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Updated: Aug 23, 2026

Visualizing the Conformational Dynamics of Membrane Receptors Using Single-Molecule FRET
Published on: August 17, 2022
N-formyl peptide receptors cluster in an active raft-associated state prior to phosphorylation
Mei Xue1, Charlotte M Vines, Tione Buranda
1Department of Cell Biology and Physiology, University of New Mexico Health Sciences Center, Albuquerque 87131, USA.
Abstract:
In response to ligand binding, G protein-coupled receptors undergo phosphorylation and activate cellular internalization machinery. An important component of this process is the concentration of receptors into clusters on the plasma membrane. Aside from organizing the receptor in anticipation of internalization, little is known of the function of ligand-mediated G protein-coupled receptor clustering, which has traditionally been thought of as being a phosphorylation-dependent event prior to receptor internalization. We now report that following receptor activation, the N-formyl peptide receptor (FPR) forms distinct membrane clusters prior to its association with arrestin. To determine whether this clustering is dependent upon receptor phosphorylation, we used a mutant form of the FPR, DeltaST-FPR, which lacks all phosphorylation sites in the carboxyl-terminal domain. We found that activation of the signaling-competent DeltaST-FPR resulted in rapid receptor clustering on the plasma membrane independent of Gi protein activation. This clustering required receptor activation since the D71A mutant receptor, which binds ligand but is incapable of transitioning to an active state, failed to induce receptor clustering. Furthermore we demonstrated that FPR-mediated clustering and signaling were cholesterol-dependent processes, suggesting that translocation of the active receptor to lipid rafts may be required for maximal signaling activity. Finally we showed that FPR stimulation in the absence of receptor phosphorylation resulted in translocation of FPR to GM1-rich clusters. Our results demonstrate for the first time that formation of a clustered activated receptor state precedes receptor phosphorylation, arrestin binding, and internalization.
Insights
Ligand binding causes G protein-coupled receptors to cluster on the cell membrane before phosphorylation. This clustering is essential for receptor activation and signaling, independent of internalization.
Area of Science:
- Cell Biology
- Biochemistry
- Molecular Pharmacology
Background:
- G protein-coupled receptors (GPCRs) are crucial cell surface proteins involved in signal transduction.
- GPCR activation typically involves phosphorylation and internalization, processes often preceded by receptor clustering.
- The precise role and regulation of GPCR clustering, particularly its dependence on phosphorylation, remain incompletely understood.
Purpose of the Study:
- To investigate the role of N-formyl peptide receptor (FPR) clustering in response to ligand binding.
- To determine whether FPR clustering is dependent on receptor phosphorylation or G protein activation.
- To elucidate the relationship between FPR clustering, cholesterol, and lipid rafts in signaling.
Main Methods:
- Utilized a mutant FPR (DeltaST-FPR) lacking carboxyl-terminal phosphorylation sites.
- Assessed receptor clustering upon activation of wild-type and mutant FPRs.
- Investigated the role of cholesterol and lipid rafts using cholesterol depletion and GM1-rich cluster analysis.
Main Results:
- FPR forms distinct membrane clusters upon activation, preceding arrestin association.
- Clustering of DeltaST-FPR occurs independently of Gi protein activation and receptor phosphorylation.
- FPR clustering and signaling are cholesterol-dependent, suggesting lipid raft involvement.
- Activated FPR translocates to GM1-rich clusters even without phosphorylation.
Conclusions:
- FPR clustering is an early, phosphorylation-independent event following receptor activation.
- The formation of a clustered, activated receptor state is a prerequisite for subsequent signaling events.
- Cholesterol and lipid rafts play a critical role in FPR clustering and signaling efficiency.
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