ATP stimulates GRK-3 phosphorylation and beta-arrestin-2-dependent internalization of P2X7 receptor
Ying-Hong Feng1, Liqin Wang, Qifang Wang
1Department of Pharmacology, Uniformed Services University of the Health Sciences, Bethesda, Maryland, USA.
Abstract:
The objective of this study was to understand the mechanisms involved in P2X(7) receptor activation. Treatments with ATP or with the P2X(7) receptor-specific ligand 2',3'-O-(4-benzoylbenzoyl)adenosine 5'-triphosphate (BzATP) induced pore formation, but the effect was slower in CaSki cells expressing endogenous P2X(7) receptor than in human embryonic kidney (HEK)-293 cells expressing exogenous P2X(7) receptor (HEK-293-hP2X(7)-R). In both types of cells Western blots revealed expression of three forms of the receptor: the functional 85-kDa form present mainly in the membrane and 65- and 18-kDa forms expressed in both the plasma membrane and the cytosol. Treatments with ATP transiently decreased the 85-kDa form and increased the 18-kDa form in the membrane, suggesting internalization, degradation, and recycling of the receptor. In CaSki cells ATP stimulated phosphorylation of the 85-kDa form on tyrosine and serine residues. Phosphorylation on threonine residues increased with added ATP, and it increased ATP requirements for phosphorylation on tyrosine and serine residues, suggesting a dominant-negative effect. In both CaSki and in HEK-293-hP2X(7)-R cells ATP also increased binding of the 85-kDa form to G protein-coupled receptor kinase (GRK)-3, beta-arrestin-2, and dynamin, and it stimulated beta-arrestin-2 redistribution into submembranous regions of the cell. These results suggest a novel mechanism for P2X(7) receptor action, whereby activation involves a GRK-3-, beta-arrestin-2-, and dynamin-dependent internalization of the receptor into clathrin domains, followed in part by receptor degradation as well as receptor recycling into the plasma membrane.
Insights
This study reveals how P2X(7) receptor activation occurs. ATP triggers internalization and recycling of the P2X(7) receptor, involving specific proteins like GRK-3 and beta-arrestin-2.
Area of Science:
- Cell Biology
- Molecular Pharmacology
- Immunology
Background:
- The P2X(7) receptor is a key ion channel involved in cellular responses.
- Understanding its activation mechanisms is crucial for therapeutic development.
Purpose of the Study:
- To elucidate the molecular mechanisms underlying P2X(7) receptor activation and signaling.
- To investigate the role of receptor trafficking and protein interactions in P2X(7) receptor function.
Main Methods:
- Utilized CaSki and HEK-293 cells expressing P2X(7) receptor.
- Employed Western blotting to analyze receptor expression and modifications.
- Investigated protein-protein interactions using co-immunoprecipitation and cellular localization studies.
Main Results:
- ATP and BzATP induced pore formation, with slower kinetics in endogenous P2X(7) receptor expressing cells.
- Identified three forms of P2X(7) receptor (85, 65, 18 kDa) in cell membranes and cytosol.
- Observed ATP-induced transient decrease of the 85-kDa form and increase of the 18-kDa form, suggesting internalization and recycling.
- Demonstrated ATP-stimulated phosphorylation of the 85-kDa form and increased binding to GRK-3, beta-arrestin-2, and dynamin.
- Showed ATP-induced beta-arrestin-2 redistribution into submembranous regions.
Conclusions:
- P2X(7) receptor activation involves a novel GRK-3, beta-arrestin-2, and dynamin-dependent internalization pathway.
- This pathway leads to clathrin-mediated endocytosis, followed by receptor degradation and/or recycling.
- These findings provide new insights into P2X(7) receptor regulation and signaling dynamics.
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