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Updated: Apr 8, 2026

Parallel Interrogation of β-Arrestin2 Recruitment for Ligand Screening on a GPCR-Wide Scale using PRESTO-Tango Assay
Published on: March 10, 2020
Specificity of arrestin subtypes in regulating airway smooth muscle G protein-coupled receptor signaling and function
Tonio Pera1, Akhil Hegde1, Deepak A Deshpande1
1*Department of Medicine, Division of Pulmonary and Critical Care Medicine, Center for Translational Medicine, Jane and Leonard Korman Lung Center, Thomas Jefferson University, Philadelphia, Pennsylvania, USA; and Division of Pulmonary, Allergy, and Critical Care Medicine, Duke University Medical Center, Durham, North Carolina, USA.
Abstract:
Arrestins have been shown to regulate numerous G protein-coupled receptors (GPCRs) in studies employing receptor/arrestin overexpression in artificial cell systems. Which arrestin isoforms regulate which GPCRs in primary cell types is poorly understood. We sought to determine the effect of β-arrestin-1 or β-arrestin-2 inhibition or gene ablation on signaling and function of multiple GPCRs endogenously expressed in airway smooth muscle (ASM). In vitro [second messenger (calcium, cAMP generation)], ex vivo (ASM tension generation in suspended airway), and in vivo (invasive airway resistance) analyses were performed on human ASM cells and murine airways/whole animal subject to β-arrestin-1 or -2 knockdown or knockout (KO). In both human and murine model systems, knockdown or KO of β-arrestin-2 relative to control missense small interfering RNA or wild-type mice selectively increased (40-60%) β2-adrenoceptor signaling and function. β-arrestin-1 knockdown or KO had no effect on signaling and function of β2-adrenoceptor or numerous procontractile GPCRs, but selectively inhibited M3 muscarinic acetylcholine receptor signaling (∼50%) and function (∼25% ex vivo, >50% in vivo) without affecting EC50 values. Arrestin subtypes differentially regulate ASM GPCRs and β-arrestin-1 inhibition represents a novel approach to managing bronchospasm in obstructive lung diseases.
Insights
Beta-arrestin-2 enhances beta2-adrenoceptor function, while beta-arrestin-1 inhibits M3 muscarinic receptor signaling in airway smooth muscle. Beta-arrestin-1 inhibition may treat bronchospasm.
Area of Science:
- Pharmacology
- Cell Biology
- Respiratory Medicine
Background:
- Arrestins regulate G protein-coupled receptors (GPCRs), but their roles in primary cells are unclear.
- Understanding arrestin isoform-specific GPCR regulation is crucial for therapeutic development.
Purpose of the Study:
- To investigate the distinct roles of beta-arrestin-1 and beta-arrestin-2 in regulating endogenous GPCRs within airway smooth muscle (ASM).
- To assess the impact of beta-arrestin inhibition or gene ablation on ASM signaling and function.
Main Methods:
- Utilized in vitro, ex vivo, and in vivo analyses in human ASM cells and murine models.
- Employed knockdown or knockout strategies for beta-arrestin-1 and beta-arrestin-2.
- Measured second messenger signaling (calcium, cAMP), ASM tension, and airway resistance.
Main Results:
- Beta-arrestin-2 inhibition/ablation selectively enhanced beta2-adrenoceptor signaling and function (40-60%) in human and murine ASM.
- Beta-arrestin-1 inhibition/ablation selectively impaired M3 muscarinic acetylcholine receptor signaling (~50%) and function (~25% ex vivo, >50% in vivo).
- Beta-arrestin-1 manipulation did not affect beta2-adrenoceptor function or procontractile GPCRs.
Conclusions:
- Arrestin subtypes differentially regulate GPCRs in ASM.
- Beta-arrestin-1 inhibition presents a potential therapeutic strategy for managing bronchospasm in obstructive lung diseases.
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