Glutaric Aciduria Type 1 Metabolites Impair the Succinate Transport from Astrocytic to Neuronal Cells
Метаболиты при глутаровой ацидурии 1-го типа нарушают транспорт сукцината из астроцитарных клеток в нейрональные
2011-03-30
SCID: 54.1/8jxyg8yc
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3-Hydroxyglutaric acidAstrocyte-neuron metabolic couplingGlutaric acidGlutaric aciduria type 1Succinate transport
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Abstract (AI)
The inherited neurodegenerative disorder glutaric aciduria type 1 (GA1) results from mutations in the gene for the mitochondrial matrix enzyme glutaryl-CoA dehydrogenase (GCDH), which leads to elevations of the dicarboxylates glutaric acid (GA) and 3-hydroxyglutaric acid (3OHGA) in brain and blood. The characteristic clinical presentation of GA1 is a sudden onset of dystonia during catabolic situations, resulting from acute striatal injury. The underlying mechanisms are poorly understood, but the high levels of GA and 3OHGA that accumulate during catabolic illnesses are believed to play a primary role. Both GA and 3OHGA are known to be substrates for Na(+)-coupled dicarboxylate transporters, which are required for the anaplerotic transfer of the tricarboxylic acid cycle (TCA) intermediate succinate between astrocytes and neurons. We hypothesized that GA and 3OHGA inhibit the transfer of succinate from astrocytes to neurons, leading to reduced TCA cycle activity and cellular injury. Here, we show that both GA and 3OHGA inhibit the uptake of [(14)C]succinate by Na(+)-coupled dicarboxylate transporters in cultured astrocytic and neuronal cells of wild-type and Gcdh(-/-) mice. In addition, we demonstrate that the efflux of [(14)C]succinate from Gcdh(-/-) astrocytic cells mediated by a not yet identified transporter is strongly reduced. This is the first experimental evidence that GA and 3OHGA interfere with two essential anaplerotic transport processes: astrocytic efflux and neuronal uptake of TCA cycle intermediates, which occur between neurons and astrocytes. These results suggest that elevated levels of GA and 3OHGA may lead to neuronal injury and cell death via disruption of TCA cycle activity.
Key Findings
1
Disrupted succinate transfer may decrease tricarboxylic acid cycle activity and contribute to neuronal injury and cell death in glutaric aciduria type 1.
2
GA and 3OHGA interfere with two essential neuron–astrocyte anaplerotic processes: neuronal succinate uptake and astrocytic succinate efflux.
3
Glutaric acid (GA) and 3-hydroxyglutaric acid (3OHGA) inhibit Na+-coupled dicarboxylate transporter-mediated succinate uptake in cultured astrocytic and neuronal cells.
4
Succinate efflux from Gcdh−/− astrocytic cells, mediated by an unidentified transporter, is strongly reduced.
5
The findings provide the first experimental evidence linking accumulated GA and 3OHGA to impaired astrocyte-to-neuron transfer of TCA cycle intermediates.
Research Object
Astrocyte–neuron succinate transport in glutaric aciduria type 1, including cultured astrocytic and neuronal cells from wild-type and Gcdh−/− mice
Research Subject
Inhibition of astrocytic succinate efflux and neuronal succinate uptake by accumulated glutaric acid and 3-hydroxyglutaric acid, and the resulting disruption of TCA-cycle anaplerosis and cellular injury
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2011-03-30
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