Supraspinal melatonin MT2 receptor agonism alleviates pain via a neural circuit that recruits mu opioid receptors
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B. Kieffer | D. De Gregorio | L. Posa | M. López-Canúl | G. Gobbi | E. Darcq | L. Luongo | P. Romualdi | S. Candeletti | L. Rullo | Qianzi He | Leora Pearl-Dowler | M. López-Canul
[1] Q. Gong,et al. Structural basis of the ligand binding and signaling mechanism of melatonin receptors , 2022, Nature communications.
[2] H. Mushiake,et al. Heterogeneous GAD65 Expression in Subtypes of GABAergic Neurons Across Layers of the Cerebral Cortex and Hippocampus , 2021, Frontiers in Behavioral Neuroscience.
[3] L. Posa,et al. Nociceptive behavior and central neuropeptidergic dysregulations in male and female mice of a Fabry disease animal model , 2021, Brain Research Bulletin.
[4] B. Fischer,et al. The opioid death crisis in Canada: crucial lessons for public health. , 2019, The Lancet. Public health.
[5] E. Cecon,et al. Melatonin receptors: molecular pharmacology and signalling in the context of system bias , 2018, British journal of pharmacology.
[6] Likang Xu,et al. Annual surveillance report of drug-related risks and outcomes -- United States, 2017 , 2017 .
[7] G. Paxinos,et al. Melatonin receptors: distribution in mammalian brain and their respective putative functions , 2017, Brain Structure and Function.
[8] D. De Gregorio,et al. Targeting Melatonin MT2 Receptors: A Novel Pharmacological Avenue for Inflammatory and Neuropathic Pain. , 2017, Current medicinal chemistry.
[9] Y. Chau,et al. Melatonin relieves neuropathic allodynia through spinal MT2‐enhanced PP2Ac and downstream HDAC4 shuttling‐dependent epigenetic modification of hmgb1 transcription , 2016, Journal of pineal research.
[10] S. Comai,et al. Antinociceptive properties of selective MT(2) melatonin receptor partial agonists. , 2015, European journal of pharmacology.
[11] L. Posa,et al. Methadone Reverses Analgesic Tolerance Induced by Morphine Pretreatment , 2015, The international journal of neuropsychopharmacology.
[12] J. Hirrlinger,et al. A Transgenic Mouse Line Expressing the Red Fluorescent Protein tdTomato in GABAergic Neurons , 2015, PloS one.
[13] L. Descarries,et al. Anatomical and cellular localization of melatonin MT1 and MT2 receptors in the adult rat brain , 2015, Journal of pineal research.
[14] M. Millan,et al. Convergence of Melatonin and Serotonin (5-HT) Signaling at MT2/5-HT2C Receptor Heteromers* , 2015, The Journal of Biological Chemistry.
[15] G. Tarzia,et al. Selective melatonin MT2 receptor ligands relieve neuropathic pain through modulation of brainstem descending antinociceptive pathways , 2015, Pain.
[16] L. Devi,et al. Revolution in GPCR signalling: opioid receptor heteromers as novel therapeutic targets: IUPHAR Review 10 , 2014, British journal of pharmacology.
[17] P. Veinante,et al. In vivo neuronal co-expression of mu and delta opioid receptors uncovers new therapeutic perspectives. , 2014, Receptors & clinical investigation.
[18] F. Porreca,et al. Descending pain modulation and chronification of pain , 2014, Current opinion in supportive and palliative care.
[19] P. Veinante,et al. A mu–delta opioid receptor brain atlas reveals neuronal co-occurrence in subcortical networks , 2014, Brain Structure and Function.
[20] P. Barbaresi,et al. Differential distribution of parvalbumin- and calbindin-D28K-immunoreactive neurons in the rat periaqueductal gray matter and their colocalization with enzymes producing nitric oxide , 2013, Brain Research Bulletin.
[21] J. Wordliczek,et al. Exogenous melatonin abolishes mechanical allodynia but not thermal hyperalgesia in neuropathic pain. The role of the opioid system and benzodiazepine-gabaergic mechanism. , 2012, Journal of physiology and pharmacology : an official journal of the Polish Physiological Society.
[22] R. Gereau,et al. A Novel Behavioral Assay for Measuring Cold Sensation in Mice , 2012, PloS one.
[23] R. Al-Hasani,et al. Molecular mechanisms of opioid receptor-dependent signaling and behavior. , 2011, Anesthesiology.
[24] J. Rosenberg,et al. Analgesic effects of melatonin: a review of current evidence from experimental and clinical studies , 2011, Journal of pineal research.
[25] M. Mor,et al. N‐(Anilinoethyl)amides: Design and Synthesis of Metabolically Stable, Selective Melatonin Receptor Ligands , 2009, ChemMedChem.
[26] K. Befort,et al. Reward processing by the opioid system in the brain. , 2009, Physiological reviews.
[27] V. Hruby,et al. Neuropathic pain is maintained by brainstem neurons co-expressing opioid and cholecystokinin receptors. , 2009, Brain : a journal of neurology.
[28] V. Granados-Soto,et al. Melatonin reduces formalin-induced nociception and tactile allodynia in diabetic rats. , 2007, European journal of pharmacology.
[29] M. Mor,et al. N-(substituted-anilinoethyl)amides: design, synthesis, and pharmacological characterization of a new class of melatonin receptor ligands. , 2007, Journal of medicinal chemistry.
[30] V. Granados-Soto,et al. Oral and spinal melatonin reduces tactile allodynia in rats via activation of MT2 and opioid receptors , 2007, PAIN.
[31] C. Cahill,et al. Spinal administration of a δ opioid receptor agonist attenuates hyperalgesia and allodynia in a rat model of neuropathic pain , 2007 .
[32] C. Cahill,et al. Anti-allodynic effects of peripheral delta opioid receptors in neuropathic pain , 2007, Pain.
[33] Ya-li Peng,et al. Effects of melatonin on orphanin FQ/nociceptin-induced hyperalgesia in mice , 2006, Brain Research.
[34] R. Maldonado,et al. Neuropathic pain is enhanced in δ‐opioid receptor knockout mice , 2006 .
[35] Amornpan Ajjimaporn,et al. Melatonin exerts its analgesic actions not by binding to opioid receptor subtypes but by increasing the release of β-endorphin an endogenous opioid , 2005, Brain Research Bulletin.
[36] H. Fields. State-dependent opioid control of pain , 2004, Nature Reviews Neuroscience.
[37] W. Willis,et al. Effects of intrathecal injections of melatonin analogs on capsaicin-induced secondary mechanical allodynia and hyperalgesia in rats , 2004, Pain.
[38] T. Finnegan,et al. Activation of mu-opioid receptors inhibits synaptic inputs to spinally projecting rostral ventromedial medulla neurons. , 2004, The Journal of pharmacology and experimental therapeutics.
[39] I. Sora,et al. Nerve Injury Induces a Tonic Bilateral &mgr;-Opioid Receptor–mediated Inhibitory Effect on Mechanical Allodynia in Mice , 2004, Anesthesiology.
[40] V. Gribkoff,et al. Targeted Disruption of the Mouse Mel1b Melatonin Receptor , 2003, Molecular and Cellular Biology.
[41] M. Wessendorf,et al. Rostral Ventromedial Medulla Neurons That Project to the Spinal Cord Express Multiple Opioid Receptor Phenotypes , 2002, The Journal of Neuroscience.
[42] G. Mckhann,et al. Central nervous system mechanisms of pain , 2002 .
[43] George Paxinos,et al. The Mouse Brain in Stereotaxic Coordinates , 2001 .
[44] C. Woolf,et al. Spared nerve injury: an animal model of persistent peripheral neuropathic pain , 2000, Pain.
[45] A. Dierich,et al. Mice deficient for δ- and μ-opioid receptors exhibit opposing alterations of emotional responses , 2000, Nature Genetics.
[46] S. Zeitlin,et al. CaMKIIα‐cre transgene expression and recombination patterns in the mouse brain , 2000 .
[47] D. Pfaff,et al. Frequent colocalization of mu opioid and NMDA‐type glutamate receptors at postsynaptic sites in periaqueductal gray neurons , 1999, The Journal of comparative neurology.
[48] M. Connor,et al. How opioids inhibit GABA-mediated neurotransmission , 1997, Nature.
[49] T. Kosaka,et al. Quantitative analysis of GAD65 and GAD67 immunoreactivities in somata of GABAergic neurons in the mouse hippocampus proper (CA1 and CA3 regions), with special reference to parvalbumin-containing neurons , 1997, Brain Research.
[50] David J. Anderson,et al. Subregion- and Cell Type–Restricted Gene Knockout in Mouse Brain , 1996, Cell.
[51] Brigitte L. Kieffer,et al. Loss of morphine-induced analgesia, reward effect and withdrawal symptoms in mice lacking the µ-opioid-receptor gene , 1996, Nature.
[52] H. Fields,et al. Disinhibition of off-cells and antinociception produced by an opioid action within the rostral ventromedial medulla , 1994, Neuroscience.
[53] M. Heinricher,et al. Interference with GABA transmission in the rostral ventromedial medulla: Disinhibition of off-cells as a central mechanism in nociceptive modulation , 1994, Neuroscience.
[54] T. Yaksh,et al. Quantitative assessment of tactile allodynia in the rat paw , 1994, Journal of Neuroscience Methods.
[55] H. Fields,et al. Direct and indirect actions of morphine on medullary neurons that modulate nociception , 1992, Neuroscience.
[56] D. Cardinali,et al. Time-dependent melatonin analgesia in mice: inhibition by opiate or benzodiazepine antagonism. , 1991, European journal of pharmacology.
[57] S. Holtzman,et al. Delta opioid antagonist, naltrindole, selectively blocks analgesia induced by DPDPE but not DAGO or morphine , 1991, Pharmacology Biochemistry and Behavior.
[58] M. Celio,et al. Calbindin D-28k and parvalbumin in the rat nervous system , 1990, Neuroscience.
[59] L. Kocher. Systemic naloxone does not affect pain related behaviour in the formalin test in rat , 1987, PAIN.
[60] W. D. Winters,et al. Involvement of the pineal gland and melatonin in murine analgesia. , 1981, Life sciences.
[61] S. Kent,et al. Does melatonin modulate beta-endorphin, corticosterone, and pain threshold? , 2000, Life sciences.
[62] P. Mason,et al. Neurotransmitters in nociceptive modulatory circuits. , 1991, Annual review of neuroscience.
[63] N. Barbaro,et al. Brain stem neuronal circuitry underlying the antinociceptive action of opiates. , 1988, Progress in brain research.
[64] W. Willis. Central nervous system mechanisms for pain modulation. , 1985, Applied neurophysiology.
[65] G. Paxinos,et al. The Rat Brain in Stereotaxic Coordinates , 1983 .
[66] W. Dixon,et al. Efficient analysis of experimental observations. , 1980, Annual review of pharmacology and toxicology.