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Updated: Dec 24, 2025

Monitoring GPCR-β-arrestin1/2 Interactions in Real Time Living Systems to Accelerate Drug Discovery
Published on: June 28, 2019
Encoding the β-Arrestin Trafficking Fate of Ghrelin Receptor GHSR1a: C-Tail-Independent Molecular Determinants in
Krisztian Toth1,2, Karim Nagi1,3, Lauren M Slosky1
1Departments of Cell Biology, Neurobiology, and Medicine, Duke University Medical Center, Durham, North Carolina 27710, United States.
Abstract:
G-protein-coupled receptors (GPCRs) can bias signaling through distinct biochemical pathways that originate from G-protein/receptor and β-arrestin/receptor complexes. Receptor conformations supporting β-arrestin engagement depend on multiple receptor determinants. Using ghrelin receptor GHR1a, we demonstrate by bioluminescence resonance energy transfer and fluorescence microscopy a critical role for its second intracellular loop 2 (ICL2) domain in stabilizing β-arrestin/GHSR1a core interactions and determining receptor trafficking fate. We validate our findings in ICL2 gain- and loss-of-function experiments assessing β-arrestin and ubiquitin-dependent internalization of the CC chemokine receptor, CCR1. Like all CC and CXC subfamily chemokine receptors, CCR1 lacks a critical proline residue found in the ICL2 consensus domain of rhodopsin-family GPCRs. Our study indicates that ICL2, C-tail determinants, and the orthosteric binding pocket that regulates β-arrestin/receptor complex stability are sufficient to encode a broad repertoire of the trafficking fates observed for rhodopsin-family GPCRs, suggesting they provide the essential elements for regulating a large fraction of β-arrestin signaling bias.
Insights
The second intracellular loop 2 (ICL2) domain is critical for stabilizing beta-arrestin/GPCR interactions and directing receptor trafficking. This finding helps explain signaling bias in G-protein-coupled receptors (GPCRs).
Area of Science:
- Molecular Biology
- Cell Biology
- Pharmacology
Background:
- G-protein-coupled receptors (GPCRs) signal through G-protein and beta-arrestin pathways.
- Receptor conformation dictates beta-arrestin engagement and subsequent signaling bias.
- Understanding these mechanisms is key to developing targeted therapeutics.
Purpose of the Study:
- To investigate the role of the second intracellular loop 2 (ICL2) domain in GPCR-beta-arrestin interactions.
- To determine how ICL2 influences receptor trafficking and signaling bias.
- To identify key receptor determinants for beta-arrestin engagement.
Main Methods:
- Bioluminescence resonance energy transfer (BRET) and fluorescence microscopy were used to study ghrelin receptor (GHR1a) and beta-arrestin interactions.
- Gain- and loss-of-function experiments were performed on the CC chemokine receptor 1 (CCR1).
- Analysis of ICL2 domain, C-tail determinants, and orthosteric binding pocket function.
Main Results:
- The ICL2 domain of GHR1a is critical for stabilizing beta-arrestin/GHSR1a complexes.
- ICL2 directly influences receptor trafficking fate.
- CCR1, lacking a key proline in ICL2, exhibits distinct beta-arrestin-dependent internalization patterns.
- ICL2, C-tail, and binding pocket collectively regulate beta-arrestin/receptor complex stability.
Conclusions:
- The ICL2 domain is a key determinant of GPCR-beta-arrestin interactions and receptor trafficking.
- These findings provide a framework for understanding signaling bias in rhodopsin-family GPCRs.
- The study highlights the essential elements for regulating beta-arrestin signaling bias across GPCRs.
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