Literature DB >> 6620190

Sodium and potassium transport in ferret red cells.

P W Flatman.   

Abstract

Potassium movements into ferret red cells were measured with the tracer 86Rb. Equilibration of 86Rb between medium and cells could be resolved into two components. 70-90% occurred rapidly with a rate constant of between 3.5-5.5 h-1. The remaining 10-30% occurred slowly. The slow movement was equivalent to a potassium influx of about 1.2-2.76 mmol l-1 cell h-1. Potassium influx was inhibited by 80-90% by 0.1 mM-bumetanide (a high-ceiling, loop diuretic). This suggests that the sodium-potassium co-transport system has a high capacity for carrying potassium (estimated at about 17-35 mmol l-1 cell h-1). After bumetanide (0.1 mM) remaining potassium movements (approximately 0.5 mmol l-1 cell h-1) are at a similar level to that found in red cells from other animals. The sodium pump makes a very small contribution to potassium flux into ferret red cells. Much of this pump activity may be attributed to reticulocytes present in cell samples. Sodium movements across the red cell membrane were measured with 22Na. Sodium equilibrated more slowly than potassium. 60-70% of the sodium influx was inhibited by 0.1 mM-bumetanide, indicating that most sodium influx in ferret red cells is also through the co-transport system. The co-transport system can transport up to 49 mmol sodium l-1 cell h-1 and is half maximally activated by 0.38 mM-potassium in the external medium. In the presence of bumetanide, sodium influx (about 18 mmol l-1 cell h-1) is similar to that of other carnivore red cells. This is about five times greater than that of red cells from non-carnivores. The possibility that there are two populations of ferret red cells with different potassium transport characteristics is discussed.

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Year:  1983        PMID: 6620190      PMCID: PMC1195349          DOI: 10.1113/jphysiol.1983.sp014823

Source DB:  PubMed          Journal:  J Physiol        ISSN: 0022-3751            Impact factor:   5.182


  19 in total

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Authors:  M Armando-Hardy; J C Ellory; H G Ferreira; S Fleminger; V L Lew
Journal:  J Physiol       Date:  1975-08       Impact factor: 5.182

2.  Cation transport and structure of the red-cell plasma membrane.

Authors:  J F HOFFMAN
Journal:  Circulation       Date:  1962-11       Impact factor: 29.690

3.  Sodium and potassium movements in human red cells.

Authors:  I M GLYNN
Journal:  J Physiol       Date:  1956-11-28       Impact factor: 5.182

4.  Sodium and calcium transport in cat red cells.

Authors:  R I Sha'afi; P Naccache
Journal:  J Cell Physiol       Date:  1975-06       Impact factor: 6.384

5.  Red blood cell calcium and magnesium: effects upon sodium and potassium transport and cellular morphology.

Authors:  M J Dunn
Journal:  Biochim Biophys Acta       Date:  1974-05-30

6.  The human erythrocyte Cl-dependent Na-K cotransport system as a possible model for studying the action of loop diuretics.

Authors:  J C Ellory; G W Stewart
Journal:  Br J Pharmacol       Date:  1982-01       Impact factor: 8.739

7.  Interactions between temperature and tonicity on cation transport in dog red cells.

Authors:  B C Elford
Journal:  J Physiol       Date:  1975-03       Impact factor: 5.182

8.  Inhibition of the Na+/K+ cotransport system by cyclic AMP and intracellular Ca2+ in human red cells.

Authors:  R P Garay; J Ciccone
Journal:  Biochim Biophys Acta       Date:  1982-06-28

9.  Cation movements in the high sodium erythrocyte of the cat.

Authors:  R I Sha'afi; W R Lieb
Journal:  J Gen Physiol       Date:  1967-07       Impact factor: 4.086

10.  Cation transport in dog red cells.

Authors:  A Romualdez; R I Sha'afi; Y Lange; A K Solomon
Journal:  J Gen Physiol       Date:  1972-07       Impact factor: 4.086

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  10 in total

1.  Activation of ferret erythrocyte Na+-K+-2Cl- cotransport by deoxygenation.

Authors:  Peter W Flatman
Journal:  J Physiol       Date:  2004-12-23       Impact factor: 5.182

2.  Influence of loop diuretics and anions on passive potassium influx into human red cells.

Authors:  A R Chipperfield
Journal:  J Physiol       Date:  1985-12       Impact factor: 5.182

3.  A mathematical model of the volume, pH, and ion content regulation in reticulocytes. Application to the pathophysiology of sickle cell dehydration.

Authors:  V L Lew; C J Freeman; O E Ortiz; R M Bookchin
Journal:  J Clin Invest       Date:  1991-01       Impact factor: 14.808

4.  Magnesium transport in ferret red cells.

Authors:  P W Flatman; L M Smith
Journal:  J Physiol       Date:  1990-12       Impact factor: 5.182

5.  Volume, pH, and ion-content regulation in human red cells: analysis of transient behavior with an integrated model.

Authors:  V L Lew; R M Bookchin
Journal:  J Membr Biol       Date:  1986       Impact factor: 1.843

6.  Regulation of Na+-K+-2Cl- cotransport by protein phosphorylation in ferret erythrocytes.

Authors:  P W Flatman; J Creanor
Journal:  J Physiol       Date:  1999-06-15       Impact factor: 5.182

7.  Measurement and stoichiometry of bumetanide-sensitive (2Na:1K:3Cl) cotransport in ferret red cells.

Authors:  A C Hall; J C Ellory
Journal:  J Membr Biol       Date:  1985       Impact factor: 1.843

8.  The effects of calcium on potassium transport in ferret red cells.

Authors:  P W Flatman
Journal:  J Physiol       Date:  1987-05       Impact factor: 5.182

9.  The effects of magnesium on potassium transport in ferret red cells.

Authors:  P W Flatman
Journal:  J Physiol       Date:  1988-03       Impact factor: 5.182

10.  The effects of metabolism on Na(+)-K(+)-Cl- co-transport in ferret red cells.

Authors:  P W Flatman
Journal:  J Physiol       Date:  1991-06       Impact factor: 5.182

  10 in total

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