Literature DB >> 16648941

Epithelial fluid transport: protruding macromolecules and space charges can bring about electro-osmotic coupling at the tight junctions.

A Rubashkin1, P Iserovich, J A Hernández, J Fischbarg.   

Abstract

The purpose of the present work is to investigate whether the idea of epithelial fluid transport based on electro-osmotic coupling at the level of the leaky tight junction (TJ) can be further supported by a plausible theoretical model. We develop a model for fluid transport across epithelial layers based on electro-osmotic coupling at leaky tight junctions (TJ) possessing protruding macromolecules and fixed electrical charges. The model embodies systems of electro-hydrodynamic equations for the intercellular pathway, namely the Brinkman and the Poisson-Boltzmann differential equations applied to the TJ. We obtain analytical solutions for a system of these two equations, and are able to derive expressions for the fluid velocity profile and the electrostatic potential. We illustrate the model by employing geometrical parameters and experimental data from the corneal endothelium, for which we have previously reported evidence for a central role for electro-osmosis in translayer fluid transport. Our results suggest that electro-osmotic coupling at the TJ can account for fluid transport by the corneal endothelium. We conclude that electro-osmotic coupling at the tight junctions could represent one of the basic mechanisms driving fluid transport across some leaky epithelia, a process that remains unexplained.

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Year:  2006        PMID: 16648941     DOI: 10.1007/s00232-005-0831-y

Source DB:  PubMed          Journal:  J Membr Biol        ISSN: 0022-2631            Impact factor:   1.843


  30 in total

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  11 in total

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9.  Modulation of tight junction properties relevant to fluid transport across rabbit corneal endothelium.

Authors:  Li Ma; Kunyan Kuang; Randall W Smith; David Rittenband; Pavel Iserovich; F P J Diecke; Jorge Fischbarg
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Review 10.  The Role of the Tight Junction in Paracellular Fluid Transport across Corneal Endothelium. Electro-osmosis as a Driving Force.

Authors:  J Fischbarg; F P J Diecke; P Iserovich; A Rubashkin
Journal:  J Membr Biol       Date:  2006-07-25       Impact factor: 1.843

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