Access the full text.
Sign up today, get DeepDyve free for 14 days.
J. Madara (1990)
Maintenance of the macromolecular barrier at cell extrusion sites in intestinal epithelium: Physiological rearrangement of tight junctionsThe Journal of Membrane Biology, 116
V. Tang, D. Goodenough (2003)
Paracellular ion channel at the tight junction.Biophysical journal, 84 3
C. Coyne, T. Gambling, R. Boucher, J. Carson, L. Johnson (2003)
Role of claudin interactions in airway tight junctional permeability.American journal of physiology. Lung cellular and molecular physiology, 285 5
Wing Li, Catherine Huey, A. Yu (2004)
Expression of claudin-7 and -8 along the mouse nephron.American journal of physiology. Renal physiology, 286 6
D. Powell (1981)
Barrier function of epithelia.The American journal of physiology, 241 4
T. Tsukamoto, S. Nigam (1999)
Role of tyrosine phosphorylation in the reassembly of occludin and other tight junction proteins.American journal of physiology. Renal physiology, 276 5
A. Ridley, A. Hall (1994)
Signal transduction pathways regulating Rho‐mediated stress fibre formation: requirement for a tyrosine kinase.The EMBO Journal, 13
O. Colegio, C. Itallie, Heather McCrea, C. Rahner, James Anderson (2002)
Claudins create charge-selective channels in the paracellular pathway between epithelial cells.American journal of physiology. Cell physiology, 283 1
K. Matter, M. Balda (2003)
Signalling to and from tight junctionsNature Reviews Molecular Cell Biology, 4
A. Sakakibara, M. Furuse, M. Saitou, Y. Ando‐Akatsuka, S. Tsukita (1997)
Possible Involvement of Phosphorylation of Occludin in Tight Junction FormationThe Journal of Cell Biology, 137
C. Rahner, Laura Mitic, James Anderson (2001)
Heterogeneity in expression and subcellular localization of claudins 2, 3, 4, and 5 in the rat liver, pancreas, and gut.Gastroenterology, 120 2
M. Furuse, Kohji Fujita, T. Hiiragi, K. Fujimoto, S. Tsukita (1998)
Claudin-1 and -2: Novel Integral Membrane Proteins Localizing at Tight Junctions with No Sequence Similarity to OccludinThe Journal of Cell Biology, 141
C. Itallie, C. Rahner, James Anderson (2001)
Regulated expression of claudin-4 decreases paracellular conductance through a selective decrease in sodium permeability.The Journal of clinical investigation, 107 10
James Anderson, C. Itallie, A. Fanning (2004)
Setting up a selective barrier at the apical junction complex.Current opinion in cell biology, 16 2
M. Furuse, Kyoko Furuse, H. Sasaki, S. Tsukita (2001)
Conversion of Zonulae Occludentes from Tight to Leaky Strand Type by Introducing Claudin-2 into Madin-Darby Canine Kidney I CellsThe Journal of Cell Biology, 153
S. Francis, Joan Kelly, J. McCormack, Rick Rogers, Jean Lai, Eveline Schneeberger, Robert Lynch, Robert Lynch (1999)
Rapid reduction of MDCK cell cholesterol by methyl-beta-cyclodextrin alters steady state transepithelial electrical resistance.European journal of cell biology, 78 7
A. Nusrat, M. Giry, J. Turner, S. Colgan, C. Parkos, Denice Carnes, E. Lemichez, P. Boquet, J. Madara (1995)
Rho protein regulates tight junctions and perijunctional actin organization in polarized epithelia.Proceedings of the National Academy of Sciences of the United States of America, 92 23
O. Colegio, C. Itallie, C. Rahner, James Anderson (2003)
Claudin extracellular domains determine paracellular charge selectivity and resistance but not tight junction fibril architecture.American journal of physiology. Cell physiology, 284 6
X. Ren, M. Schwartz (2000)
Determination of GTP loading on Rho.Methods in enzymology, 325
M. Farquhar, G. Palade (1963)
JUNCTIONAL COMPLEXES IN VARIOUS EPITHELIAThe Journal of Cell Biology, 17
S. Tsukita, M. Furuse, M. Itoh (2001)
Multifunctional strands in tight junctionsNature Reviews Molecular Cell Biology, 2
R. Hynes, D. Wagner (1997)
Genetic manipulation of vascular adhesion molecules in mice.The Journal of clinical investigation, 100 11 Suppl
T. Brummelkamp, R. Bernards, R. Agami (2002)
A System for Stable Expression of Short Interfering RNAs in Mammalian CellsScience, 296
M. Furuse, T. Hirase, M. Itoh, A. Nagafuchi, S. Yonemura, S. Tsukita (1993)
Occludin: a novel integral membrane protein localizing at tight junctionsThe Journal of Cell Biology, 123
H. Towbin, T. Staehelin, J. Gordon (1979)
Electrophoretic transfer of proteins from polyacrylamide gels to nitrocellulose sheets: procedure and some applications.Proceedings of the National Academy of Sciences of the United States of America, 76 9
M. Balda, J. Whitney, Catalina Flores, Sirenia Gonz~ilez, M. Cereijido, K. Matter (1996)
Functional dissociation of paracellular permeability and transepithelial electrical resistance and disruption of the apical- basolateral intramembrane diffusion barrier by expression of a mutant tight junction membrane proteinThe Journal of Cell Biology, 134
Danxi Li, R. Mrsny (2000)
Oncogenic Raf-1 Disrupts Epithelial Tight Junctions via Downregulation of OccludinThe Journal of Cell Biology, 148
M. Saitou, K. Fujimoto, Y. Doi, M. Itoh, T. Fujimoto, M. Furuse, H. Takano, T. Noda, S. Tsukita (1998)
Occludin-deficient Embryonic Stem Cells Can Differentiate into Polarized Epithelial Cells Bearing Tight JunctionsThe Journal of Cell Biology, 141
K. McCarthy, S. Francis, J. McCormack, J. Lai, R. Rogers, I. Skare, R. Lynch, E. Schneeberger (2000)
Inducible expression of claudin-1-myc but not occludin-VSV-G results in aberrant tight junction strand formation in MDCK cells.Journal of cell science, 113 Pt 19
Yan-hua Chen, Q. Lu, D. Goodenough, B. Jeansonne (2002)
Nonreceptor tyrosine kinase c-Yes interacts with occludin during tight junction formation in canine kidney epithelial cells.Molecular biology of the cell, 13 4
M. Saitou, M. Furuse, H. Sasaki, J. Schulzke, M. Fromm, H. Takano, T. Noda, S. Tsukita (2000)
Complex phenotype of mice lacking occludin, a component of tight junction strands.Molecular biology of the cell, 11 12
Laura Mitic, C. Itallie (2001)
Occludin and Claudins: Transmembrane Proteins of the Tight Junction
E. Schneeberger, R. Lynch (2004)
The tight junction: a multifunctional complex.American journal of physiology. Cell physiology, 286 6
A. Ridley, A. Hall (1992)
The small GTP-binding protein rho regulates the assembly of focal adhesions and actin stress fibers in response to growth factorsCell, 70
K. Janakidevi, C. Murray, C. Sell, P. Held (1988)
Fluorometric analysis of DNA in cell cultures.Analytical biochemistry, 172 1
A. Yu, Alissa Enck, W. Lencer, E. Schneeberger (2003)
Claudin-8 Expression in Madin-Darby Canine Kidney Cells Augments the Paracellular Barrier to Cation Permeation*The Journal of Biological Chemistry, 278
Printed in U.S.A. Copyright © 2001 by The Endocrine Society Claudin-1 Is Not Restricted to Tight Junctions in the Rat Epididymis*
J. Rosenblatt, M. Raff, L. Cramer (2001)
An epithelial cell destined for apoptosis signals its neighbors to extrude it by an actin- and myosin-dependent mechanismCurrent Biology, 11
A. Birukova, Ksenya Smurova, K. Birukov, K. Kaibuchi, Joe Garcia, A. Verin (2004)
Role of Rho GTPases in thrombin-induced lung vascular endothelial cells barrier dysfunction.Microvascular research, 67 1
D. Boivin, D. Bilodeau, R. Béliveau (1996)
Regulation of cytoskeletal functions by Rho small GTP-binding proteins in normal and cancer cells.Canadian journal of physiology and pharmacology, 74 7
H. Sasaki, C. Matsui, Kyoko Furuse, Y. Mimori-Kiyosue, M. Furuse, S. Tsukita (2003)
Dynamic behavior of paired claudin strands within apposing plasma membranesProceedings of the National Academy of Sciences of the United States of America, 100
Viyada Nunbhakdi‐Craig, T. Machleidt, E. Ogris, D. Bellotto, C. White, E. Sontag (2002)
Protein phosphatase 2A associates with and regulates atypical PKC and the epithelial tight junction complexThe Journal of Cell Biology, 158
T. Hirase, S. Kawashima, E. Wong, T. Ueyama, Y. Rikitake, S. Tsukita, M. Yokoyama, J. Staddon (2001)
Regulation of Tight Junction Permeability and Occludin Phosphorylation by RhoA-p160ROCK-dependent and -independent Mechanisms*The Journal of Biological Chemistry, 276
U. Laemmli (1970)
Cleavage of Structural Proteins during the Assembly of the Head of Bacteriophage T4Nature, 227
Karin McCarthy, I. Skare, Michael Stankewich, M. Furuse, S. Tsukita, R. Rogers, R. Lynch, E. Schneeberger (1996)
Occludin is a functional component of the tight junction.Journal of cell science, 109 ( Pt 9)
Gaëlle Benais-Pont, A. Punn, C. Flores-Maldonado, J. Eckert, G. Raposo, T. Fleming, M. Cereijido, M. Balda, K. Matter (2003)
Identification of a tight junction–associated guanine nucleotide exchange factor that activates Rho and regulates paracellular permeabilityThe Journal of Cell Biology, 160
X. Ren, W. Kiosses, Martin Schwartz (1999)
Regulation of the small GTP‐binding protein Rho by cell adhesion and the cytoskeletonThe EMBO Journal, 18
The function of occludin (Occ) in the tight junction is undefined. To gain insight into its role in epithelial cell biology, occludin levels in Madin-Darby canine kidney II cells were suppressed by stably expressing short interfering RNA. Suppression of occludin was associated with a decrease in claudins-1 and -7 and an increase in claudins-3 and -4. Claudin-2 levels were unaffected. The tight junction “fence” function was not impaired in suppressed Occ (Occ−) clones, as determined by BODIPY-sphingomyelin diffusion in the membrane. The most striking changes were those related to control of the cytoskeleton and the “gate” function of tight junctions. A reduced ability of Occ− clones to extrude apoptotic cells from the monolayers suggested that neighbors of apoptotic cells either failed to sense their presence or were unable to coordinate cytoskeletal activity necessary for their extrusion. To further test the extent to which actin cytoskeletal activity depends on the presence of occludin, Occ− and Occ+ monolayers were depleted of cholesterol. Previous studies showed that cholesterol depletion is associated with reorganization of the actin cytoskeleton and a fall in transepithelial electrical resistance. In contrast to control Occ (Occ+) cells, transepithelial electrical resistance did not fall significantly in cholesterol-depleted Occ− monolayers and they failed to generate Rho-GTP, one of the signaling molecules involved in regulating the actin cytoskeleton. While steady-state transepithelial electrical resistance was similar in all clones, tight junction permeability to mono- and divalent inorganic cations was increased in Occ− monolayers. In addition, there was a disproportionately large increase in permeability to monovalent organic cations, up to 6.96 Å in diameter. Chloride permeability was unaffected and there was little change in mannitol flux. The data suggest that occludin transduces external (apoptotic cells) and intramembrane (rapid cholesterol depletion) signals via a Rho signaling pathway that, in turn, elicits reorganization of the actin cytoskeleton. Impaired signaling in the absence of occludin may also alter the dynamic behavior of tight junction strands, as reflected by an increase in permeability to large organic cations; the permeability of ion pores formed of claudins, however, is less affected.
AJP Cell Physiology – The American Physiological Society
Published: Jun 29, 2005
Read and print from thousands of top scholarly journals.
Already have an account? Log in
Bookmark this article. You can see your Bookmarks on your DeepDyve Library.
To save an article, log in first, or sign up for a DeepDyve account if you don’t already have one.
Copy and paste the desired citation format or use the link below to download a file formatted for EndNote
Access the full text.
Sign up today, get DeepDyve free for 14 days.
All DeepDyve websites use cookies to improve your online experience. They were placed on your computer when you launched this website. You can change your cookie settings through your browser.