Literature DB >> 18591386

Evidence for interindividual heterogeneity in the glucose gradient across the human red blood cell membrane and its relationship to hemoglobin glycation.

Paramjit K Khera1, Clinton H Joiner, Anthony Carruthers, Christopher J Lindsell, Eric P Smith, Robert S Franco, Yancey R Holmes, Robert M Cohen.   

Abstract

OBJECTIVE: To determine whether interindividual heterogeneity in the erythrocyte (red blood cell [RBC]) transmembrane glucose gradient might explain discordances between A1C and glycemic control based on measured fructosamine. RESEARCH DESIGN AND METHODS: We modeled the relationship between plasma glucose and RBC glucose as the concentration distribution (C(i)-to-C(o) ratio) of a nonmetabolizable glucose analog (14)C-3-O-methyl glucose ((14)C-3OMG) inside (C(i)) and outside (C(o)) RBCs in vitro. We examined the relationship between that distribution and the degree of glycation of hemoglobin in comparison with glycation of serum proteins (fructosamine), the glycation gap. A1C, fructosamine, and in vitro determination of the (14)C-3OMG distribution in glucose-depleted RBCs were measured in 26 fasted subjects.
RESULTS: The C(i)-to-C(o) ratio 0.89 +/- 0.07 for 3-O-methyl-d-glucopyranose (3OMG) ranged widely (0.72-1.04, n = 26). In contrast, urea C(i)-to-C(o) (1.015 +/- 0.022 [range 0.98-1.07], P < 0.0001) did not. Concerning mechanism, in a representative subset of subjects, the C(i)-to-C(o) ratio was retained in RBC ghosts, was not dependent on ATP or external cations, and was reestablished after reversal of the glucose gradient. The 3OMG C(i)-to-C(o) ratio was not correlated with serum fructosamine, suggesting that it was independent of mean plasma glucose. However, C(i)-to-C(o) did correlate with A1C (R(2) = 0.19) and with the glycation gap (R(2) = 0.20), consistent with a model in which differences in internal glucose concentration at a given mean plasma glucose contribute to differences in A1C for given level of glycemic control.
CONCLUSIONS: The data demonstrate interindividual heterogeneity in glucose gradients across RBC membranes that may affect hemoglobin glycation and have implications for diabetes complications risk and risk assessment.

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Year:  2008        PMID: 18591386      PMCID: PMC2518496          DOI: 10.2337/db07-1820

Source DB:  PubMed          Journal:  Diabetes        ISSN: 0012-1797            Impact factor:   9.461


  45 in total

Review 1.  Facilitated diffusion of glucose.

Authors:  A Carruthers
Journal:  Physiol Rev       Date:  1990-10       Impact factor: 37.312

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3.  The clinical information value of the glycosylated hemoglobin assay.

Authors:  D M Nathan; D E Singer; K Hurxthal; J D Goodson
Journal:  N Engl J Med       Date:  1984-02-09       Impact factor: 91.245

4.  ATP-dependent substrate occlusion by the human erythrocyte sugar transporter.

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8.  Glycosylated hemoglobin in human and animal red cells. Role of glucose permeability.

Authors:  P J Higgins; R L Garlick; H F Bunn
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9.  ATP regulation of the human red cell sugar transporter.

Authors:  A Carruthers
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10.  Phosphorylation of 3-O-methyl-D-glucose by yeast and beef hexokinase.

Authors:  F Malaisse-Lagae; M H Giroix; A Sener; W J Malaisse
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