Literature DB >> 6351634

Water permeability and pathways in the proximal tubule.

C A Berry.   

Abstract

The route of water transport in the proximal tubule could be either transjunctional or transcellular. A transjunctional route is supported by data showing high osmotic-to-diffusive water permeability ratios, the possible correlation of junctional leakiness to ions and nonelectrolytes with water permeability, and solvent drag of nonelectrolytes and ions. These data, however, are not convincing. A transcellular route of water transport is supported by data showing that the osmotic water permeability (Pf) for apical and/or basolateral cell membranes is sufficiently high to account for the transepithelial Pf, making a tentative conclusion for a transcellular route of water transport possible. In addition, measurements of Pf have yielded insights into the mechanism of solute-solvent coupling. Pf has been reported to be mostly between 0.1 and 0.3 cm/s. In the rabbit proximal straight and the Necturus proximal convoluted tubule, in which water transport rates are low, this range of Pf will account for volume absorption with only small osmotic gradients (less than 6 mosmol). Higher osmotic gradients are required in the rat and possibly the rabbit proximal convoluted tubule, where water transport rates are higher. Solute-solvent coupling in all species is probably due to both luminal hypotonicity and lateral intercellular space hypertonicity. These two processes are directly linked. Mass balance requires that generation of luminal hypotonicity also generates a hypertonic absorbate and, thus, some degree of lateral intercellular space hypertonicity. It is likely that, in the rabbit at least, effective osmotic pressure gradients due to differences in solute reflection coefficients play little role in solute-solvent coupling.

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Year:  1983        PMID: 6351634     DOI: 10.1152/ajprenal.1983.245.3.F279

Source DB:  PubMed          Journal:  Am J Physiol        ISSN: 0002-9513


  33 in total

1.  Neonatal and adult rabbit renal brush border membrane vesicle solute reflection coefficients.

Authors:  R Quigley; M Flynn; M Baum
Journal:  Biol Neonate       Date:  1999-08

Review 2.  Na+ recirculation and isosmotic transport.

Authors:  E H Larsen; N Møbjerg
Journal:  J Membr Biol       Date:  2007-01-06       Impact factor: 1.843

Review 3.  Proximal nephron.

Authors:  Jia L Zhuo; Xiao C Li
Journal:  Compr Physiol       Date:  2013-07       Impact factor: 9.090

4.  Evidence for a transcellular cisternal route across the caecal epithelium of an insect.

Authors:  V Flores; N J Lane
Journal:  Cell Tissue Res       Date:  1990-08       Impact factor: 5.249

5.  Osmotic water permeabilities of brush border and basolateral membrane vesicles from rat renal cortex and small intestine.

Authors:  M P van Heeswijk; C H van Os
Journal:  J Membr Biol       Date:  1986       Impact factor: 1.843

6.  Disparate mechanisms for hypoxic cell injury in different nephron segments. Studies in the isolated perfused rat kidney.

Authors:  M Brezis; P Shanley; P Silva; K Spokes; S Lear; F H Epstein; S Rosen
Journal:  J Clin Invest       Date:  1985-11       Impact factor: 14.808

7.  Fluid reabsorption in proximal convoluted tubules of mice with gene deletions of claudin-2 and/or aquaporin1.

Authors:  Jurgen Schnermann; Yuning Huang; Diane Mizel
Journal:  Am J Physiol Renal Physiol       Date:  2013-09-18

8.  Evidence for water channels in renal proximal tubule cell membranes.

Authors:  M M Meyer; A S Verkman
Journal:  J Membr Biol       Date:  1987       Impact factor: 1.843

9.  Proton nuclear magnetic resonance measurement of diffusional water permeability in suspended renal proximal tubules.

Authors:  A S Verkman; K R Wong
Journal:  Biophys J       Date:  1987-05       Impact factor: 4.033

10.  Renal bicarbonate reabsorption in the rat. IV. Bicarbonate transport mechanisms in the early and late distal tubule.

Authors:  T Wang; G Malnic; G Giebisch; Y L Chan
Journal:  J Clin Invest       Date:  1993-06       Impact factor: 14.808

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