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Microtubule dynamics and Rac-1 signaling independently regulate barrier function in lung epithelial cells

  • Magdalena J. Lorenowicz
  • , Mar Fernandez-Borja
  • , Anne-Marieke D. van Stalborch
  • , Marian A. J. A. van Sterkenburg
  • , Pieter S. Hiemstra
  • , Peter L. Hordijk
  • University of Amsterdam
  • Netherlands Institute for Developmental Biology
  • Leiden University

Research output: Contribution to journalArticleAcademicpeer-review

Abstract

Cadherin-mediated cell-cell adhesion controls the morphology and function of epithelial cells and is a critical component of the pathology of chronic inflammatory disorders. Dynamic interactions between cadherins and the actin cytoskeleton are required for stable cell-cell contact. Besides actin, microtubules also target intercellular, cadherin-based junctions and contribute to their formation and stability. Here, we studied the role of microtubules in conjunction with Rho-like GTPases in the regulation of lung epithelial barrier function using real-time monitoring of transepithelial electrical resistance. Unexpectedly, we found that disruption of microtubules promotes epithelial cell-cell adhesion. This increase in epithelial barrier function is accompanied by the accumulation of beta-catenin at cell-cell junctions, as detected by immunofluorescence. Moreover, we found that the increase in cell-cell contact, induced by microtubule depolymerization, requires signaling through a RhoA/Rho kinase pathway. The Rac-1 GTPase counteracts this pathway, because inhibition of Rac-1 signaling rapidly promotes epithelial barrier function, in a microtubule- and RhoA-independent fashion. Together, our data suggest that microtubule-RhoA-mediated signaling and Rac-1 control lung epithelial integrity through counteracting independent pathways
Original languageEnglish
Pages (from-to)L1321-L1331
JournalAmerican journal of physiology. Lung cellular and molecular physiology
Volume293
Issue number5
DOIs
Publication statusPublished - Nov 2007

Keywords

  • Cell-cell contact
  • RhoA
  • Transepithelial resistance

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