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Published on: July 3, 2015
Ligand-directed signalling within the opioid receptor family
Amynah A Pradhan1, Monique L Smith, Brigitte L Kieffer
1Semel Institute for Neuropsychiatry & Human Behavior, University of California Los Angeles, Los Angeles, CA 90024-1759, USA. amynahpradhan@ucla.edu
Abstract:
The classic model of GPCR activation proposed that all agonists induce the same active receptor conformation. However, research over the last decade has shown that GPCRs exist in multiple conformations, and that agonists can stabilize different active states. The distinct receptor conformations induced by ligands result in distinct receptor-effector complexes, which produce varying levels of activation or inhibition of subsequent signalling cascades. This concept, referred to as ligand-directed signalling or biased agonism has important biological and therapeutic implications. Opioid receptors are G(i/o) GPCRs and regulate a number of important physiological functions, including pain, reward, mood, stress, gastrointestinal transport and respiration. A number of in vitro studies have shown biased agonism at the three opioid receptors (µ, δ and κ); however, in vivo consequences of this phenomenon have only recently been demonstrated. For the µ and δ opioid receptors, the majority of reported ligand selective behavioural effects are observed as differential adaptations to repeated drug administration. In terms of the κ opioid receptor, clear links between ligand-selective signalling events and specific in vivo responses have been recently characterized. Drugs for all three receptors are either already used or are being developed for clinical applications. There is clearly a need to better characterize the specific events that occur following agonist stimulation and how these relate to in vivo responses. This understanding could eventually lead to the development of tailor-made pharmacotherapies where advantageous drug effects can be selectively targeted over adverse effects.
Insights
Ligand-directed signaling reveals that different drugs can activate opioid receptors in unique ways, leading to varied physiological effects. Understanding these biased agonism pathways is key to developing safer, more targeted pain and addiction therapies.
Area of Science:
- Pharmacology and Molecular Biology
- G protein-coupled receptor (GPCR) research
- Neuroscience
Background:
- The traditional view of GPCR activation assumed a single active conformation for all agonists.
- Emerging evidence indicates GPCRs adopt multiple conformations, stabilized by different ligands, leading to biased agonism.
- Opioid receptors (µ, δ, κ) are crucial for physiological functions like pain, reward, and respiration.
Purpose of the Study:
- To explore the concept of biased agonism at opioid receptors.
- To investigate the in vivo consequences of ligand-directed signaling.
- To bridge the gap between in vitro findings and in vivo responses for opioid receptor modulation.
Main Methods:
- Review and synthesis of in vitro and in vivo studies on opioid receptor signaling.
- Analysis of ligand-selective effects on opioid receptor conformations and downstream signaling cascades.
- Correlation of specific signaling events with observed behavioral and physiological outcomes in vivo.
Main Results:
- In vitro studies confirm biased agonism at µ, δ, and κ opioid receptors.
- In vivo consequences of biased agonism are increasingly demonstrated, particularly for µ and δ receptors via adaptations to repeated drug administration.
- Recent characterization links ligand-selective signaling of the κ opioid receptor to specific in vivo responses.
Conclusions:
- Biased agonism at opioid receptors has significant biological and therapeutic implications.
- Understanding ligand-directed signaling is essential for developing targeted opioid-based pharmacotherapies.
- Future research should focus on characterizing specific agonist-induced events to selectively target beneficial effects and avoid adverse ones.
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