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Measuring G-protein-coupled Receptor Signaling via Radio-labeled GTP Binding
Published on: June 9, 2017
μ-Opioid receptor coupling to Gα(o) plays an important role in opioid antinociception
Jennifer T Lamberts1, Emily M Jutkiewicz, Richard M Mortensen
1Department of Pharmacology, University of Michigan Medical School, Ann Arbor, MI, USA.
Abstract:
Opioid analgesics elicit their effects via activation of the mu-opioid receptor (MOR), a G protein-coupled receptor known to interact with Gα(i/o)-type G proteins. Work in vitro has suggested that MOR couples preferentially to the abundant brain Gα(i/o) isoform, Gα(o). However, studies in vivo evaluating morphine-mediated antinociception have not supported these findings. The aim of the present work was to evaluate the contribution of Gα(o) to MOR-dependent signaling by measuring both antinociceptive and biochemical endpoints in a Gα(o) null transgenic mouse strain. Male wild-type and Gα(o) heterozygous null (Gα(o) ⁺/⁻) mice were tested for opioid antinociception in the hot plate test or the warm-water tail withdrawal test as measures of supraspinal or spinal antinociception, respectively. Reduction in Gα(o) levels attenuated the supraspinal antinociception produced by morphine, methadone, and nalbuphine, with the magnitude of suppression dependent on agonist efficacy. This was explained by a reduction in both high-affinity MOR expression and MOR agonist-stimulated G protein activation in whole brain homogenates from Gα(o) ⁺/⁻ and Gα(o) homozygous null (Gα(o)⁻/⁻) mice, compared with wild-type littermates. On the other hand, morphine spinal antinociception was not different between Gα(o) ⁺/⁻ and wild-type mice and high-affinity MOR expression was unchanged in spinal cord tissue. However, the action of the partial agonist nalbuphine was compromised, showing that reduction in Gα(o) protein does decrease spinal antinociception, but suggesting a higher Gα(o) protein reserve. These results provide the first in vivo evidence that Gα(o) contributes to maximally efficient MOR signaling and antinociception.
Insights
The Gα(o) protein is crucial for effective mu-opioid receptor (MOR) signaling and pain relief in vivo. Reducing Gα(o) levels impairs supraspinal antinociception, highlighting its role in MOR-dependent pain management.
Area of Science:
- Neuroscience
- Pharmacology
- Molecular Biology
Background:
- Opioid analgesics activate the mu-opioid receptor (MOR), a G protein-coupled receptor.
- In vitro studies suggest MOR preferentially couples to the Gα(i/o) isoform, Gα(o).
- In vivo studies have not consistently supported this preferential coupling for morphine antinociception.
Purpose of the Study:
- To investigate the in vivo contribution of Gα(o) to MOR-dependent signaling.
- To measure antinociceptive and biochemical endpoints in Gα(o) null mice.
- To clarify the role of Gα(o) in MOR signaling and antinociception.
Main Methods:
- Utilized Gα(o) null transgenic mouse strains (heterozygous and homozygous).
- Assessed antinociception using hot plate (supraspinal) and warm-water tail withdrawal (spinal) tests.
- Measured high-affinity MOR expression and G protein activation in brain and spinal cord homogenates.
Main Results:
- Reduced Gα(o) levels attenuated supraspinal antinociception for morphine, methadone, and nalbuphine.
- This attenuation correlated with decreased high-affinity MOR expression and G protein activation in the brain.
- Spinal antinociception for morphine was unaffected, but nalbuphine's action was compromised, suggesting a Gα(o) reserve.
Conclusions:
- Provides the first in vivo evidence for Gα(o)'s contribution to MOR signaling.
- Gα(o) is essential for maximal MOR signaling efficiency and antinociception, particularly supraspinally.
- The findings reconcile in vitro and in vivo data regarding MOR-G protein coupling in pain pathways.
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