Profiling of behavioral changes and hippocampal gene expression in mice chronically treated with the SSRI paroxetine

被引:88
|
作者
Sillaber, Inge [1 ,2 ]
Panhuysen, Markus [1 ,2 ]
Henniger, Markus S. H. [1 ,2 ]
Ohl, Frauke [1 ]
Kuehne, Claudia [1 ]
Puetz, Benno [1 ]
Pohl, Thomas [1 ,2 ]
Deussing, Jan M. [1 ,3 ]
Paez-Pereda, Marcelo [1 ,2 ]
Holsboer, Florian [1 ]
机构
[1] Max Planck Inst Psychiat, D-80804 Munich, Germany
[2] Affectis Pharmaceut AG, D-80804 Munich, Germany
[3] GSF Natl Res Ctr Environm & Hlth, Inst Dev Genet, D-85764 Neuherberg, Germany
关键词
antidepressant; behavior; hippocampus; microarray; neurogenesis; neuroplasiticity;
D O I
10.1007/s00213-008-1232-6
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Introduction Monoamine-based antidepressants inhibit neurotransmitter reuptake within short time. However, it commonly takes several weeks until clinical symptoms start to resolve-indicating the involvement of effects distant from reuptake inhibition. Objective To unravel other mechanisms involved in drug action, a "reverse" pharmacological approach was applied to determine antidepressant-induced alterations of hippocampal gene expression. Materiasl and methods The behavioral response to long-term paroxetine administration of male DBA/2Ola mice was assessed by the forced swim test (FST), the modified hole board (mHB), and the dark/light box. Hippocampi of test-naive mice were dissected, and changes in gene expression by paroxetine treatment were investigated by means of microarray technology. Results and discussion Robust effects of paroxetine on passive stress-coping behavior in the FST were observed. Furthermore, anxiolytic properties of long-term antidepressant treatment could be identified in DBA mice in both, the mHB and dark/light box. Analysis of microarray results revealed a list of 60 genes differentially regulated by chronic paroxetine treatment. Preproenkephalin 1 and inhibin beta-A showed the highest level of transcriptional change. Furthermore, a number of candidates involved in neuroplasticity/neurogenesis emerged (e.g., Bdnf, Gfap, Vim, Sox11, Egr1, Stat3). Seven selected candidates were confirmed by in situ hybridization. Additional immunofluorescence colocalization studies of GFAP and vimentin showed more positive cells to be detected in long-term paroxetine-treated DBA mice. Conclusion Candidate genes identified in the current study using a mouse strain validated for its responsiveness to long-term paroxetine treatment add, in our opinion, to unraveling the mechanism of action of paroxetine as a representative for SSRIs.
引用
收藏
页码:557 / 572
页数:16
相关论文
共 50 条
  • [21] Gene expression profiling of gastrocnemius of "minimuscle" mice
    Burniston, Jatin G.
    Meek, Thomas H.
    Pandey, Sachchida Nand
    Broitman-Maduro, Gina
    Maduro, Morris F.
    Bronikowski, Anne M.
    Garland, Theodore, Jr.
    Chen, Yi-Wen
    PHYSIOLOGICAL GENOMICS, 2013, 45 (06) : 228 - 236
  • [22] Microarray gene expression profiling of APOE-deficient mice treated with the ACE inhibitor captopril
    Abd Alla, J.
    Quitterer, U.
    NAUNYN-SCHMIEDEBERGS ARCHIVES OF PHARMACOLOGY, 2010, 381 : 35 - 35
  • [23] Hippocampal gene expression changes associated with sequential behavioral training in a temporal lobe epilepsy rat model☆
    Bahabry, Rudhab
    Jago, Silvienne Sint
    Hauser, Rebecca M.
    Harmon, Jonathan
    Sheppard, Leah Dinah
    Oyassan, Bellafaith
    Lubin, Farah D.
    EPILEPSY & BEHAVIOR REPORTS, 2025, 29
  • [24] Pitolisant protects mice chronically treated with corticosterone from some behavioral but not metabolic changes in corticosterone-induced depression model
    Kotanska, Magdalena
    Mika, Kamil
    Salaciak, Kinga
    Wheeler, Lee
    Sapa, Jacek
    Kiec-Kononowicz, Katarzyna
    Pytka, Karolina
    PHARMACOLOGY BIOCHEMISTRY AND BEHAVIOR, 2020, 196
  • [25] The use of expression profiling to analyze changes in gene expression in Aspergillus nidulans treated with a panel of chemical compounds.
    Slater, C
    Kellner, EM
    Obar, RA
    Iartchouk, N
    Askenazi, M
    Rosenberg, AF
    Long, F
    Yu, JH
    FASEB JOURNAL, 2000, 14 (08): : A1443 - A1443
  • [26] Increased hippocampal uptake of tumor necrosis factor α and behavioral changes in mice
    Pan, WH
    Kastin, AJ
    Rigai, T
    McLay, R
    Pick, CG
    EXPERIMENTAL BRAIN RESEARCH, 2003, 149 (02) : 195 - 199
  • [27] Increased hippocampal uptake of tumor necrosis factor α and behavioral changes in mice
    Weihong Pan
    Abba J. Kastin
    Tova Rigai
    Robert McLay
    Chaim G. Pick
    Experimental Brain Research, 2003, 149 : 195 - 199
  • [28] Hippocampal gene gene expression pattern analysis in α-CaMKII+/- mice
    Takao, Keizo
    Miyakawa, Tsuyoshi
    NEUROSCIENCE RESEARCH, 2009, 65 : S127 - S127
  • [29] Gene expression profiling in frataxin deficient mice: Microarray evidence for significant expression changes without detectable neurodegeneration
    Coppola, G
    Choi, SH
    Santos, MM
    Miranda, CJ
    Tentler, D
    Wexler, EM
    Pandolfo, M
    Geschwind, DH
    NEUROBIOLOGY OF DISEASE, 2006, 22 (02) : 302 - 311
  • [30] Gene expression changes in blood after phlebotomy: implications for gene expression profiling
    Pahl, A
    Brune, K
    BLOOD, 2002, 100 (03) : 1094 - 1095