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Amyloid Beta-peptide Impairs Glucose Transport in Hippocampal and Cortical Neurons: Involvement of Membrane Lipid Peroxidation

Overview
Journal J Neurosci
Specialty Neurology
Date 1997 Feb 1
PMID 8994059
Citations 149
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Abstract

A deficit in glucose uptake and a deposition of amyloid beta-peptide (A beta) each occur in vulnerable brain regions in Alzheimer's disease (AD). It is not known whether mechanistic links exist between A beta deposition and impaired glucose transport. We now report that A beta impairs glucose transport in cultured rat hippocampal and cortical neurons by a mechanism involving membrane lipid peroxidation. A beta impaired 3H-deoxy-glucose transport in a concentration-dependent manner and with a time course preceding neurodegeneration. The decrease in glucose transport was followed by a decrease in cellular ATP levels. Impairment of glucose transport, ATP depletion, and cell death were each prevented in cultures pretreated with antioxidants. Exposure to FeSO4, an established inducer of lipid peroxidation, also impaired glucose transport. Immunoprecipitation and Western blot analyses showed that exposure of cultures to A beta induced conjugation of 4-hydroxynonenal (HNE), an aldehydic product of lipid peroxidation, to the neuronal glucose transport protein GLUT3. HNE induced a concentration-dependent impairment of glucose transport and subsequent ATP depletion. Impaired glucose transport was not caused by a decreased energy demand in the neurons, because ouabain, which inhibits Na+/K(+)-ATPase activity and thereby reduces neuronal ATP hydrolysis rate, had little or no effect on glucose transport. Collectively, the data demonstrate that lipid peroxidation mediates A beta-induced impairment of glucose transport in neurons and suggest that this action of A beta may contribute to decreased glucose uptake and neuronal degeneration in AD.

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References
1.
Yankner B, Duffy L, Kirschner D . Neurotrophic and neurotoxic effects of amyloid beta protein: reversal by tachykinin neuropeptides. Science. 1990; 250(4978):279-82. DOI: 10.1126/science.2218531. View

2.
Mullan M, Crawford F . Genetic and molecular advances in Alzheimer's disease. Trends Neurosci. 1993; 16(10):398-403. DOI: 10.1016/0166-2236(93)90007-9. View

3.
Cummings B, Cotman C . Image analysis of beta-amyloid load in Alzheimer's disease and relation to dementia severity. Lancet. 1995; 346(8989):1524-8. DOI: 10.1016/s0140-6736(95)92053-6. View

4.
Mattson M, Cheng B, Davis D, Bryant K, Lieberburg I, Rydel R . beta-Amyloid peptides destabilize calcium homeostasis and render human cortical neurons vulnerable to excitotoxicity. J Neurosci. 1992; 12(2):376-89. PMC: 6575616. View

5.
Maher F, Simpson I . Modulation of expression of glucose transporters GLUT3 and GLUT1 by potassium and N-methyl-D-aspartate in cultured cerebellar granule neurons. Mol Cell Neurosci. 1994; 5(4):369-75. DOI: 10.1006/mcne.1994.1044. View