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Published on: August 2, 2019
Internalization and degradation of the glutamate transporter GLT-1 in response to phorbol ester
Bala T S Susarla1, Michael B Robinson
1Department of Pediatrics, Children's Hospital of Philadelphia, University of Pennsylvania, 502N Abramson Pediatric Research Building, 3615 Civic Center Blvd., Philadelphia, PA 19104-4318, United States.
Abstract:
Activation of protein kinase C (PKC) decreases the activity and cell surface expression of the predominant forebrain glutamate transporter, GLT-1. In the present study, C6 glioma were used as a model system to define the mechanisms that contribute to this decrease in cell surface expression and to determine the fate of internalized transporter. As was previously observed, phorbol 12-myristate 13-acetate (PMA) caused a decrease in biotinylated GLT-1. This effect was blocked by sucrose or by co-expression with a dominant-negative variant of dynamin 1, and it was attenuated by co-expression with a dominant-negative variant of the clathrin heavy chain. Depletion of cholesterol with methyl-beta-cyclodextrin, co-expression with a dominant-negative caveolin-1 mutant (Cav1/S80E), co-expression with dominant-negative variants of Eps15 (epidermal-growth-factor receptor pathway substrate clone 15), or co-expression with dominant-negative Arf6 (T27N) had no effect on the PMA-induced loss of biotinylated GLT-1. Long-term treatment with PMA caused a time-dependent loss of biotinylated GLT-1 and decreased the levels of GLT-1 protein. Inhibitors of lysosomal degradation (chloroquine or ammonium chloride) or co-expression with a dominant-negative variant of a small GTPase implicated in trafficking to lysosomes (Rab7) prevented the PMA-induced decrease in protein and caused an intracellular accumulation of GLT-1. These results suggest that the PKC-induced redistribution of GLT-1 is dependent upon clathrin-mediated endocytosis. These studies identify a novel mechanism by which the levels of GLT-1 could be rapidly down-regulated via lysosomal degradation. The possibility that this mechanism may contribute to the loss of GLT-1 observed after acute insults to the CNS is discussed.
Insights
Protein kinase C (PKC) activation reduces brain glutamate transporter GLT-1 cell surface levels. Internalized GLT-1 is degraded via lysosomes, a process dependent on clathrin-mediated endocytosis.
Area of Science:
- Neuroscience
- Cell Biology
- Molecular Biology
Background:
- Protein kinase C (PKC) activation is known to decrease glutamate transporter GLT-1 activity and cell surface expression in the forebrain.
- Understanding the mechanisms behind GLT-1 downregulation is crucial for comprehending neuronal function and dysfunction.
Purpose of the Study:
- To elucidate the mechanisms responsible for the decrease in GLT-1 cell surface expression upon PKC activation.
- To determine the cellular fate of internalized GLT-1 transporter.
Main Methods:
- Utilized C6 glioma cells as a model system.
- Investigated the role of clathrin-mediated endocytosis, dynamin, cholesterol, caveolin-1, Eps15, and Arf6 in GLT-1 internalization.
- Examined the involvement of lysosomal degradation pathways using inhibitors and Rab7.
Main Results:
- Phorbol 12-myristate 13-acetate (PMA)-induced decrease in GLT-1 was dependent on clathrin-mediated endocytosis and dynamin.
- Cholesterol, caveolin-1, Eps15, and Arf6 were not involved in the PMA-induced GLT-1 loss.
- Long-term PMA treatment reduced total GLT-1 protein levels, indicating degradation.
- Lysosomal inhibitors and Rab7 interference prevented GLT-1 loss and caused intracellular accumulation, suggesting lysosomal degradation.
Conclusions:
- PKC-induced GLT-1 redistribution is mediated by clathrin-mediated endocytosis.
- A novel mechanism for rapid GLT-1 downregulation involves lysosomal degradation.
- This pathway may contribute to GLT-1 loss following acute central nervous system insults.
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