NEUROBIOLOGY OF STRESS, DEPRESSION, AND RAPID ACTING ANTIDEPRESSANTS: REMODELING SYNAPTIC CONNECTIONS

被引:165
作者
Duman, Ronald S. [1 ]
机构
[1] Yale Univ, Sch Med, Dept Psychiat, Lab Mol Psychiat, New Haven, CT 06508 USA
关键词
brain-derived neurotrophic factor; glycogen synthase kinase-3; lithium; mechanistic target of rapamycin; Scopolamine; SCOPOLAMINE; HIPPOCAMPUS; INHIBITION; PLASTICITY; PATHOLOGY; BRAIN;
D O I
10.1002/da.22227
中图分类号
B849 [应用心理学];
学科分类号
040203 ;
摘要
Stress and depression are associated with atrophy and loss of neurons in limbic and cortical brain regions that could contribute to the symptoms of depression. Typical monoamine reuptake inhibitor antidepressants have only modest efficacy and require long-term treatment, and are only weakly effective in blocking or reversing these structural changes caused by stress. Recent findings demonstrate that ketamine, an NMDA receptor antagonist, produces rapid antidepressant actions in difficult to treat depressed patients. In addition, preclinical studies demonstrate that ketamine rapidly increases synaptic connections in the prefrontal cortex by increasing glutamate signaling and activation of pathways that control the synthesis of synaptic proteins. Moreover, ketamine rapidly reverses the synaptic deficits caused by exposure to chronic stress in rodent models. Studies of the signaling mechanisms underlying the actions of ketamine have provided novel approaches and targets for new rapid acting antidepressants with decreased side effects, as well as a better understanding of the neurobiology of stress, depression, and treatment response.
引用
收藏
页码:291 / 296
页数:6
相关论文
共 34 条
  • [1] Ketamine for Depression: Where Do We Go from Here?
    Aan Het Rot, Marije
    Zarate, Carlos A., Jr.
    Charney, Dennis S.
    Mathew, Sanjay J.
    [J]. BIOLOGICAL PSYCHIATRY, 2012, 72 (07) : 537 - 547
  • [2] Cell atrophy and loss in depression: reversal by antidepressant treatment
    Banasr, Mounira
    Dwyer, Jason M.
    Duman, Ronald S.
    [J]. CURRENT OPINION IN CELL BIOLOGY, 2011, 23 (06) : 730 - 737
  • [3] The mood-improving actions of antidepressants do not depend on neurogenesis but are associated with neuronal remodeling
    Bessa, J. M.
    Ferreira, D.
    Melo, I.
    Marques, F.
    Cerqueira, J. J.
    Palha, J. A.
    Almeida, O. F. X.
    Sousa, N.
    [J]. MOLECULAR PSYCHIATRY, 2009, 14 (08) : 764 - 773
  • [4] Inhibition of glycogen synthase kinase-3 is necessary for the rapid antidepressant effect of ketamine in mice
    Beurel, E.
    Song, L.
    Jope, R. S.
    [J]. MOLECULAR PSYCHIATRY, 2011, 16 (11) : 1068 - 1070
  • [5] Glia: Regulating Synaptogenesis from Multiple Directions
    Bialas, Allison Rosen
    Stevens, Beth
    [J]. CURRENT BIOLOGY, 2012, 22 (19) : R833 - R835
  • [6] Neuronal Network Plasticity and Recovery From Depression
    Castren, Eero
    [J]. JAMA PSYCHIATRY, 2013, 70 (09) : 983 - 989
  • [7] Brain structural and functional abnormalities in mood disorders: implications for neurocircuitry models of depression
    Drevets, Wayne C.
    Price, Joseph L.
    Furey, Maura L.
    [J]. BRAIN STRUCTURE & FUNCTION, 2008, 213 (1-2) : 93 - 118
  • [8] Replication of Scopolamine's Antidepressant Efficacy in Major Depressive Disorder: A Randomized, Placebo-Controlled Clinical Trial
    Drevets, Wayne C.
    Furey, Maura L.
    [J]. BIOLOGICAL PSYCHIATRY, 2010, 67 (05) : 432 - 438
  • [9] A neurotrophic model for stress-related mood disorders
    Duman, Ronald S.
    Monteggia, Lisa M.
    [J]. BIOLOGICAL PSYCHIATRY, 2006, 59 (12) : 1116 - 1127
  • [10] Synaptic Dysfunction in Depression: Potential Therapeutic Targets
    Duman, Ronald S.
    Aghajanian, George K.
    [J]. SCIENCE, 2012, 338 (6103) : 68 - 72