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Updated: Jul 13, 2025

A Kinetic Fluorescence-based Ca2+ Mobilization Assay to Identify G Protein-coupled Receptor Agonists, Antagonists, and Allosteric Modulators
Published on: February 20, 2018
Signal transduction at GPCRs: Allosteric activation of the ERK MAPK by β-arrestin
Alem W Kahsai1, Kunal S Shah1,2, Paul J Shim1,3
1Department of Medicine, Duke University Medical Center, Durham, NC 27710.
Abstract:
β-arrestins are multivalent adaptor proteins that bind active phosphorylated G protein-coupled receptors (GPCRs) to inhibit G protein signaling, mediate receptor internalization, and initiate alternative signaling events. β-arrestins link agonist-stimulated GPCRs to downstream signaling partners, such as the c-Raf-MEK1-ERK1/2 cascade leading to ERK1/2 activation. β-arrestins have been thought to transduce signals solely via passive scaffolding by facilitating the assembly of multiprotein signaling complexes. Recently, however, β-arrestin 1 and 2 were shown to activate two downstream signaling effectors, c-Src and c-Raf, allosterically. Over the last two decades, ERK1/2 have been the most intensely studied signaling proteins scaffolded by β-arrestins. Here, we demonstrate that β-arrestins play an active role in allosterically modulating ERK kinase activity in vitro and within intact cells. Specifically, we show that β-arrestins and their GPCR-mediated active states allosterically enhance ERK2 autophosphorylation and phosphorylation of a downstream ERK2 substrate, and we elucidate the mechanism by which β-arrestins do so. Furthermore, we find that allosteric stimulation of dually phosphorylated ERK2 by active-state β-arrestin 2 is more robust than by active-state β-arrestin 1, highlighting differential capacities of β-arrestin isoforms to regulate effector signaling pathways downstream of GPCRs. In summary, our study provides strong evidence for a new paradigm in which β-arrestins function as active "catalytic" scaffolds to allosterically unlock the enzymatic activity of signaling components downstream of GPCR activation.
Insights
Beta-arrestins act as active scaffolds, not just passive ones. They allosterically enhance the activity of ERK kinases, revealing a new signaling paradigm for G protein-coupled receptor pathways.
Area of Science:
- Cellular signaling
- Molecular biology
- Biochemistry
Background:
- Beta-arrestins are adaptor proteins that bind activated GPCRs.
- They are known to inhibit G protein signaling and mediate receptor internalization.
- Previously, beta-arrestins were thought to function solely as passive scaffolds for signaling complexes.
Purpose of the Study:
- To investigate the active role of beta-arrestins in modulating ERK kinase activity.
- To elucidate the mechanism by which beta-arrestins allosterically regulate ERK activity.
- To compare the differential capacities of beta-arrestin isoforms in regulating downstream signaling.
Main Methods:
- In vitro kinase assays to assess ERK2 activity.
- Cell-based assays to study signaling within intact cells.
- Biochemical analyses to determine the mechanism of allosteric modulation.
Main Results:
- Beta-arrestins actively and allosterically enhance ERK2 autophosphorylation and substrate phosphorylation.
- The active states of beta-arrestins, upon GPCR binding, boost ERK kinase activity.
- Beta-arrestin 2 demonstrates a more robust allosteric stimulation of ERK2 compared to beta-arrestin 1.
Conclusions:
- Beta-arrestins function as active, catalytic scaffolds, not merely passive platforms.
- They allosterically unlock and enhance the enzymatic activity of downstream signaling components like ERK.
- This finding establishes a new paradigm for beta-arrestin function in GPCR signaling.
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