Untangling the complexity of opioid receptor function
Распутывая сложность функционирования опиоидных рецепторов
2018-09-24
SCID: 54.1/yredj3zq
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allosteric modulationbiased signalingmu opioid receptoropioid receptor heterodimerizationopioid receptor splice variants
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Abstract (AI)
Mu opioid receptor agonists are among the most powerful analgesic medications but also among the most addictive. The current opioid crisis has energized a quest to develop opioid analgesics that are devoid of untoward effects. Since their discovery in the 1970's, there have been major advances in our understanding of the endogenous opioid systems that these drugs target. Yet many questions remain and the development of non-addictive opioid analgesics has not been achieved. However, access to new molecular, genetic and computational tools have begun to elucidate the structural dynamics of opioid receptors, the scaffolding that links them to intracellular signaling cascades, their cellular trafficking and the distinct ways that various opioid drugs modify them. This mini-review highlights some of the chemical and pharmacological findings and new perspectives that have arisen from studies using these tools. They reveal multiple layers of complexity of opioid receptor function, including a spatiotemporal specificity in opioid receptor-induced cellular signaling, ligand-directed biased signaling, allosteric modulation of ligand interactions, heterodimerization of different opioid receptors, and the existence of slice variants with different ligand specificity. By untangling these layers, basic research into the chemistry and pharmacology of opioid receptors is guiding the way towards deciphering the mysteries of tolerance and physical dependence that have plagued the field and is providing a platform for the development of more effective and safer opioids.
Key Findings
1
Different opioid ligands can produce ligand-directed biased signaling, while allosteric modulation alters ligand–receptor interactions.
2
New molecular, genetic, and computational tools are revealing structural dynamics, intracellular scaffolding, trafficking, and drug-specific regulation of opioid receptors.
3
Opioid receptor function is further diversified by heterodimerization between receptor types and splice variants with distinct ligand specificities.
4
Opioid receptor signaling shows spatiotemporal specificity, meaning cellular effects vary according to when and where signaling occurs.
5
Understanding these mechanisms is clarifying tolerance and physical dependence and may enable safer, more effective opioid analgesics, although non-addictive opioids have not yet been achieved.
Research Object
opioid receptors and their endogenous opioid systems
Research Subject
the structural dynamics, intracellular signaling, trafficking, ligand interactions, heterodimerization, and functional complexity of opioid receptors underlying analgesia, tolerance, and dependence
Publication Details
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2018-09-24
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