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Published on: December 13, 2013
Caveolin-1 regulates cellular trafficking and function of the glucagon-like Peptide 1 receptor
Colin A Syme1, Lei Zhang, Alessandro Bisello
1Division of Endocrinology and Metabolism, Department of Medicine, University of Pittsburgh School of Medicine, E1140 Biomedical Science Tower, 200 Lothrop Street, Pittsburgh, Pennsylvania 15261, USA.
Abstract:
The glucagon-like peptide 1 receptor (GLP-1R) mediates important effects on beta-cell function and glucose homeostasis and is one of the most promising therapeutic targets for type 2, and possibly type 1, diabetes. Yet, little is known regarding the molecular and cellular mechanisms that regulate its function. Therefore, we examined the cellular trafficking of the GLP-1R and the relation between receptor localization and signaling activity. In resting human embryonic kidney 293 and insulinoma MIN6 cells, a fully functional green fluorescent protein-tagged GLP-1R was localized both at the cell membrane and in highly mobile intracellular compartments. Real-time confocal fluorescence microscopy allowed direct visualization of constitutive cycling of the receptor. Overexpression of K44A-dynamin increased the number of functional receptors at the cell membrane. Immunoprecipitation, sucrose sedimentation, and microscopy observations demonstrated that the GLP-1R localizes in lipid rafts and interacts with caveolin-1. This interaction is necessary for membrane localization of the GLP-1R, because overexpression of a dominant-negative form of caveolin-1 (P132L-cav1) or specific mutations within the putative GLP-1R's caveolin-1 binding domain completely inhibited GLP-1 binding and activity. Upon agonist stimulation, the GLP-1R underwent rapid and extensive endocytosis independently from arrestins but in association with caveolin-1. Finally, GLP-1R-stimulated activation of ERK1/2, which involves transactivation of epidermal growth factor receptors, required lipid raft integrity. In summary, the interaction of the GLP-1R with caveolin-1 regulates subcellular localization, trafficking, and signaling activity. This study provides further evidence of the key role of accessory proteins in specifying the cellular behavior of G protein-coupled receptors.
Insights
The glucagon-like peptide 1 receptor (GLP-1R) interacts with caveolin-1 to regulate its cell membrane localization, trafficking, and signaling. This interaction is crucial for GLP-1R function in glucose homeostasis and diabetes therapy.
Area of Science:
- Molecular Cell Biology
- Endocrinology
- Pharmacology
Background:
- The glucagon-like peptide 1 receptor (GLP-1R) is a key therapeutic target for diabetes due to its role in glucose homeostasis.
- Understanding the molecular mechanisms regulating GLP-1R function is essential for optimizing its therapeutic potential.
Purpose of the Study:
- To investigate the cellular trafficking of the GLP-1R and its relationship with signaling activity.
- To elucidate the role of accessory proteins, specifically caveolin-1, in GLP-1R localization and function.
Main Methods:
- Real-time confocal fluorescence microscopy to visualize GLP-1R trafficking.
- Immunoprecipitation and sucrose sedimentation to analyze protein interactions.
- Genetic manipulation (overexpression of dynamin and caveolin-1 mutants) to assess functional impacts.
Main Results:
- GLP-1R exhibits constitutive cycling between the cell membrane and intracellular compartments.
- GLP-1R localizes in lipid rafts and interacts with caveolin-1, which is essential for its membrane presence and ligand binding.
- Agonist stimulation induces GLP-1R endocytosis associated with caveolin-1, independent of arrestins.
- GLP-1R signaling, including ERK1/2 activation, requires lipid raft integrity.
Conclusions:
- The interaction between GLP-1R and caveolin-1 is critical for regulating receptor localization, trafficking, and downstream signaling.
- Accessory proteins like caveolin-1 play a significant role in determining the cellular behavior and signaling capacity of G protein-coupled receptors.
- These findings offer insights into the molecular basis of GLP-1R action, relevant for diabetes treatment development.
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