Literature DB >> 3707948

The kinetics of glucose transport in human red blood cells.

A G Lowe, A R Walmsley.   

Abstract

A quenched-flow apparatus and a newly developed automated syringe system have been used to measure initial rates of D-[14C]glucose transport into human red blood cells at temperatures ranging from 0 degrees to 53 degrees C. The Haldane relationship is found to be obeyed satisfactorily at both 0 and 20 degrees C, but Arrhenius plots of maximum D-[14C]glucose transport rates are non-linear under conditions of both equilibrium exchange and zero trans influx. Fitting of the data by non-linear regression to the conventional model for glucose transport gives values at 0 degrees C of 0.726 +/- 0.0498 s-1 and 12.1 +/- 0.98 s-1 for the rate constants governing outward and inward movements of the unloaded carrier molecule and 90.3 +/- 3.47 s-1 and 1113 +/- 494 s-1 for outward and inward movements of the carrier-glucose complex. Activation energies for these four rate constants are respectively 173 +/- 3.10, 127 +/- 4.78, 88.0 +/- 6.17 and 31.7 +/- 5.11 kJ X mol-1. These parameters indicate that at low temperatures the marked asymmetry of the transport mechanism arises mainly from the high proportion of inward-facing carriers and carrier-glucose complexes, and that there is a relatively small difference between the affinities of the carrier for glucose in the inward and outward-facing conformations. At high (physiological) temperatures the carrier is fairly evenly distributed between outward- and inward-facing conformations and the affinity for glucose is about 2.5-times greater outside than inside.

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Year:  1986        PMID: 3707948     DOI: 10.1016/0005-2736(86)90342-1

Source DB:  PubMed          Journal:  Biochim Biophys Acta        ISSN: 0006-3002


  52 in total

1.  Defective glucose transport across brain tissue barriers: a newly recognized neurological syndrome.

Authors:  J Klepper; D Wang; J Fischbarg; J C Vera; I T Jarjour; K R O'Driscoll; D C De Vivo
Journal:  Neurochem Res       Date:  1999-04       Impact factor: 3.996

2.  How does the chemical potential of the substrate drive a uniporter?

Authors:  Xuejun C Zhang; Lei Han
Journal:  Protein Sci       Date:  2016-02-11       Impact factor: 6.725

Review 3.  Glucose Transporters at the Blood-Brain Barrier: Function, Regulation and Gateways for Drug Delivery.

Authors:  Simon G Patching
Journal:  Mol Neurobiol       Date:  2016-01-22       Impact factor: 5.590

4.  A general channel model accounts for channel, carrier, counter-transport and co-transport kinetics.

Authors:  J A Hernández; J Fischbarg
Journal:  J Membr Biol       Date:  2005-08       Impact factor: 1.843

5.  Alternating carrier models of asymmetric glucose transport violate the energy conservation laws.

Authors:  Richard J Naftalin
Journal:  Biophys J       Date:  2008-07-25       Impact factor: 4.033

Review 6.  Supply and demand in cerebral energy metabolism: the role of nutrient transporters.

Authors:  Ian A Simpson; Anthony Carruthers; Susan J Vannucci
Journal:  J Cereb Blood Flow Metab       Date:  2007-06-20       Impact factor: 6.200

7.  Initial steps of alpha- and beta-D-glucose binding to intact red cell membrane.

Authors:  A Janoshazi; A K Solomon
Journal:  J Membr Biol       Date:  1993-03       Impact factor: 1.843

8.  Role of tryptophan-388 of GLUT1 glucose transporter in glucose-transport activity and photoaffinity-labelling with forskolin.

Authors:  H Katagiri; T Asano; H Ishihara; J L Lin; K Inukai; M F Shanahan; K Tsukuda; M Kikuchi; Y Yazaki; Y Oka
Journal:  Biochem J       Date:  1993-05-01       Impact factor: 3.857

9.  Substrate specificity and kinetic parameters of GLUT3 in rat cerebellar granule neurons.

Authors:  F Maher; T M Davies-Hill; I A Simpson
Journal:  Biochem J       Date:  1996-05-01       Impact factor: 3.857

10.  alpha- and beta-monosaccharide transport in human erythrocytes.

Authors:  Jeffry M Leitch; Anthony Carruthers
Journal:  Am J Physiol Cell Physiol       Date:  2008-11-05       Impact factor: 4.249

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