Neuroplasticity and major depression, the role of modern antidepressant drugs

被引:70
作者
Serafini, Gianluca [1 ]
机构
[1] Sapienza Univ Rome, St Andrea Hosp, Suicide Prevent Ctr, Dept Neurosci Mental Hlth & Sensory Organs, Via Grottarossa 1035-1039, I-00189 Rome, Italy
关键词
Neuroplasticity; Neurogenesis; Depression; Stress-related changes; Antidepressants;
D O I
10.5498/wjp.v2.i3.49
中图分类号
R749 [精神病学];
学科分类号
100205 ;
摘要
The pathophysiology of depression has been traditionally attributed to a chemical imbalance and critical interactions between genetic and environmental risk factors, and antidepressant drugs suggested to act predominantly amplifying monoaminergic neurotransmission. This conceptualization may be currently considered reductive. The current literature about the pathophysiological mechanisms underlying depression, stress-related disorders and antidepressant treatment was examined. In order to provide a critical overview about neuroplasticity, depression and antidepressant drugs, a detailed Pubmed/Medline, Scopus, PsycLit, and PsycInfo search to identify all papers and book chapters during the period between 1980 and 2011 was performed. Pathological stress and depression determine relevant brain changes such as loss of dendritic spines and synapses, dendritic atrophy as well as reduction of glial cells (both in number and size) in specific areas such as the hippocampus and prefrontal cortex. An increased dendritic arborisation and synaptogenesis may instead be observed in the amygdala as a consequence of depression and stress-related disorders. While hippocampal and prefrontal functioning was impaired, amygdala functioning was abnormally amplified. Most of molecular abnormalities and biological changes of aberrant neuroplasticity may be explained by the action of glutamate. Antidepressant treatment is associated with neurogenesis, gliogenesis, dendritic arborisation, new synapse formation and cell survival both in the hippocampus and prefrontal cortex. Antidepressants (ADs) induce neuroplasticity mechanisms reversing the pathological effects of depression and stress-related disorders. The neuroplasticity hypothesis may explain the therapeutic and prophylactic action of ADs representing a new innovative approach to the pathophysiology of depression and stress-related disorders. (C) 2012 Baishideng. All rights reserved.
引用
收藏
页码:49 / 57
页数:9
相关论文
共 94 条
[1]   Safety and Efficacy of Repeated-Dose Intravenous Ketamine for Treatment-Resistant Depression [J].
aan het Rot, Marije ;
Collins, Katherine A. ;
Murrough, James W. ;
Perez, Andrew M. ;
Reich, David L. ;
Charney, Dennis S. ;
Mathew, Sanjay J. .
BIOLOGICAL PSYCHIATRY, 2010, 67 (02) :139-145
[2]   Effect of agomelatine and its interaction with the daily corticosterone rhythm on progenitor cell proliferation in the dentate gyrus of the adult rat [J].
AlAhmed, Samaher ;
Herbert, Joe .
NEUROPHARMACOLOGY, 2010, 59 (06) :375-379
[3]   Antidepressants increase human hippocampal neurogenesis by activating the glucocorticoid receptor [J].
Anacker, C. ;
Zunszain, P. A. ;
Cattaneo, A. ;
Carvalho, L. A. ;
Garabedian, M. J. ;
Thuret, S. ;
Price, J. ;
Pariante, C. M. .
MOLECULAR PSYCHIATRY, 2011, 16 (07) :738-750
[4]   Increasing prevalence of depression from 2000 to 2006 [J].
Andersen, Ingelise ;
Thielen, Karsten ;
Bech, Per ;
Nygaard, Else ;
Diderichsen, Finn .
SCANDINAVIAN JOURNAL OF PUBLIC HEALTH, 2011, 39 (08) :857-863
[5]  
ANDRADE C, 1990, CONVULSIVE THER, V6, P318
[6]  
Andrade Chittaranjan, 2010, Indian J Psychiatry, V52, P378, DOI 10.4103/0019-5545.74318
[7]   Agomelatine, a new antidepressant, induces regional changes in hippocampal neurogenesis [J].
Banasr, Mounira ;
Soumier, Amelie ;
Hery, Micheline ;
Mocaer, Elisabeth ;
Daszuta, Annie .
BIOLOGICAL PSYCHIATRY, 2006, 59 (11) :1087-1096
[8]   Regulatory phosphorylation of AMPA-type glutamate receptors by CaM-KII during long-term potentiation [J].
Barria, A ;
Muller, D ;
Derkach, V ;
Griffith, LC ;
Soderling, TR .
SCIENCE, 1997, 276 (5321) :2042-2045
[9]  
BECK CHM, 1995, J PSYCHIATR NEUROSCI, V20, P25
[10]   New approaches to antidepressant drug discovery: beyond monoamines [J].
Berton, O ;
Nestler, EJ .
NATURE REVIEWS NEUROSCIENCE, 2006, 7 (02) :137-151