Agonist-induced sorting of human β2-adrenergic receptors to lysosomes during downregulation
Open Access
- 1 February 1999
- journal article
- Published by The Company of Biologists in Journal of Cell Science
- Vol. 112 (3) , 329-338
- https://doi.org/10.1242/jcs.112.3.329
Abstract
During prolonged exposure to agonist, β2-adrenergic receptors undergo downregulation, defined by the loss of radioligand binding sites. To determine the cellular basis for β2-adrenergic receptor downregulation, we examined HEK293 cells stably expressing β2-adrenergic receptors with an N-terminal epitope tag. Downregulation was blocked by leupeptin, a cysteine protease inhibitor, but not by pepstatin, an inhibitor of aspartate proteases. Immunofluorescence microscopy of cells treated with agonist for 3-6 hours in the presence of leupeptin showed β2-adrenergic receptors, but not transferrin receptors, localizing with the lysosomal protease cathepsin D, and with lysosomes labeled by uptake of a fluorescent fluid-phase marker. No localization of β2-adrenergic receptors with lysosomal markers was observed in the absence of leupeptin, most likely due to proteolysis of the epitope. The proton pump inhibitor, bafilomycin A1, significantly inhibited this agonist-induced redistribution of β2-adrenergic receptors into lysosomes, causing receptors to accumulate in the rab11-positive perinuclear recycling compartment and slowing the rate of β2-adrenergic receptor recycling. Control experiments showed that leupeptin had no nonspecific effects on the cellular trafficking of either β2-adrenergic receptors or transferrin receptors. Although cAMP alone caused a small decline in receptor levels without redistributing β2-adrenergic receptors from the plasma membrane, this effect was additive to that seen with agonist alone, suggesting that agonist-induced β2-adrenergic receptor downregulation resulted largely from cAMP-independent mechanisms. These results indicate that during agonist-induced downregulation, a significant fraction of β2-adrenergic receptors are specifically sorted to lysosomes via the endosomal pathway, where receptor degradation by cysteine proteases occurs. These results provide a cellular explanation for the loss of radioligand binding sites that occurs during prolonged exposure to agonist.Keywords
This publication has 27 references indexed in Scilit:
- Role of Clathrin-mediated Endocytosis in Agonist-induced Down-regulation of the β2-Adrenergic ReceptorJournal of Biological Chemistry, 1998
- Visualization of Agonist-induced Sequestration and Down-regulation of a Green Fluorescent Protein-tagged β2-Adrenergic ReceptorPublished by Elsevier ,1998
- Rab11 Is Associated with Transferrin-Containing Recycling Compartments in K562 CellsBiochemical and Biophysical Research Communications, 1997
- Bafilomycin A1 Treatment Retards Transferrin Receptor Recycling More than Bulk Membrane RecyclingJournal of Biological Chemistry, 1997
- The Role of Sequestration in G Protein-coupled Receptor ResensitizationJournal of Biological Chemistry, 1997
- Transport from late endosomes to lysosomes, but not sorting of integral membrane proteins in endosomes, depends on the vacuolar proton pump.The Journal of cell biology, 1995
- Signal-Dependent Membrane Protein Trafficking in the Endocytic PathwayAnnual Review of Cell Biology, 1993
- Pathways of internalization of the hCG/LH receptor: immunoelectron microscopic studies in Leydig cells and transfected L-cells.The Journal of cell biology, 1992
- Biosynthesis of lysosomal endopeptidasesJournal of Cellular Biochemistry, 1989
- Down regulation of epidermal growth factor receptors: direct demonstration of receptor degradation in human fibroblasts.The Journal of cell biology, 1984