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Updated: Jun 5, 2026

Parallel Interrogation of β-Arrestin2 Recruitment for Ligand Screening on a GPCR-Wide Scale using PRESTO-Tango Assay
Published on: March 10, 2020
β-Arrestin 1 inhibits the GTPase-activating protein function of ARHGAP21, promoting activation of RhoA following
D F Anthony1, Y Y Sin, S Vadrevu
1Neuroscience and Molecular Pharmacology, Division of Integrative Biology, IBLS, Wolfson Building, University of Glasgow, Glasgow G12 8QQ, Scotland, United Kingdom.
Abstract:
Activation of the small GTPase RhoA following angiotensin II stimulation is known to result in actin reorganization and stress fiber formation. Full activation of RhoA, by angiotensin II, depends on the scaffolding protein β-arrestin 1, although the mechanism behind its involvement remains elusive. Here we uncover a novel partner and function for β-arrestin 1, namely, in binding to ARHGAP21 (also known as ARHGAP10), a known effector of RhoA activity, whose GTPase-activating protein (GAP) function it inhibits. Using yeast two-hybrid screening, a peptide array, in vitro binding studies, truncation analyses, and coimmunoprecipitation techniques, we show that β-arrestin 1 binds directly to ARHGAP21 in a region that transects the RhoA effector GAP domain. Moreover, we show that the level of a complex containing β-arrestin 1 and ARHGAP21 is dynamically increased following angiotensin stimulation and that the kinetics of this interaction modulates the temporal activation of RhoA. Using information gleaned from a peptide array, we developed a cell-permeant peptide that serves to inhibit the interaction of these proteins. Using this peptide, we demonstrate that disruption of the β-arrestin 1/ARHGAP21 complex results in a more active ARHGAP21, leading to less-efficient signaling via the angiotensin II type 1A receptor and, thereby, attenuation of stimulated stress fiber formation.
Insights
The scaffolding protein β-arrestin 1 binds ARHGAP21, inhibiting its RhoA GTPase-activating protein (GAP) function. This interaction modulates angiotensin II-stimulated RhoA activation and stress fiber formation.
Area of Science:
- Molecular Biology
- Cell Signaling
- Biochemistry
Background:
- Angiotensin II stimulation activates the small GTPase RhoA, leading to actin reorganization and stress fiber formation.
- The scaffolding protein β-arrestin 1 is crucial for RhoA activation by angiotensin II, but its mechanism is unclear.
Purpose of the Study:
- To identify novel partners and functions of β-arrestin 1 in angiotensin II signaling.
- To elucidate the mechanism by which β-arrestin 1 regulates RhoA activity.
Main Methods:
- Yeast two-hybrid screening
- Peptide array analysis
- In vitro binding assays
- Coimmunoprecipitation
- Cell-permeant peptide inhibition
Main Results:
- β-arrestin 1 directly binds ARHGAP21, inhibiting its RhoA GTPase-activating protein (GAP) function.
- The β-arrestin 1/ARHGAP21 complex level increases upon angiotensin II stimulation, modulating RhoA temporal activation.
- Disruption of the complex enhances ARHGAP21 activity, attenuating angiotensin II type 1A receptor signaling and stress fiber formation.
Conclusions:
- β-arrestin 1 acts as a novel regulator of RhoA activity by inhibiting ARHGAP21.
- The β-arrestin 1/ARHGAP21 interaction is a key determinant of RhoA signaling kinetics and downstream effects.
- Targeting this interaction offers a potential strategy for modulating angiotensin II-mediated cellular responses.
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