory bowel disease , 2002, The Lancet.
[178] M. Nathanson,et al. Bile duct epithelia regulate biliary bicarbonate excretion in normal rat liver. , 2001, Gastroenterology.
[179] R. Cameron,et al. Accumulation of macrophages in primary sclerosing cholangitis. , 2001, Clinical biochemistry.
[180] J. Boyer,et al. Cellular localization and up‐regulation of multidrug resistance–associated protein 3 in hepatocytes and cholangiocytes during obstructive cholestasis in rat liver , 2001, Hepatology.
[181] N F LaRusso,et al. Alternative splicing of the rat sodium/bile acid transporter changes its cellular localization and transport properties. , 2000, Proceedings of the National Academy of Sciences of the United States of America.
[182] D. Alvaro,et al. Regulation and deregulation of cholangiocyte proliferation. , 2000, Journal of hepatology.
[183] J. Neuberger,et al. Characterization and isolation of ductular cells coexpressing neural cell adhesion molecule and Bcl-2 from primary cholangiopathies and ductal plate malformations. , 2000, The American journal of pathology.
[184] S. Glaser,et al. Functional heterogeneity of the intrahepatic biliary epithelium , 2000, Hepatology.
[185] H. Takikawa,et al. ATP-dependent Transport of Bile Salts by Rat Multidrug Resistance-associated Protein 3 (Mrp3)* , 2000, The Journal of Biological Chemistry.
[186] J. Martí-Climent,et al. Assessment of biliary bicarbonate secretion in humans by positron emission tomography. , 1999, Gastroenterology.
[187] G. Peters,et al. MRP3, an organic anion transporter able to transport anti-cancer drugs. , 1999, Proceedings of the National Academy of Sciences of the United States of America.
[188] R. Roman,et al. Endogenous ATP release regulates Cl- secretion in cultured human and rat biliary epithelial cells. , 1999, American journal of physiology. Gastrointestinal and liver physiology.
[189] B. Sobel,et al. TNF- a and insulin, alone and synergistically, induce plasminogen activator inhibitor-1 expression in adipocytes , 1999 .
[190] S. Glaser,et al. Endothelin-1 inhibits secretin-stimulated ductal secretion by interacting with ETA receptors on large cholangiocytes. , 1998, American journal of physiology. Gastrointestinal and liver physiology.
[191] E. Ritman,et al. Anatomy of the human biliary system studied by quantitative computer‐aided three‐dimensional imaging techniques , 1998, Hepatology.
[192] S. Milani,et al. Increased expression of monocyte chemotactic protein-1 during active hepatic fibrogenesis: correlation with monocyte infiltration. , 1998, The American journal of pathology.
[193] M. Strazzabosco,et al. Liver and biliary problems in cystic fibrosis. , 1998, Seminars in liver disease.
[194] P. Dawson,et al. Rat cholangiocytes absorb bile acids at their apical domain via the ileal sodium-dependent bile acid transporter. , 1997, The Journal of clinical investigation.
[195] S. Glaser,et al. Gastrin inhibits secretin-induced ductal secretion by interaction with specific receptors on rat cholangiocytes. , 1997, American journal of physiology. Gastrointestinal and liver physiology.
[196] J. Boyer,et al. Role of kinases and phosphatases in the regulation of fluid secretion and Cl-/HCO3- exchange in cholangiocytes. , 1997, The American journal of physiology.
[197] Colin C. Collins,et al. Alagille syndrome is caused by mutations in human Jagged1, which encodes a ligand for Notch1 , 1997, Nature Genetics.
[198] G. Svegliati-Baroni,et al. Carrier-mediated transport of conjugated bile acids across the basolateral membrane of biliary epithelial cells. , 1997, The American journal of physiology.
[199] S. Glaser,et al. Large but not small intrahepatic bile ducts are involved in secretin-regulated ductal bile secretion. , 1997, The American journal of physiology.
[200] N. LaRusso,et al. Kinetic and molecular identification of sodium-dependent glucose transporter in normal rat cholangiocytes. , 1997, The American journal of physiology.
[201] D. Adams,et al. Inflammatory cytokines stimulate human biliary epithelial cells to express interleukin-8 and monocyte chemotactic protein-1. , 1997, Biochemical Society transactions.
[202] J. Prieto,et al. Decreased anion exchanger 2 immunoreactivity in the liver of patients with primary biliary cirrhosis , 1997, Hepatology.
[203] D. Adams. Biliary epithelial cells: innocent victims or active participants in immune-mediated liver disease? , 1996, The Journal of laboratory and clinical medicine.
[204] G. Michalopoulos,et al. Ductular reaction after submassive necrosis in humans. Special emphasis on analysis of ductular hepatocytes. , 1996, The American journal of pathology.
[205] A. Jones,et al. Intestinal immunisation with Escherichia coli protects rats against Escherichia coli induced cholangitis. , 1996, Gut.
[206] N. LaRusso,et al. Morphological, molecular, and functional heterogeneity of cholangiocytes from normal rat liver. , 1996, Gastroenterology.
[207] N. LaRusso,et al. Development and characterization of polarized primary cultures of rat intrahepatic bile duct epithelial cells. , 1996, Laboratory investigation; a journal of technical methods and pathology.
[208] A. Malik,et al. Arg-Gly-Asp peptide increases endothelial hydraulic conductivity: comparison with thrombin response. , 1995, The American journal of physiology.
[209] N. LaRusso,et al. Somatostatin inhibits secretin-induced ductal hypercholeresis and exocytosis by cholangiocytes. , 1995, The American journal of physiology.
[210] M. Sharpe,et al. Scatter factor/hepatocyte growth factor is essential for liver development , 1995, Nature.
[211] V. Desmet. Histopathology of cholestasis. , 1995, Verhandlungen der Deutschen Gesellschaft fur Pathologie.
[212] D. Adams,et al. Intercellular adhesion molecule-1 and MHC antigens on human intrahepatic bile duct cells: effect of pro-inflammatory cytokines. , 1993, Gut.
[213] B. Markus,et al. Establishment and immunological characterization of cultured human gallbladder epithelial cells , 1993, Hepatology.
[214] A. Scheynius,et al. Induced expression of heat‐shock protein on biliary epithelium in patients with primary sclerosing cholangitis and primary biliary cirrhosis , 1993, Hepatology.
[215] G. Feldmann,et al. Immunoperoxidase localization of ursodeoxycholic acid in rat biliary epithelial cells. Evidence for a cholehepatic circulation. , 2008, Liver.
[216] G. Alpini,et al. Secretin stimulates bile ductular secretory activity through the cAMP system. , 1992, The American journal of physiology.
[217] K. Saito,et al. Lactoferrin and lysozyme in the intrahepatic bile duct of normal livers and hepatolithiasis. An immunohistochemical study. , 1992, Journal of hepatology.
[218] S. Williams,et al. Liver and biliary problems in cystic fibrosis. , 1992, British medical bulletin.
[219] H. Stein,et al. Transforming growth factors beta 1 and beta 2 are differentially expressed in fibrotic liver disease. , 1991, The American journal of pathology.
[220] N. LaRusso,et al. Isolation and morphologic characterization of bile duct epithelial cells from normal rat liver. , 1989, Gastroenterology.
[221] W. Brown,et al. The liver and IgA: Immunological, cell biological and clinical implications , 1989, Hepatology.
[222] K. Einarsson,et al. Evidence that vasoactive intestinal peptide induces ductular secretion of bile in humans. , 1989, Gastroenterology.
[223] J. Boyer,et al. Biliary catabolism of glutathione and differential reabsorption of its amino acid constituents. , 1988, The American journal of physiology.
[224] C. Johanson. Benzodiazepine self-administration in rhesus monkeys: Estazolam, flurazepam and lorazepam , 1987, Pharmacology Biochemistry and Behavior.
[225] A. van de Wiel,et al. Characteristics of serum IgA and liver IgA deposits in alcoholic liver disease , 1987, Hepatology.
[226] L. Sollid,et al. Production and secretion of immunoglobulins in the gastrointestinal tract. , 1987, Annals of allergy.
[227] J. Boyer,et al. Intrabiliary glutathione hydrolysis. A source of glutamate in bile. , 1986, The Journal of biological chemistry.
[228] E. Dickson,et al. Primary Sclerosing Cholangitis , 1984, New England Journal of Medicine.
[229] D. Kaminski,et al. Effect of somatostatin and bombesin on secretin-stimulated ductular bile flow in dogs. , 1983, Gastroenterology.
[230] W. Walker,et al. Hepatobiliary Clearance of IgA Immune Complexes Formed in the Circulation , 2007, Hepatology.
[231] P. D. Smith,et al. IGA in human bile and liver. , 1981, Journal of immunology.
[232] E. Robin. Physiology of Membrane Disorders , 1979, Springer US.
[233] I. Sternlieb,et al. Special article: functional implications of human portal and bile ductular ultrastructure. , 1972, Gastroenterology.