journal article May 28, 2013

Early responses to deep brain stimulation in depression are modulated by anti-inflammatory drugs

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References
50
[1]
Hamani C, Mayberg H, Snyder B, Giacobbe P, Kennedy S, Lozano AM . Deep brain stimulation of the subcallosal cingulate gyrus for depression: anatomical location of active contacts in clinical responders and a suggested guideline for targeting. J Neurosurg 2009; 111: 1209–1215. 10.3171/2008.10.jns08763
[2]
Lozano AM, Mayberg HS, Giacobbe P, Hamani C, Craddock RC, Kennedy SH . Subcallosal cingulate gyrus deep brain stimulation for treatment-resistant depression. Biol Psychiatry 2008; 64: 461–467. 10.1016/j.biopsych.2008.05.034
[3]
Deep Brain Stimulation for Treatment-Resistant Depression

Helen S. Mayberg, Andres M. Lozano, Valerie Voon et al.

Neuron 2005 10.1016/j.neuron.2005.02.014
[4]
Greenberg BD, Malone DA, Friehs GM, Rezai AR, Kubu CS, Malloy PF et al. Three-year outcomes in deep brain stimulation for highly resistant obsessive-compulsive disorder. Neuropsychopharmacology 2006; 31: 2384–2393. 10.1038/sj.npp.1301165
[5]
Mallet L, Polosan M, Jaafari N, Baup N, Welter ML, Fontaine D et al. Subthalamic nucleus stimulation in severe obsessive-compulsive disorder. N Engl J Med 2008; 359: 2121–2134. 10.1056/nejmoa0708514
[6]
Maltete D, Chastan N, Derrey S, Debono B, Gerardin E, Lefaucheur R et al. Microsubthalamotomy effect at day 3: screening for determinants. Mov Disord 2009; 24: 286–289. 10.1002/mds.22380
[7]
Holtzheimer PE, Kelley ME, Gross RE, Filkowski MM, Garlow SJ, Barrocas A et al. Subcallosal cingulate deep brain stimulation for treatment-resistant unipolar and bipolar depression. Arch Gen Psychiatry 2012; 69: 150–158. 10.1001/archgenpsychiatry.2011.1456
[8]
Hirshler YK, Polat U, Biegon A . Intracranial electrode implantation produces regional neuroinflammation and memory deficits in rats. Exp Neurol 2010; 222: 42–50. 10.1016/j.expneurol.2009.12.006
[10]
Takagishi M, Chiba T . Efferent projections of the infralimbic (area 25) region of the medial prefrontal cortex in the rat: an anterograde tracer PHA-L study. Brain Res 1991; 566: 26–39. 10.1016/0006-8993(91)91677-s
[11]
Paxinos G, Watson C . The Rat Brain in Stereotaxic Coordinates, Compact 6th edn. Academic Press: San Diego, CA, USA, 2009.
[12]
Hamani C, Diwan M, Macedo CE, Brandao ML, Shumake J, Gonzalez-Lima F et al. Antidepressant-like effects of medial prefrontal cortex deep brain stimulation in rats. Biol Psychiatry 2010; 67: 117–124. 10.1016/j.biopsych.2009.08.025
[13]
Alba-Delgado C, Llorca-Torralba M, Horrillo I, Ortega JE, Mico JA, Sanchez-Blazquez P et al. Chronic pain leads to concomitant noradrenergic impairment and mood disorders. Biol Psychiatry 2013; 73: 54–62. 10.1016/j.biopsych.2012.06.033
[14]
Puigdemont D, Perez-Egea R, Portella MJ, Molet J, de Diego-Adelino J, Gironell A et al. Deep brain stimulation of the subcallosal cingulate gyrus: further evidence in treatment-resistant major depression. Int J Neuropsychopharmacol 2011; 22: 1–13.
[15]
Svenningsson P, Chergui K, Rachleff I, Flajolet M, Zhang X, El Yacoubi M et al. Alterations in 5-HT1B receptor function by p11 in depression-like states. Science 2006; 311: 77–80. 10.1126/science.1117571
[16]
Warner-Schmidt JL, Vanover KE, Chen EY, Marshall JJ, Greengard P . Antidepressant effects of selective serotonin reuptake inhibitors (SSRIs) are attenuated by antiinflammatory drugs in mice and humans. Proc Natl Acad Sci USA 2011; 108: 9262–9267. 10.1073/pnas.1104836108
[17]
Hamani C, Machado DC, Hipolide DC, Dubiela FP, Suchecki D, Macedo CE et al. Deep brain stimulation reverses anhedonic-like behavior in a chronic model of depression: role of serotonin and brain derived neurotrophic factor. Biol Psychiatry 2012; 71: 30–35. 10.1016/j.biopsych.2011.08.025
[18]
Scopinho AA, Scopinho M, Lisboa SF, Correa FM, Guimaraes FS, Joca SR . Acute reversible inactivation of the ventral medial prefrontal cortex induces antidepressant-like effects in rats. Behav Brain Res 2010; 214: 437–442. 10.1016/j.bbr.2010.06.018
[19]
Slattery DA, Neumann I, Cryan JF . Transient inactivation of the infralimbic cortex induces antidepressant-like effects in the rat. J Psychopharmacol 2010; 25: 1295–1303. 10.1177/0269881110368873
[20]
Gersner R, Toth E, Isserles M, Zangen A . Site-specific antidepressant effects of repeated subconvulsive electrical stimulation: potential role of brain-derived neurotrophic factor. Biol Psychiatry 2010; 67: 125–132. 10.1016/j.biopsych.2009.09.015
[21]
Hamani C, Diwan M, Isabella S, Lozano AM, Nobrega JN . Effects of different stimulation parameters on the antidepressant-like response of medial prefrontal cortex deep brain stimulation in rats. J Psychiatr Res 2010; 44: 683–687. 10.1016/j.jpsychires.2009.12.010
[22]
Warner-Schmidt JL, Flajolet M, Maller A, Chen EY, Qi H, Svenningsson P et al. Role of p11 in cellular and behavioral effects of 5-HT4 receptor stimulation. J Neurosci 2009; 29: 1937–1946. 10.1523/jneurosci.5343-08.2009
[23]
Svenningsson P, Greengard P . p11 (S100A10)—an inducible adaptor protein that modulates neuronal functions. Curr Opin Pharmacol 2007; 7: 27–32. 10.1016/j.coph.2006.10.001
[24]
Egeland M, Warner-Schmidt J, Greengard P, Svenningsson P . Co-expression of serotonin 5-HT(1B) and 5-HT(4) receptors in p11 containing cells in cerebral cortex, hippocampus, caudate-putamen and cerebellum. Neuropharmacology 2011; 61: 442–450. 10.1016/j.neuropharm.2011.01.046
[25]
Banasr M, Chowdhury GM, Terwilliger R, Newton SS, Duman RS, Behar KL et al. Glial pathology in an animal model of depression: reversal of stress-induced cellular, metabolic and behavioral deficits by the glutamate-modulating drug riluzole. Mol Psychiatry 2010; 15: 501–511. 10.1038/mp.2008.106
[26]
Banasr M, Duman RS . Glial loss in the prefrontal cortex is sufficient to induce depressive-like behaviors. Biol Psychiatry 2008; 64: 863–870. 10.1016/j.biopsych.2008.06.008
[27]
Gosselin RD, Gibney S, O'Malley D, Dinan TG, Cryan JF . Region specific decrease in glial fibrillary acidic protein immunoreactivity in the brain of a rat model of depression. Neuroscience 2009; 159: 915–925. 10.1016/j.neuroscience.2008.10.018
[28]
Miguel-Hidalgo JJ, Baucom C, Dilley G, Overholser JC, Meltzer HY, Stockmeier CA et al. Glial fibrillary acidic protein immunoreactivity in the prefrontal cortex distinguishes younger from older adults in major depressive disorder. Biol Psychiatry 2000; 48: 861–873. 10.1016/s0006-3223(00)00999-9
[29]
Ongur D, Drevets WC, Price JL . Glial reduction in the subgenual prefrontal cortex in mood disorders. Proc Natl Acad Sci USA 1998; 95: 13290–13295. 10.1073/pnas.95.22.13290
[30]
Webster MJ, O'Grady J, Kleinman JE, Weickert CS . Glial fibrillary acidic protein mRNA levels in the cingulate cortex of individuals with depression, bipolar disorder and schizophrenia. Neuroscience 2005; 133: 453–461. 10.1016/j.neuroscience.2005.02.037
[31]
Jansson L, Wennstrom M, Johanson A, Tingstrom A . Glial cell activation in response to electroconvulsive seizures. Prog Neuropsychopharmacol Biol Psychiatry 2009; 33: 1119–1128. 10.1016/j.pnpbp.2009.06.007
[32]
Kragh J, Bolwig TG, Woldbye DP, Jorgensen OS . Electroconvulsive shock and lidocaine-induced seizures in the rat activate astrocytes as measured by glial fibrillary acidic protein. Biol Psychiatry 1993; 33: 794–800. 10.1016/0006-3223(93)90020-e
[33]
Czeh B, Simon M, Schmelting B, Hiemke C, Fuchs E . Astroglial plasticity in the hippocampus is affected by chronic psychosocial stress and concomitant fluoxetine treatment. Neuropsychopharmacology 2006; 31: 1616–1626. 10.1038/sj.npp.1300982
[34]
Liu Q, Li B, Zhu HY, Wang YQ, Yu J, Wu GC . Clomipramine treatment reversed the glial pathology in a chronic unpredictable stress-induced rat model of depression. Eur Neuropsychopharmacol 2009; 19: 796–805. 10.1016/j.euroneuro.2009.06.010
[35]
De Leon M, Van Eldik LJ, Shooter EM . Differential regulation of S100 beta and mRNAs coding for S100-like proteins (42A and 42C) during development and after lesion of rat sciatic nerve. J Neurosci Res 1991; 29: 155–162. 10.1002/jnr.490290204
[36]
Gveric D, Herrera BM, Cuzner ML . tPA receptors and the fibrinolytic response in multiple sclerosis lesions. Am J Pathol 2005; 166: 1143–1151. 10.1016/s0002-9440(10)62334-6
[37]
Wu T, Angus CW, Yao XL, Logun C, Shelhamer JH . P11, a unique member of the S100 family of calcium-binding proteins, interacts with and inhibits the activity of the 85-kDa cytosolic phospholipase A2. J Biol Chem 1997; 272: 17145–17153. 10.1074/jbc.272.27.17145
[38]
Pawliczak R, Cowan MJ, Huang X, Nanavaty UB, Alsaaty S, Logun C et al. p11 expression in human bronchial epithelial cells is increased by nitric oxide in a cGMP-dependent pathway involving protein kinase G activation. J Biol Chem 2001; 276: 44613–44621. 10.1074/jbc.m104993200
[39]
Swisher JF, Burton N, Bacot SM, Vogel SN, Feldman GM . Annexin A2 tetramer activates human and murine macrophages through TLR4. Blood 2010; 115: 549–558. 10.1182/blood-2009-06-226944
[40]
Bayas A, Hummel V, Kallmann BA, Karch C, Toyka KV, Rieckmann P . Human cerebral endothelial cells are a potential source for bioactive BDNF. Cytokine 2002; 19: 55–58. 10.1006/cyto.2002.0892
[41]
Kuno R, Yoshida Y, Nitta A, Nabeshima T, Wang J, Sonobe Y et al. The role of TNF-alpha and its receptors in the production of NGF and GDNF by astrocytes. Brain Res 2006; 1116: 12–18. 10.1016/j.brainres.2006.07.120
[42]
Saha RN, Liu X, Pahan K . Up-regulation of BDNF in astrocytes by TNF-alpha: a case for the neuroprotective role of cytokine. J Neuroimmune Pharmacol 2006; 1: 212–222. 10.1007/s11481-006-9020-8
[43]
Neto FL, Borges G, Torres-Sanchez S, Mico JA, Berrocoso E . Neurotrophins role in depression neurobiology: a review of basic and clinical evidence. Curr Neuropharmacol 2011; 9: 530–552. 10.2174/157015911798376262
[44]
Okuse K, Malik-Hall M, Baker MD, Poon WY, Kong H, Chao MV et al. Annexin II light chain regulates sensory neuron-specific sodium channel expression. Nature 2002; 417: 653–656. 10.1038/nature00781
[45]
Warner-Schmidt JL, Chen EY, Zhang X, Marshall JJ, Morozov A, Svenningsson P et al. A role for p11 in the antidepressant action of brain-derived neurotrophic factor. Biol Psychiatry 2010; 68: 528–535. 10.1016/j.biopsych.2010.04.029
[46]
Masiakowski P, Shooter EM . Nerve growth factor induces the genes for two proteins related to a family of calcium-binding proteins in PC12 cells. Proc Natl Acad Sci USA 1988; 85: 1277–1281. 10.1073/pnas.85.4.1277
[47]
Inflammation and Its Discontents: The Role of Cytokines in the Pathophysiology of Major Depression

Andrew H. Miller, Vladimir Maletic, Charles L. Raison

Biological Psychiatry 2009 10.1016/j.biopsych.2008.11.029
[48]
Raison CL, Capuron L, Miller AH . Cytokines sing the blues: inflammation and the pathogenesis of depression. Trends Immunol 2006; 27: 24–31. 10.1016/j.it.2005.11.006
[49]
Buffo A, Rite I, Tripathi P, Lepier A, Colak D, Horn AP et al. Origin and progeny of reactive gliosis: A source of multipotent cells in the injured brain. Proc Natl Acad Sci USA 2008; 105: 3581–3586. 10.1073/pnas.0709002105
[50]
Vedam-Mai V, van Battum EY, Kamphuis W, Feenstra MG, Denys D, Reynolds BA et al. Deep brain stimulation and the role of astrocytes. Mol Psychiatry 2012; 17: 124–131, 115. 10.1038/mp.2011.61
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Published
May 28, 2013
Vol/Issue
19(5)
Pages
607-614
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Cite This Article
L Perez-Caballero, R Pérez-Egea, C Romero-Grimaldi, et al. (2013). Early responses to deep brain stimulation in depression are modulated by anti-inflammatory drugs. Molecular Psychiatry, 19(5), 607-614. https://doi.org/10.1038/mp.2013.63