2009Encyclopedia of Life SciencesRequires access

Water Transport by Epithelia

Luis Reuss

Open publisher page 2 citations

Abstract

Abstract Water transport in epithelia can occur down an established concentration gradient, in which case it is indisputably osmotic. In other epithelia, water transport occurs in the absence of or even against differences in the osmolalities of the adjacent solutions. In the latter case, water flow is in the same direction as the net solute flux and in near‐isosmotic proportions. The pathways and mechanisms of water transport in this class of epithelia remain controversial, but the prevailing views are that water flow is largely transcellular, via both water pores ( aquaporins , AQP ) and the phospholipid bilayer, with little contribution of other membrane proteins. In addition, solute–solvent flux coupling is not a molecular, but a thermodynamic phenomenon, i.e. water transport is driven by small differences in osmolality between epithelial fluid compartments created by solute transport. Paracellular water flow is likely to be small relative to transcellular water flow.

About this research paper

What this paper is about

Abstract Water transport in epithelia can occur down an established concentration gradient, in which case it is indisputably osmotic. In other epithelia, water transport occurs in the absence of or even against differences in the osmolalities of the adjacent solutions. In the latter case, water flow is in the same direction as the net solute flux and in near‐isosmotic proportions. The pathways and mechanisms of water transport in this class of epithelia remain controversial, but the prevailing views are that water flow is largely transcellular, via both water pores ( aquaporins , AQP ) and the phospholipid bilayer, with little contribution of other membrane proteins. In addition, solute–solvent flux coupling is not a molecular, but a thermodynamic phenomenon, i.e. water transport is driven by small differences in osmolality between epithelial fluid compartments created by solute transport. Paracellular water flow is likely to be small relative to transcellular water flow.

Why it matters

OpenAlex reports 2 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

Abstract Water transport in epithelia can occur down an established concentration gradient, in which case it is indisputably osmotic. In other epithelia, water transport occurs in the absence of or even against differences in the osmolalities of the adjacent solutions. In the latter case, water flow is in the same direction as the net solute flux and in near‐isosmotic proportions. The pathways and mechanisms of water transport in this class of epithelia remain controversial, but the prevailing views are that water flow is largely transcellular, via both water pores ( aquaporins , AQP ) and the phospholipid bilayer, with little contribution of other membrane proteins. In addition, solute–solvent flux coupling is not a molecular, but a thermodynamic phenomenon, i.e. water transport is driven by small differences in osmolality between epithelial fluid compartments created by solute transport. Paracellular water flow is likely to be small relative to transcellular water flow.

Key concepts: Transcellular, Water transport, Paracellular transport, Aquaporin, Water flow, Biophysics, Chemistry, Flux (metallurgy)

Related papers

Back to paper searchBrowse research topicsOriginal source
Water Transport by Epithelia — Research Paper | ScholarLens