The Gα-interacting protein RGS4 in dorsal root ganglia maintains molecular and behavioral maladaptations in murine pain models

Regulator of G protein signaling 4 (RGS4) is a Gα subunit–interacting protein that modulates the functional responses of various G protein–coupled receptors (GPCRs) and that is present in several components of the nociceptive circuitry. Here, we found that RGS4 in lumbar dorsal root ganglia (DRGs) is required for the maintenance of chronic pain states in mice. Rgs4 knockout in Mrgprd + nonpeptidergic C-fibers was sufficient to attenuate sensory hypersensitivity in several acute and chronic injury models without affecting acute nociceptive responses. Single-nucleus RNA sequencing in ipsilateral lumbar DRGs from mice with prolonged peripheral nerve injury identified cell subset–specific gene expression changes in Rgs4 knockout mice after recovery from mechanical hypersensitivity, including Gabbr2 , which encodes the GABA B receptor, in Mrgprd + fibers. RGS4 competed with Gα i -interacting protein (GINIP) to modulate GABA B receptor signaling, which suppresses neuronal excitability. Analysis of genetically modified mice suggested that imbalances in the interplay between RGS4 and GINIP contribute to the maintenance of sensory hypersensitivity and chronic pain states. Overall, our study reveals critical G protein–modulatory pathways in the DRG that promote the maintenance of sensory hypersensitivity in chronic pain models.

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Publication Details

Journal
Science Signaling
Published
2026-10-06
DOI
https://doi.org/10.1126/scisignal.aed7175
Primary Topic
Pain Mechanisms and Treatments
Type
article
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article

The Gα-interacting protein RGS4 in dorsal root ganglia maintains molecular and behavioral maladaptations in murine pain models

Li Shen, Ilinca M. Giosan, Féodora L. Bertherat, John F. Fullard et al.
Science Signaling
Pain Mechanisms and Treatments
article

The Gα-interacting protein RGS4 in dorsal root ganglia maintains molecular and behavioral maladaptations in murine pain models

Li Shen, Ilinca M. Giosan, Féodora L. Bertherat, John F. Fullard, Alex Luebbers, Bruno Giotti, Jeffrey H. Zimering, Randal A. Serafini, Ekaterina Kintsurashvili, Kerri D. Pryce, Mikel Garcia‐Marcos, Alexander M. Tsankov, Panos Roussos, Aarthi Ramakrishnan, Venetia Zachariou, Madden J. Tuffy, Donghoon Lee, Neelakshi Patne
article en

Abstract

Regulator of G protein signaling 4 (RGS4) is a Gα subunit–interacting protein that modulates the functional responses of various G protein–coupled receptors (GPCRs) and that is present in several components of the nociceptive circuitry. Here, we found that RGS4 in lumbar dorsal root ganglia (DRGs) is required for the maintenance of chronic pain states in mice. Rgs4 knockout in Mrgprd + nonpeptidergic C-fibers was sufficient to attenuate sensory hypersensitivity in several acute and chronic injury models without affecting acute nociceptive responses. Single-nucleus RNA sequencing in ipsilateral lumbar DRGs from mice with prolonged peripheral nerve injury identified cell subset–specific gene expression changes in Rgs4 knockout mice after recovery from mechanical hypersensitivity, including Gabbr2 , which encodes the GABA B receptor, in Mrgprd + fibers. RGS4 competed with Gα i -interacting protein (GINIP) to modulate GABA B receptor signaling, which suppresses neuronal excitability. Analysis of genetically modified mice suggested that imbalances in the interplay between RGS4 and GINIP contribute to the maintenance of sensory hypersensitivity and chronic pain states. Overall, our study reveals critical G protein–modulatory pathways in the DRG that promote the maintenance of sensory hypersensitivity in chronic pain models.

Science SignalingVol. 19(958)
Boston University (US), Icahn School of Medicine at Mount Sinai (US)
Openalex Percentile: Top 12%
Pain Mechanisms and Treatments
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