Membrane translocation of glutaric acid and its derivatives

Транслокация глутаровой кислоты и ее производных через мембрану
Yohannes Hagos, Thomas Braulke, Zoltán Lukács, Chris Mühlhausen, Gerhard Burckhardt, Birgitta C. Burckhardt, Britta Keyser, Kurt Ullrich
2008-04-01

glutaric acid transportglutaric aciduria type Ikidney proximal tubuleorganic anion transporterssodium-dependent dicarboxylate cotransporter 3
The neurodegenerative disorder glutaric aciduria type I (GA I) is characterized by increased levels of cytotoxic metabolites such as glutaric acid (GA) and 3-hydroxyglutaric (3OHGA). The present report summarizes recent investigations providing insights into mechanisms of intra- and intercellular translocation of these metabolites. Initiated by microarray analyses in a mouse model of GA I, the sodium-dependent dicarboxylate cotransporter 3 (NaC3) was the first molecule identified to mediate the translocation of GA and 3OHGA with high and low affinity, respectively. More recently, organic anion transporters (OAT) 1 and 4 have been reported to be high-affinity transporters for GA and 3OHGA as well as D-2- and L-2-hydroxyglutaric acid (D2OHGA, L2OHGA). The concerted action of NaC3 and OATs may be important for the directed uptake and excretion of GA, 3OHGA, D2OHGA and L2OHGA in kidney proximal tubule cells. In addition, experimental data on cultured neuronal and glial cells isolated from mouse brain demonstrated that GA rather than 3OHGA may competitively inhibit the anaplerotic supply of tricarboxylic acid cycle intermediates from astrocytes to neurons. The identification of GA and GA derivative transporters may represent targets for new approaches to treat patients with GA I and related disorders.
1
Identified transporters may provide therapeutic targets for glutaric aciduria type I and related disorders.
2
In cultured mouse brain cells, glutaric acid, rather than 3-hydroxyglutaric acid, competitively inhibited astrocyte-to-neuron anaplerotic delivery of tricarboxylic acid cycle intermediates.
3
NaC3 was identified as a sodium-dependent dicarboxylate cotransporter mediating high-affinity glutaric acid and low-affinity 3-hydroxyglutaric acid translocation.
4
Organic anion transporters OAT1 and OAT4 transport glutaric acid, 3-hydroxyglutaric acid, D-2-hydroxyglutaric acid, and L-2-hydroxyglutaric acid with high affinity.
5
The coordinated action of NaC3 and OATs may direct uptake and excretion of glutaric acid metabolites in kidney proximal tubule cells.

Cellular translocation and transport of glutaric acid and its derivatives, including 3-hydroxyglutaric acid, D-2-hydroxyglutaric acid, and L-2-hydroxyglutaric acid

Mechanisms and transporter-mediated regulation of intra- and intercellular uptake, excretion, and metabolic exchange of glutaric acid derivatives, particularly through NaC3 and OAT1/OAT4 in kidney and brain cells

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2008-04-01
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Yohannes Hagos
Thomas Braulke
Zoltán Lukács
Chris Mühlhausen
Gerhard Burckhardt
Birgitta C. Burckhardt
Britta Keyser
Kurt Ullrich
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