Effects of Ketamine and Ketamine Metabolites on Evoked Striatal Dopamine Release, Dopamine Receptors, and Monoamine Transporters

被引:85
|
作者
Can, Adem [1 ,4 ]
Zanos, Panos [1 ]
Moaddel, Ruin [5 ]
Kang, Hye Jin [6 ]
Dossou, Katinia S. S. [5 ]
Wainer, Irving W. [5 ,7 ]
Cheer, Joseph F. [1 ,3 ]
Frost, Douglas O. [1 ,2 ]
Huang, Xi-Ping [6 ]
Gould, Todd D. [1 ,2 ,3 ]
机构
[1] Univ Maryland, Sch Med, Dept Psychiat, Room 936 MSTF,685 West Baltimore St, Baltimore, MD 21201 USA
[2] Univ Maryland, Sch Med, Dept Pharmacol, Baltimore, MD 21201 USA
[3] Univ Maryland, Sch Med, Dept Anat & Neurobiol, Baltimore, MD 21201 USA
[4] Notre Dame Maryland Univ, Dept Psychol, Baltimore, MD USA
[5] NIA, Biomed Res Ctr, NIH, Baltimore, MD 21224 USA
[6] Univ N Carolina, Sch Med, Natl Inst Mental Hlth, Dept Pharmacol,Psychoact Drug Screening Program, Chapel Hill, NC USA
[7] Mitchell Woods Pharmaceut, Shelton, CT USA
关键词
METHYL-D-ASPARTATE; RAT PREFRONTAL CORTEX; ANTIDEPRESSANT EFFICACY; NMDA ANTAGONIST; IN-VITRO; DEPRESSION; SEROTONIN; NEURONS; MK-801; INHIBITION;
D O I
10.1124/jpet.116.235838
中图分类号
R9 [药学];
学科分类号
1007 ;
摘要
Following administration at subanesthetic doses, (R,S)-ketamine (ketamine) induces rapid and robust relief from symptoms of depression in treatment-refractory depressed patients. Previous studies suggest that ketamine's antidepressant properties involve enhancement of dopamine (DA) neurotransmission. Ketamine is rapidly metabolized to (2S,6S)- and (2R,6R)-hydroxynorketamine (HNK), which have antidepressant actions independent of N-methyl-D-aspartate glutamate receptor inhibition. These antidepressant actions of (2S, 6S; 2R, 6R)- HNK, or other metabolites, as well as ketamine's side effects, including abuse potential, may be related to direct effects on components of the dopaminergic (DAergic) system. Here, brain and blood distribution/clearance and pharmacodynamic analyses at DA receptors (D1-D5) and the DA, norepinephrine, and serotonin transporters were assessed for ketamine and its major metabolites (norketamine, dehydronorketamine, and HNKs). Additionally, we measured electrically evoked mesolimbic DA release and decay using fast-scan cyclic voltammetry following acute administration of subanesthetic doses of ketamine (2, 10, and 50 mg/kg, i.p.). Following ketamine injection, ketamine, norketamine, and multiple hydroxynorketamines were detected in the plasma and brain of mice. Dehydronorketamine was detectable in plasma, but concentrations were below detectable limits in the brain. Ketamine did not alter the magnitude or kinetics of evoked DA release in the nucleus accumbens in anesthetized mice. Neither ketamine's enantiomers nor its metabolites had affinity for DA receptors or the DA, noradrenaline, and serotonin transporters ( up to 10 mu M). These results suggest that neither the side effects nor antidepressant actions of ketamine or ketamine metabolites are associated with direct effects on mesolimbic DAergic neurotransmission. Previously observed in vivo changes in DAergic neurotransmission following ketamine administration are likely indirect.
引用
收藏
页码:159 / 170
页数:12
相关论文
共 50 条
  • [21] Ketamine effects on mammalian target of rapamycin signaling in the mouse limbic system depend on functional dopamine D3 receptors
    Chiamulera, Cristiano
    di Chio, Marzia
    Cavalleri, Laura
    Venniro, Marco
    Padovani, Laura
    Collo, Ginetta
    NEUROREPORT, 2018, 29 (08) : 615 - 620
  • [22] Dopamine D2/D3 but not dopamine D1 receptors are involved in the rapid antidepressant-like effects of ketamine in the forced swim test
    Li, Yan
    Zhu, Zhuo R.
    Ou, Bao C.
    Wang, Ya Q.
    Tan, Zhou B.
    Deng, Chang M.
    Gao, Yi Y.
    Tang, Ming
    So, Ji H.
    Mu, Yang L.
    Zhang, Lan Q.
    BEHAVIOURAL BRAIN RESEARCH, 2015, 279 : 100 - 105
  • [23] Repeated but Not Single Administration of Ketamine Prolongs Increases of the Firing Activity of Norepinephrine and Dopamine Neurons
    Iro, Chidiebere M.
    Hamati, Rami
    El Mansari, Mostafa
    Blier, Pierre
    INTERNATIONAL JOURNAL OF NEUROPSYCHOPHARMACOLOGY, 2021, 24 (07) : 570 - 579
  • [24] Antidepressant effects of ketamine on depression-related phenotypes and dopamine dysfunction in rodent models of stress
    Rincon-Cortes, Millie
    Grace, Anthony A.
    BEHAVIOURAL BRAIN RESEARCH, 2020, 379
  • [25] Striatal Dopamine Release Regulation by the Cholinergic Properties of the Smokeless Tobacco, Gutkha
    O'Neill, Brian
    Lauterstein, Dana
    Patel, Jyoti C.
    Zelikoff, Judith T.
    Rice, Margaret E.
    ACS CHEMICAL NEUROSCIENCE, 2015, 6 (06): : 832 - 837
  • [26] Prolonged treatment with pramipexole promotes physical interaction of striatal dopamine D3 autoreceptors with dopamine transporters to reduce dopamine uptake
    Castro-Hernandez, Javier
    Afonso-Oramas, Domingo
    Cruz-Muros, Ignacio
    Salas-Hernandez, Josmar
    Barroso-Chinea, Pedro
    Moratalla, Rosario
    Millan, Mark J.
    Gonzalez-Hernandez, Tomas
    NEUROBIOLOGY OF DISEASE, 2015, 74 : 325 - 335
  • [27] Mediation of ionotropic glutamate receptors in domoic acid-induced striatal dopamine release in rats
    Quintela, BA
    Durán, R
    Alfonso, M
    EUROPEAN JOURNAL OF PHARMACOLOGY, 2000, 401 (02) : 173 - 177
  • [28] Implications for Combination Therapy of Selective Monoamine Reuptake Inhibitors on Dopamine Transporters
    Ahn, Hyomin
    Park, Kichul
    Kim, Dongyoung
    Chi, Sung-Gil
    Choi, Kee-Hyun
    Han, Seo-Jung
    Song, Chiman
    BIOMEDICINES, 2023, 11 (10)
  • [29] Serotonin-mediated striatal dopamine release involves the dopamine uptake site and the serotonin receptor
    Sershen, H
    Hashim, A
    Lajtha, A
    BRAIN RESEARCH BULLETIN, 2000, 53 (03) : 353 - 357
  • [30] Long-term alcohol consumption alters dorsal striatal dopamine release and regulation by D2 dopamine receptors in rhesus macaques
    Salinas, Armando G.
    Mateo, Yolanda
    Carlson, Verginia C. Cuzon
    Stinnett, Gwen S.
    Luo, Guoxiang
    Seasholtz, Audrey F.
    Grant, Kathleen A.
    Lovinger, David M.
    NEUROPSYCHOPHARMACOLOGY, 2021, 46 (08) : 1432 - 1441