Target intelligence / Profile preview

Mu opioid receptor, Delta opioid receptor, Kappa opioid receptor (MOR, DOR, KOR)

Target
MOR, DOR, KOR
Molecular classification
G protein-coupled receptor (GPCR), Receptor
01

Overview

The mu, delta, and kappa opioid receptors are three closely related but molecularly distinct G protein-coupled receptors that mediate the physiological and pharmacological effects of endogenous and exogenous opioid compounds. MORs are primarily responsible for analgesic and euphoric effects as well as adverse outcomes such as respiratory depression and addiction. DORs have roles in analgesia, mood regulation, and neuroprotection, and are emerging as targets for psychiatric and neurological disorders. KORs also mediate analgesia but are associated with dysphoria and antireward effects; they are being actively explored for pain, addiction, and mood disorders. All three are widely expressed in the central and peripheral nervous systems and function by inhibiting neuronal excitability and neurotransmitter release, primarily via Gi/o signaling pathways. Their structural dynamics and biased signaling properties are key areas of current research, informing the development of safer and more selective therapeutic agents[1][3][5][6].

Other names
μ-opioid receptor (mu opioid receptor)δ-opioid receptor (delta opioid receptor)κ-opioid receptor (kappa opioid receptor)MOR, DOR, KOROpioid receptor familyOpioid peptide receptorOPRM1 (mu, gene)OPRD1 (delta, gene)OPRK1 (kappa, gene)
02

Mechanism of action

Agonism at GPCRs leading to Gi/o protein signaling (inhibition of adenylyl cyclase, decreased cAMP, reduced neurotransmitter release) Induction of potassium channel opening (hyperpolarization) Inhibition of calcium channel activity (reduced neurotransmitter release) Biased agonism (favoring G-protein vs. β-arrestin signaling) Antagonism (competitive blockade of receptor)[3][5][6]

03

Biological functions

Signal transductionAnalgesia (pain modulation)Regulation of moodControl of gastrointestinal motilityRespiratory regulationNeuroendocrine and immune system modulationStress and reward processing[3][5][6]
04

Disease associations

Pain (acute and chronic)Addiction/substance use disorderDepression and mood disordersNeurological and psychiatric conditionsInflammationOther (e.g., epilepsy, reward pathways)[2][3][5]
05

Safety considerations

Addiction and abuse liability (especially with MOR agonists)Respiratory depression (MOR agonists)Constipation and gastrointestinal hypomotility (MOR and DOR agonists)Dysphoria and hallucinations (KOR agonists)Tolerance and dependenceNeuropsychiatric effects (mood alterations, risk of depression with KOR agonists)Risk of overdose (MOR agonists)[3][5][6]
06

Interacting drugs

Morphine (MOR agonist)

15 more in the full profile.

07

Biomarkers

OPRM1, OPRD1, and OPRK1 gene polymorphisms (associated with opioid response)Endogenous opioid peptide levels (e.g., beta-endorphin, enkephalins, dynorphins)Functional imaging (PET tracers for opioid receptor availability), research context[3][5]

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