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August 1, 1998Cardiovascular Research74 citationsOpen Access

Glucose delivery is a major determinant of glucose utilisation in the ischemic myocardium with a residual coronary flow

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LKLinda M. KingLOLionel H. Opie

Structured PICO

Does low coronary flow alter glucose uptake and extraction in the isolated rat heart model?

P
Population
Isolated Langendorff-perfused Wistar rat heart model
I
Intervention
Low coronary flows (0.1, 0.2 and 0.5 ml/g wet wt/min) at various glucose concentrations (2.75, 5.5, 11 and 22 mM)
C
Comparator
Control coronary flows (12-15 ml/g wet wt/min)
O
Outcome
Rates of glucose uptake and extraction of glucosesurrogate

In severe myocardial ischemia, glucose delivery to the glycolytic pathway is a major controlling site of glycolysis, with glucose extraction greatly increased despite reduced absolute uptake.

Abstract

BACKGROUND: Experimental data from isolated rat hearts suggest that glycolysis in severe myocardial ischemia is inhibited by accumulation of glycolytic metabolites. In contrast, positron emission tomography (PET) in patients with myocardial ischemia records a 'mismatch' between the decreased coronary flow in viable ischemic tissue and an increased fluorodeoxyglucose (18FDG) signal. To resolve this contradiction, we investigated glucose uptake at very low coronary flows in the isolated rat heart model. METHODS: Rates of glucose uptake were measured in the isolated Langendorff-perfused Wistar rat heart, at control (12-15 ml/g wet wt/min) and low coronary flows (0.1, 0.2 and 0.5 ml/g wet wt/min) and at a range of glucose concentrations (2.75, 5.5, 11 and 22 mM). RESULTS: The steady-state rate of glucose uptake versus glucose concentration could be described by a double rectangular hyperbola at each coronary flow. Glucose uptake fell to levels significantly below control at low coronary flows. However, the extraction of glucose (glucose uptake as % of glucose delivered) rose sharply, from 1% at control coronary flows, to 25-30% at low coronary flows. Crossover analysis of glycolytic intermediates in freeze-clamped tissue indicated little inhibition at any specific site, although phosphofructokinase activity was restricted when glycolytic substrate availability was high. Insulin and preconditioning both increased glucose uptake with 11 mM glucose, possibly by increasing membrane transporter density and thus increasing glucose delivery to the cytosol. CONCLUSIONS: Despite the reduction in absolute glucose uptake at low coronary flow-rates, the extraction of glucose was greatly increased, possibly following GLUT4 translocation. Delivery of glucose to the glycolytic pathway appears to be a major controlling site of glycolysis in low-flow ischemia. Downstream regulation is then distributed along the pathway with no one site exerting greater inhibition than reduced glucose delivery.

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Cite This Study

King et al. (1998) studied this question.

synapsesocial.com/papers/6a7a63dc02ab7a73dd02e27chttps://doi.org/10.1016/s0008-6363(98)00100-x
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Metabolic fate of glucose in reversible low-flow ischemia of the isolated working rat heart1996 · 60 citations
  2. 2Ischemia induces translocation of the insulin-responsive glucose transporter GLUT4 to the plasma membrane of cardiac myocytes.1994 · 242 citations
  3. 3Low-Flow Ischemia Leads to Translocation of Canine Heart GLUT-4 and GLUT-1 Glucose Transporters to the Sarcolemma In Vivo1997 · 236 citations
  4. 4Role of fructose 2,6-bisphosphate in the control of glycolysis. Stimulation of glycogen synthesis by lactate in the isolated working rat heart.1993 · 26 citations
  5. 5[Energy metabolism of the heart].1961 · 18 citations