Actomyosin contractility drives bile regurgitation as an early response during obstructive cholestasis.
暂无分享,去创建一个
Chan Way Ng | P. So | C. Dong | Hanry Yu | S. Zhuo | V. Viasnoff | A. Wee | B. C. Low | P. Kanchanawong | Pornteera Pawijit | E. Fong | Y. Dan | Ziwei Song | Kapish Gupta | I. C. Ng | Junjun Fan | Qiushi Li | Shupei Mo | Haoyu Tang
[1] J. Thiery,et al. Extracellular matrix scaffolding guides lumen elongation by inducing anisotropic intercellular mechanical tension , 2016, Nature Cell Biology.
[2] H. Gerhardt,et al. Blood flow drives lumen formation by inverse membrane blebbing during angiogenesis in vivo , 2016, Nature Cell Biology.
[3] O. Dirsch,et al. Cholestasis‐induced adaptive remodeling of interlobular bile ducts , 2016, Hepatology.
[4] M. Jirstrand,et al. Bile canalicular dynamics in hepatocyte sandwich cultures , 2015, Archives of Toxicology.
[5] A. Müsch. The unique polarity phenotype of hepatocytes. , 2014, Experimental cell research.
[6] M. Nussenzweig,et al. Dynamic signaling by T follicular helper cells during germinal center B cell selection , 2014, Science.
[7] V. Reshetnyak. Physiological and molecular biochemical mechanisms of bile formation. , 2013, World journal of gastroenterology.
[8] Erez Raz,et al. The role and regulation of blebs in cell migration , 2013, Current opinion in cell biology.
[9] B. Wildhaber. Biliary Atresia: 50 Years after the First Kasai , 2012, ISRN surgery.
[10] Guillermo A. Gomez,et al. A WAVE2–Arp2/3 actin nucleator apparatus supports junctional tension at the epithelial zonula adherens , 2012, Molecular biology of the cell.
[11] Jacco van Rheenen,et al. Intravital Microscopy Through an Abdominal Imaging Window Reveals a Pre-Micrometastasis Stage During Liver Metastasis , 2012, Science Translational Medicine.
[12] S. Yonemura,et al. α-Catenin as a tension transducer that induces adherens junction development , 2010, Nature Cell Biology.
[13] Frank Bradke,et al. Lifeact mice for studying F-actin dynamics , 2010, Nature Methods.
[14] M. Davenport,et al. Biliary atresia , 2009, The Lancet.
[15] J. Tinevez,et al. Role of cortical tension in bleb growth , 2009, Proceedings of the National Academy of Sciences.
[16] Martin Wagner,et al. New molecular insights into the mechanisms of cholestasis. , 2009, Journal of hepatology.
[17] G. Adema,et al. Mouse dendritic cells matured by ingestion of apoptotic blebs induce T cells to produce interleukin-17. , 2009, Arthritis and rheumatism.
[18] O. Briz,et al. Bile-acid-induced cell injury and protection. , 2009, World journal of gastroenterology.
[19] D. Kordzaia,et al. Biliary hypertension as the cell proliferation trigger in bile duct ligated rats. , 2009, Georgian medical news.
[20] Guillaume Charras,et al. Blebs lead the way: how to migrate without lamellipodia , 2008, Nature Reviews Molecular Cell Biology.
[21] Guillaume Charras,et al. A short history of blebbing , 2008, Journal of microscopy.
[22] L. Fabris,et al. Functional Anatomy of Normal Bile Ducts , 2008, Anatomical record.
[23] L Mahadevan,et al. Life and times of a cellular bleb. , 2008, Biophysical journal.
[24] K. Brouwer,et al. Localization of P-gp (Abcb1) and Mrp2 (Abcc2) in Freshly Isolated Rat Hepatocytes , 2008, Drug Metabolism and Disposition.
[25] T. Kagawa,et al. Initial site of bile regurgitation following extrahepatic biliary obstruction in living rats , 2007, Journal of gastroenterology and hepatology.
[26] J. García‐Pagán,et al. Animal models of portal hypertension. , 2006, World journal of gastroenterology.
[27] Timothy J. Mitchison,et al. Reassembly of contractile actin cortex in cell blebs , 2006, The Journal of cell biology.
[28] K. Tanishita,et al. Coordinated Movement of Bile Canalicular Networks Reconstructed by Rat Small Hepatocytes , 2005, Annals of Biomedical Engineering.
[29] R. Wightman,et al. Synaptic vesicles really do kiss and run , 2004, Nature Neuroscience.
[30] Richard J. Thompson,et al. Progressive familial intrahepatic cholestasis, type 1, is associated with decreased farnesoid X receptor activity. , 2004, Gastroenterology.
[31] J. Crawford,et al. The pathology of cholestasis. , 2004, Seminars in liver disease.
[32] A. Zervoudakis,et al. Intracellular accumulation of pIgA‐R and regulators of transcytotic trafficking in cholestatic rat hepatocytes , 2003, Hepatology.
[33] F. Lammert,et al. Ursodeoxycholic acid aggravates bile infarcts in bile duct-ligated and Mdr2 knockout mice via disruption of cholangioles. , 2002, Gastroenterology.
[34] M. Cipolla,et al. Pressure‐induced actin polymerization in vascular smooth muscle as a mechanism underlying myogenic behavior , 2002, FASEB journal : official publication of the Federation of American Societies for Experimental Biology.
[35] M. McNiven,et al. Alterations in vesicle transport and cell polarity in rat hepatocytes subjected to mechanical or chemical cholestasis. , 2001, Gastroenterology.
[36] Y. Kamegaya,et al. Bile canalicular contraction and dilatation in primary culture of rat hepatocytes – possible involvement of two different types of plasma membrane Ca2+-Mg2+-ATPase and Ca2+-pump-ATPase , 2001, Medical Electron Microscopy.
[37] W. Frederiks,et al. Rearrangement of hepatocellular F‐actin precedes the formation of rosette‐like structures in parenchyma of cholestatic rat liver , 1998, Hepatology.
[38] A. Smith,et al. Hepatic secretion of phospholipid vesicles in the mouse critically depends on mdr2 or MDR3 P-glycoprotein expression. Visualization by electron microscopy. , 1997, The Journal of clinical investigation.
[39] J. Ahearn,et al. C1q binds directly and specifically to surface blebs of apoptotic human keratinocytes: complement deficiency and systemic lupus erythematosus revisited. , 1997, Journal of immunology.
[40] W. Frederiks,et al. Disturbed structural interactions between microfilaments and tight junctions in rat hepatocytes during extrahepatic cholestasis induced by common bile duct ligation , 1996, Histochemistry and Cell Biology.
[41] S. Laster,et al. Bleb formation and F‐actin distribution during mitosis and tumor necrosis factor‐induced apoptosis , 1996, Microscopy research and technique.
[42] G. Feldmann,et al. The transcytotic pathway of an apical plasma membrane protein (B10) in hepatocytes is similar to that of IgA and occurs via a tubular pericentriolar compartment. , 1996, Journal of cell science.
[43] N. Tsukada,et al. Bile canalicular contraction is coincident with reorganization of pericanalicular filaments and co-localization of actin and myosin-II. , 1993, The journal of histochemistry and cytochemistry : official journal of the Histochemistry Society.
[44] J. Goltz,et al. A role for microtubules in sorting endocytic vesicles in rat hepatocytes. , 1992, Proceedings of the National Academy of Sciences of the United States of America.
[45] N. Watanabe,et al. Motility of bile canaliculi in the living animal: implications for bile flow , 1991, The Journal of cell biology.
[46] S. French,et al. Role of cytoskeleton in canalicular contraction in cultured differentiated hepatocytes. , 1990, The American journal of pathology.
[47] C. Balabaud,et al. Morphologic structure of bile canaliculi after bile duct ligation in the rat. A time-course study. , 1982, Archives of pathology & laboratory medicine.
[48] B. Bertolini. ULTRASTRUCTURE OF THE SPINAL CORD OF THE LAMPREY. , 1964, Journal of ultrastructure research.
[49] K. Yoshino. Scanning electron microscopy on the rat liver with alphanaphthylisothiocyanate-induced cholestasis , 2007, Gastroenterologia Japonica.
[50] 世川 修. Actin and myosin deposition around bile canaliculi : a predictor of clinical outcome in biliary atresia , 1993 .
[51] P. Seglen. Preparation of isolated rat liver cells. , 1976, Methods in cell biology.
[52] L. Orci,et al. A study on the permeability barriers between Disse's space and the bile canaliculus. , 1969, Journal of ultrastructure research.