Abstract
The structural requirements for binding to the glucose/sorbose-transport system in the human erythrocyte were explored by measuring the inhibition constants, K(i), for specifically substituted analogues of d-glucose when l-sorbose was the penetrating sugar. Derivatives in which a hydroxyl group in the d-gluco configuration was inverted, or replaced by a hydrogen atom, at C-1, C-2, C-3, C-4 or C-6 of the d-glucose molecule, all bound to the carrier, confirming that no single hydroxyl group is essential for binding to the carrier. The binding and transport of 1-deoxy-d-glucose confirmed that the sugars bind in the pyranose form. The relative inhibition constants of d-glucose and its deoxy, epimeric and fluorinated analogues are consistent with the combination of beta-d-glucopyranose with the carrier by hydrogen bonds at C-1, C-3, probably C-4, and possibly C-6 of the sugar. Both polar and non-polar substituents at C-6 enhance the affinity of d-glucose derivatives relative to d-xylose, and d-galactose derivatives relative to l-arabinose, and it is suggested that the carrier region around C-6 of the sugar may contain both hydrophobic and polar binding groups. The spatial requirements at C-1, C-2, C-3, C-4 and C-6 were explored by comparing the relative binding of d-glucose and its halogeno and O-alkyl substituents. The carrier protein closely approaches the sugar except at C-3 in the d-gluco configuration, C-4 and C-6. d-Glucal was a good inhibitor, showing that a strict chair form is not essential for binding. 3-O-(2',3'-Epoxypropyl)-d-glucose, a potential substrate-directed alkylating agent, bound to the carrier, but did not inactivate it.
MeSH Terms
Binding Sites
Biological Transport
Blood Glucose/metabolism
Carbon Isotopes
Carrier Proteins/metabolism
Chromatography, Paper
Chromatography, Thin Layer
Erythrocytes/drug effects,metabolism
Ethers, Cyclic/metabolism
Glucose/pharmacology
Humans
Kinetics
Mathematics
Models, Biological
Molecular Conformation
Protein Conformation
Sorbose/blood,pharmacology
Structure-Activity Relationship
Time Factors
Tritium
Chemicals
Blood Glucose
Carbon Isotopes
Carrier Proteins
Ethers, Cyclic
Tritium
Glucose
Sorbose
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Barnett J E
Holman G D
Munday K A
References (13)
13 references, click to expand
-
Imine-bonding in membrane transport of monosaccharides: invalidity of kinetic evidence.
Science. 1967 Oct 13;158(3798):274-5
PMID: 6053887
-
Evidence against the involvement of the carbonyl group in the glucose transport mechanism of human erythrocytes.
Biochim Biophys Acta. 1969 Apr;173(3):569-72
PMID: 5769649
-
Structural requirements for active intestinal transport. Spatial and bonding requirements at C-3 of the sugar.
Biochem J. 1969 Sep;114(3):569-73
PMID: 5820643
-
Structural requirements for active intestinal transport. The nature of the carrier-sugar bonding at C-2 and the ring oxygen of the sugar.
Biochem J. 1970 Aug;118(5):843-50
PMID: 5476727
-
The effect of temperature on the competitive inhibition of sorbose transfer in human erythrocytes by glucose.
Biochim Biophys Acta. 1971 Feb 2;225(2):291-300
PMID: 5552812
-
Carrier and non-carrier models for sugar transport in the human red blood cell.
Biochim Biophys Acta. 1972 Apr 18;265(2):187-207
PMID: 4555470
-
Determination of the temperature and pH dependence of glucose transfer across the human erythrocyte membrane measured by glucose exit.
J Physiol. 1962 Mar;160:392-403
PMID: 13910603
-
Cuprammonium-glycoside complexes.
Adv Carbohydr Chem. 1951;6:107-34
PMID: 14894349
-
Conformational specificity in a biological sugar transport system.
Am J Physiol. 1958 Aug;194(2):333-7
PMID: 13559473
-
Monosaccharide penetration into human red blood cells by an altered diffusion mechanism.
J Cell Comp Physiol. 1960 Oct;56:103-21
PMID: 13698374
-
Sugar transport in the red blood cell: structure-activity relationships in substrates and antagonists.
Pharmacol Rev. 1961 Mar;13:39-70
PMID: 13760340
-
Interaction of some disaccharides with the carrier system for aldoses in erythrocytes.
Biochem J. 1962 Jun;83:622-5
PMID: 14461405
-
Active transport into the human erythrocyte; evidence from comparative kinetics and competition among monosaccharides.
J Gen Physiol. 1951 May;34(5):515-24
PMID: 14832434