Proteomic analysis of rat hippocampus and frontal cortex after chronic treatment with fluoxetine or putative novel antidepressants: CRF1 and NK1 receptor antagonists

被引:57
作者
Carboni, Lucia
Vighini, Miriam
Piubelli, Chiara
Castelletti, Laura
Milli, Alberto
Domenici, Enrico
机构
[1] GlaxoSmithKline, Psychiat CEDD, Dept Biol, I-37135 Verona, Italy
[2] Univ Verona, Dept Agr & Ind Biotechnol, I-37100 Verona, Italy
[3] GlaxoSmithKline, Dept Computat Analyt & Struct Sci, Verona, Italy
关键词
2D electrophoresis; antidepressive agents; proteomics; neurokinin1; receptor; corticotropin-releasing hormone; serotonin uptake inhibitors;
D O I
10.1016/j.euroneuro.2006.01.007
中图分类号
R74 [神经病学与精神病学];
学科分类号
摘要
Chronic administration of antidepressants is required for their efficacy, suggesting the involvement of long-term modifications. As the impact of antidepressant treatment on the brain molecular machinery is not completely understood, we performed a proteomic analysis of rat hippocampus and frontal cortex after chronic treatment with fluoxetine, with an NK1 receptor antagonist, GR205171, and a CRF receptor 1 antagonist, DMP696. After 2D electrophoresis, protein expression levels were compared with both univariate and multivariate statistical analyses and identified by mass spectrometry. All treatments modified levels of actin isoforms, whereas both fluoxetine and GR205171 reduced synapsin II. Fluoxetine treatment increased ERK2 and NP25 and decreased vacuolar ATP synthase. After GR205171 treatment, protein disulphide isomerase A was reduced; dynamin 1 and aldose reductase increased. DMP696 modulated DRP2, pyruvate kinase, LDH and ATP synthase. Although each compound induced a specific pattern of protein modulation, data suggest that antidepressants share the ability of modulating neural plasticity. (c) 2006 Elsevier B.V. and ECNP. All rights reserved.
引用
收藏
页码:521 / 537
页数:17
相关论文
共 67 条
[1]
Antidepressant Properties of Substance P Antagonists: Relationship to Monoaminergic Mechanisms? [J].
Adell, Albert .
CNS & NEUROLOGICAL DISORDERS-DRUG TARGETS, 2004, 3 (02) :113-121
[2]
Blockade of CRF1 or V1b receptors reverses stress-induced suppression of neurogenesis in a mouse model of depression [J].
Alonso, R ;
Griebel, G ;
Pavone, G ;
Stemmelin, J ;
Le Fur, G ;
Soubrié, P .
MOLECULAR PSYCHIATRY, 2004, 9 (03) :278-286
[3]
Proteomic identification of oxidatively modified proteins in Alzheimer's disease brain.: Part II:: dihydropyrimidinase-related protein 2, α-enolase and heat shock cognate 71 [J].
Castegna, A ;
Aksenov, M ;
Thongboonkerd, V ;
Klein, JB ;
Pierce, WM ;
Booze, R ;
Markesbery, WR ;
Butterfield, DA .
JOURNAL OF NEUROCHEMISTRY, 2002, 82 (06) :1524-1532
[4]
Neurotrophic effects of antidepressant drugs [J].
Castrén, E .
CURRENT OPINION IN PHARMACOLOGY, 2004, 4 (01) :58-64
[5]
Corticotropin-releasing hormone (CRH) in psychiatry: from stress to psychopathology [J].
Claes, SJ .
ANNALS OF MEDICINE, 2004, 36 (01) :50-61
[6]
Antidepressants and neuroplasticity [J].
D'Sa, C ;
Duman, RS .
BIPOLAR DISORDERS, 2002, 4 (03) :183-194
[7]
G protein signaling and the molecular basis of antidepressant action [J].
Donati, RJ ;
Rasenick, MM .
LIFE SCIENCES, 2003, 73 (01) :1-17
[8]
Subgenual prefrontal cortex abnormalities in mood disorders [J].
Drevets, WC ;
Price, JL ;
Simpson, JR ;
Todd, RD ;
Reich, T ;
Vannier, M ;
Raichle, ME .
NATURE, 1997, 386 (6627) :824-827
[9]
cDNA gene expression profile of rat hippocampus after chronic treatment with antidepressant drugs [J].
Drigues, N ;
Poltyrev, T ;
Bejar, C ;
Weinstock, M ;
Youdim, MBH .
JOURNAL OF NEURAL TRANSMISSION, 2003, 110 (12) :1413-1436
[10]
Duman RS, 2002, EUR PSYCHIAT, V17, p306S