Literature DB >> 2100303

Magnesium transport in ferret red cells.

P W Flatman1, L M Smith.   

Abstract

1. Mg2+ efflux from ferret red cells into a nominally Mg2(+)-free medium is 41 +/- 2 mumol (l cell)-1 h-1. The properties of Mg2+ transport can be measured in these cells without the need for Mg2+ loading. 2. Amiloride, quinidine, imipramine and external divalent cations partially inhibit Mg2+ efflux. Maximal inhibition by these agents is about 60-70% suggesting that at least two Mg2+ transport pathways exist. 3. As external Na+ is replaced by choline or N-methyl-D-glucamine Mg2+ efflux is first stimulated, reaching a peak when external [Na+] ([Na+]o) is about 10 mM, and then inhibited. Mg2+ transport reverses direction so net Mg2+ uptake occurs when [Na+]o is reduced below 1 mM. 4. Mg2+ efflux is stimulated when 0.1 mM-EDTA is added to the medium only when [Na+]o is low. 5. Reduction of cell ATP content to about 20 mumol (l cell)-1 by treating cells with 2-deoxyglucose stimulates Mg2+ efflux measured over the 2 h period following depletion. 6. Substantial Mg2+ influx can be observed in ferret red cells when they are incubated in media containing 10 mM-Mg2+. Influx is stimulated by reducing [Na+]o to 10 mM. Further reduction of [Na+]o to below 1 mM reduces Mg2+ uptake. A component of uptake is inhibited by external Co2+. 7. Na(+)-Mg2+ antiport may account for a substantial component of Mg2+ transport in ferret red cells. The direction of transport can be reversed by sufficiently lowering [Na+]o or by increasing external [Mg2+]. Analysis of the conditions at which transport reverses direction suggests transport with a stoichiometry of 1 Na+:1 Mg2+. Antiport with this stoichiometry would also explain maintenance of the physiological level of intracellular ionized Mg2+ in these cells.

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Year:  1990        PMID: 2100303      PMCID: PMC1181762          DOI: 10.1113/jphysiol.1990.sp018318

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


  21 in total

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Authors:  P S Aronson
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Review 2.  The control of red cell magnesium.

Authors:  P W Flatman
Journal:  Magnes Res       Date:  1988-07       Impact factor: 1.115

3.  Temperature-induced transitions of function and structure in sarcoplasmic reticulum membranes.

Authors:  G Inesi; M Millman; S Eletr
Journal:  J Mol Biol       Date:  1973-12-25       Impact factor: 5.469

4.  Demonstration of a Na+: Mg2+ exchange in human red cells by its sensitivity to tricyclic antidepressant drugs.

Authors:  J C Féray; R Garay
Journal:  Naunyn Schmiedebergs Arch Pharmacol       Date:  1988-09       Impact factor: 3.000

5.  ATP requirement of the sodium-dependent magnesium extrusion from human red blood cells.

Authors:  E J Frenkel; M Graziani; H J Schatzmann
Journal:  J Physiol       Date:  1989-07       Impact factor: 5.182

6.  The ferret, Mustela putorius furo, as a new species in toxicology.

Authors:  P C Thornton; P A Wright; P J Sacra; T E Goodier
Journal:  Lab Anim       Date:  1979-04       Impact factor: 2.471

7.  Mobility and transport of magnesium in squid giant axons.

Authors:  P F Baker; A C Crawford
Journal:  J Physiol       Date:  1972-12       Impact factor: 5.182

8.  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

9.  An ATP-dependent Na+/Mg2+ countertransport is the only mechanism for Mg extrusion in squid axons.

Authors:  R DiPolo; L Beaugé
Journal:  Biochim Biophys Acta       Date:  1988-12-22

10.  Magnesium efflux in dialyzed squid axons.

Authors:  L J Mullins; F J Brinley; S G Spangler; R F Abercrombie
Journal:  J Gen Physiol       Date:  1977-04       Impact factor: 4.086

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  18 in total

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2.  Loading rat heart myocytes with Mg2+ using low-[Na+] solutions.

Authors:  Hasan A Almulla; Peter G Bush; Michael G Steele; David Ellis; Peter W Flatman
Journal:  J Physiol       Date:  2006-06-22       Impact factor: 5.182

3.  Modulation of Na+/Mg²+ exchanger stoichiometry ratio by Cl⁻ ions in basolateral rat liver plasma membrane vesicles.

Authors:  C Cefaratti; A Romani
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4.  Sodium-dependent recovery of ionised magnesium concentration following magnesium load in rat heart myocytes.

Authors:  Hasan A Almulla; Peter G Bush; Michael G Steele; Peter W Flatman; David Ellis
Journal:  Pflugers Arch       Date:  2005-08-16       Impact factor: 3.657

Review 5.  Cellular magnesium homeostasis.

Authors:  Andrea M P Romani
Journal:  Arch Biochem Biophys       Date:  2011-05-27       Impact factor: 4.013

6.  KB-R7943 inhibits Na+-dependent Mg2+ efflux in rat ventricular myocytes.

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7.  The role of magnesium in regulating CCK-8-evoked secretory responses in the exocrine rat pancreas.

Authors:  D M Wisdom; G M Salido; L M Baldwin; J Singh
Journal:  Mol Cell Biochem       Date:  1996-01-26       Impact factor: 3.396

8.  Sodium transport through the amiloride-sensitive Na-Mg pathway of hamster red cells.

Authors:  W Xu; J S Willis
Journal:  J Membr Biol       Date:  1994-09       Impact factor: 1.843

9.  Mechanisms for monovalent cation-dependent depletion of intracellular Mg2+:Na(+)-independent Mg2+ pathways in guinea-pig smooth muscle.

Authors:  Shinsuke Nakayama; Hideki Nomura; Lorraine M Smith; Joseph F Clark; Tadayuki Uetani; Tatsuaki Matsubara
Journal:  J Physiol       Date:  2003-07-04       Impact factor: 5.182

10.  Magnesium transport in magnesium-loaded ferret red blood cells.

Authors:  P W Flatman; L M Smith
Journal:  Pflugers Arch       Date:  1996-10       Impact factor: 3.657

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