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PMID: 856270 Published · ppublish English Journal Article

Polyol permeability of the human red cell. Interpretation of glucose transport in terms of a pore.

Biochimica et biophysica acta ·Vol. 466 ·No. 1 ·1977-04-01 ·Pages 68-83

Bowman RJ, Lwitt DG

Abstract

The kinetic equations describing transport through a pore that has a binding site and that undergoes a conformational change are identical to those of a carrier model. Therefore, in order to distinguish between the two models it is necessary to test specific predictions based on detailed mechanistic models. A pore model is described in which the substrate (glucose) is able to reach the single binding site only from the outside when the pore is in conformation I and only from the inside when it is conformation II. On the basis of this model it is predicted that solutes which do not have any specific affinity for the binding site should still have a finite permeability via the glucose transport system if they are the same size or smaller than glucose. This permeability should be proportional to the volume of distribution of the solute in the pore and should therefore decrease with increasing molecular size. A geometric pore volume can be estimated from this size dependence. In order to test these predictions, the glucose-dependent permeability of a series of 4-carbon (erythritol), 5-carbon (D-arabitol, L-arabitol and xylitol) and 6-carbon (D-mannitol, D-sorbitol and myo-inositol) polyols was measured. The permeability of all the polyols is decreased by the presence of glucose and the KI of this "inhibitable" component is similar to that D-sorbose, suggesting that this component is associated with the glucose transport system. Since these observations could be explained entirely in terms of a specific affinity for a carrier binding site, they do not exclude a carrier mechanism. However, as predicted for the pore model, this "inhibitable" permeability decreased with increasing molecular size and the calculated geometric pore volume was of a size that would be expected for a cell membrane pore.

MeSH Terms
Binding, Competitive Biological Transport Biological Transport, Active Blood Glucose/metabolism Cell Membrane Permeability Erythritol/pharmacology Erythrocyte Membrane/metabolism Erythrocytes/metabolism Humans Inositol/blood Kinetics Mannitol/blood,pharmacology Mathematics Models, Biological Sorbitol/blood Sugar Alcohols/blood,pharmacology
Chemicals
Blood Glucose Sugar Alcohols Mannitol Inositol Sorbitol Erythritol
Authors & Affiliations
2 authors, click to expand affiliations / ORCID
Bowman R J
Lwitt D G
Article Info
Journal
Biochimica et biophysica acta
Abbr.
Biochim Biophys Acta
ISSN
0006-3002
Published
1977-04-01
Pages
68-83
Language
English
Region
Netherlands
NLM ID
0217513
Subset
IM
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