Skip to main content
Top
Published in: Journal of Neural Transmission 5/2012

01-05-2012 | Basic Neurosciences, Genetics and Immunology - Original Article

Reversal of stress-induced dendritic atrophy in the prefrontal cortex by intracranial self-stimulation

Authors: K. Ramkumar, B. N. Srikumar, D. Venkatasubramanian, R. Siva, B. S. Shankaranarayana Rao, T. R. Raju

Published in: Journal of Neural Transmission | Issue 5/2012

Login to get access

Abstract

The mammalian prefrontal cortex (PFC) has been implicated in a variety of motivational and emotional processes underlying working memory, attention and decision making. The PFC receives dopaminergic projections from the ventral tegmental area (VTA) and contains high density of D1 and D2 receptors and these projections are important in higher integrative cortical functions. The neurons of the PFC have been shown to undergo atrophy in response to stress. In an earlier study, we demonstrated that the chronic stress-induced atrophy of hippocampal neurons and behavioral impairment in the T-maze task were reversed by the activation of dopaminergic pathway by intracranial self-stimulation (ICSS) of the VTA. The stress-induced decrease in hippocampal dopamine (DA) levels was also restored by ICSS. Whether the reversal of stress-induced behavioral deficits by ICSS involves changes in the morphology of PFC neurons is unknown and the current study addresses this issue. Male Wistar rats underwent 21 days of restraint stress followed by ICSS for 10 days. The dendritic morphology of the PFC neurons was studied in Golgi-impregnated sections. Stress produced atrophy of the layer II/III and V PFC pyramidal neurons and ICSS to naïve rats significantly increased the dendritic arborization of these neurons compared to control. Interestingly, ICSS of stressed rats resulted in the reversal of the dendritic atrophy. Further, these structural changes were associated with a restored tissue levels of DA, norepinephrine and serotonin in the PFC. These results indicate that the behavioral restoration in stressed rats could involve changes in the plasticity of the PFC neurons and these results further our understanding of the role of dopaminergic neurotransmitter system in the amelioration of stress-induced deficits.
Literature
go back to reference Adell A, Garcia-Marquez C, Armario A, Gelpi E (1988) Chronic stress increases serotonin and noradrenaline in rat brain and sensitizes their responses to a further acute stress. J Neurochem 50:1678–1681PubMedCrossRef Adell A, Garcia-Marquez C, Armario A, Gelpi E (1988) Chronic stress increases serotonin and noradrenaline in rat brain and sensitizes their responses to a further acute stress. J Neurochem 50:1678–1681PubMedCrossRef
go back to reference Anuradha H, Srikumar BN, Shankaranarayana Rao BS, Lakshmana M (2008) Euphorbia hirta reverses chronic stress-induced anxiety and mediates its action through the GABA(A) receptor benzodiazepine receptor-Cl(−) channel complex. J Neural Transm 115:35–42PubMedCrossRef Anuradha H, Srikumar BN, Shankaranarayana Rao BS, Lakshmana M (2008) Euphorbia hirta reverses chronic stress-induced anxiety and mediates its action through the GABA(A) receptor benzodiazepine receptor-Cl(−) channel complex. J Neural Transm 115:35–42PubMedCrossRef
go back to reference Ariano MA, Wang J, Noblett KL, Larson ER, Sibley DR (1997) Cellular distribution of the rat D1B receptor in central nervous system using anti-receptor antisera. Brain Res 746:141–150PubMedCrossRef Ariano MA, Wang J, Noblett KL, Larson ER, Sibley DR (1997) Cellular distribution of the rat D1B receptor in central nervous system using anti-receptor antisera. Brain Res 746:141–150PubMedCrossRef
go back to reference Aston-Jones G, Shipley MT, Chouvet G, Ennis M, van Bockstaele E, Pieribone V, Shiekhattar R, Akaoka H, Drolet G, Astier B et al (1991) Afferent regulation of locus coeruleus neurons: anatomy, physiology and pharmacology. Prog Brain Res 88:47–75PubMedCrossRef Aston-Jones G, Shipley MT, Chouvet G, Ennis M, van Bockstaele E, Pieribone V, Shiekhattar R, Akaoka H, Drolet G, Astier B et al (1991) Afferent regulation of locus coeruleus neurons: anatomy, physiology and pharmacology. Prog Brain Res 88:47–75PubMedCrossRef
go back to reference Bechara A, Damasio H, Tranel D, Anderson SW (1998) Dissociation of working memory from decision making within the human prefrontal cortex. J Neurosci 18:428–437PubMed Bechara A, Damasio H, Tranel D, Anderson SW (1998) Dissociation of working memory from decision making within the human prefrontal cortex. J Neurosci 18:428–437PubMed
go back to reference Beck KD, Luine VN (1999) Food deprivation modulates chronic stress effects on object recognition in male rats: role of monoamines and amino acids. Brain Res 830:56–71PubMedCrossRef Beck KD, Luine VN (1999) Food deprivation modulates chronic stress effects on object recognition in male rats: role of monoamines and amino acids. Brain Res 830:56–71PubMedCrossRef
go back to reference Berger B, Thierry AM, Tassin JP, Moyne MA (1976) Dopaminergic innervation of the rat prefrontal cortex: a fluorescence histochemical study. Brain Res 106:133–145PubMedCrossRef Berger B, Thierry AM, Tassin JP, Moyne MA (1976) Dopaminergic innervation of the rat prefrontal cortex: a fluorescence histochemical study. Brain Res 106:133–145PubMedCrossRef
go back to reference Berger B, Doucet G, Descarries L (1988) Density of the dopamine innervation in rat cerebral cortex after neonatal 6-hydroxydopamine or adult stage DSP-4 noradrenaline denervations: a quantitative radioautographic study. Brain Res 441:260–268PubMedCrossRef Berger B, Doucet G, Descarries L (1988) Density of the dopamine innervation in rat cerebral cortex after neonatal 6-hydroxydopamine or adult stage DSP-4 noradrenaline denervations: a quantitative radioautographic study. Brain Res 441:260–268PubMedCrossRef
go back to reference Berger B, Gaspar P, Verney C (1991) Dopaminergic innervation of the cerebral cortex: unexpected differences between rodents and primates. Trends Neurosci 14:21–27PubMedCrossRef Berger B, Gaspar P, Verney C (1991) Dopaminergic innervation of the cerebral cortex: unexpected differences between rodents and primates. Trends Neurosci 14:21–27PubMedCrossRef
go back to reference Bondi CO, Jett JD, Morilak DA (2010) Beneficial effects of desipramine on cognitive function of chronically stressed rats are mediated by alpha1-adrenergic receptors in medial prefrontal cortex. Prog Neuropsychopharmacol Biol Psychiatry 34:913–923PubMedCrossRef Bondi CO, Jett JD, Morilak DA (2010) Beneficial effects of desipramine on cognitive function of chronically stressed rats are mediated by alpha1-adrenergic receptors in medial prefrontal cortex. Prog Neuropsychopharmacol Biol Psychiatry 34:913–923PubMedCrossRef
go back to reference Brown SM, Henning S, Wellman CL (2005) Mild, short-term stress alters dendritic morphology in rat medial prefrontal cortex. Cereb Cortex 15:1714–1722PubMedCrossRef Brown SM, Henning S, Wellman CL (2005) Mild, short-term stress alters dendritic morphology in rat medial prefrontal cortex. Cereb Cortex 15:1714–1722PubMedCrossRef
go back to reference Campmany L, Pol O, Armario A (1996) The effects of two chronic intermittent stressors on brain monoamines. Pharmacol Biochem Behav 53:517–523PubMedCrossRef Campmany L, Pol O, Armario A (1996) The effects of two chronic intermittent stressors on brain monoamines. Pharmacol Biochem Behav 53:517–523PubMedCrossRef
go back to reference Carrasco GA, Van de Kar LD (2003) Neuroendocrine pharmacology of stress. Eur J Pharmacol 463:235–272PubMedCrossRef Carrasco GA, Van de Kar LD (2003) Neuroendocrine pharmacology of stress. Eur J Pharmacol 463:235–272PubMedCrossRef
go back to reference Cerqueira JJ, Pego JM, Taipa R, Bessa JM, Almeida OF, Sousa N (2005) Morphological correlates of corticosteroid-induced changes in prefrontal cortex-dependent behaviors. J Neurosci 25:7792–7800PubMedCrossRef Cerqueira JJ, Pego JM, Taipa R, Bessa JM, Almeida OF, Sousa N (2005) Morphological correlates of corticosteroid-induced changes in prefrontal cortex-dependent behaviors. J Neurosci 25:7792–7800PubMedCrossRef
go back to reference Cerqueira JJ, Taipa R, Uylings HB, Almeida OF, Sousa N (2007) Specific configuration of dendritic degeneration in pyramidal neurons of the medial prefrontal cortex induced by differing corticosteroid regimens. Cereb Cortex 17:1998–2006PubMedCrossRef Cerqueira JJ, Taipa R, Uylings HB, Almeida OF, Sousa N (2007) Specific configuration of dendritic degeneration in pyramidal neurons of the medial prefrontal cortex induced by differing corticosteroid regimens. Cereb Cortex 17:1998–2006PubMedCrossRef
go back to reference Conrad CD, LeDoux JE, Magarinos AM, McEwen BS (1999) Repeated restraint stress facilitates fear conditioning independently of causing hippocampal CA3 dendritic atrophy. Behav Neurosci 113:902–913PubMedCrossRef Conrad CD, LeDoux JE, Magarinos AM, McEwen BS (1999) Repeated restraint stress facilitates fear conditioning independently of causing hippocampal CA3 dendritic atrophy. Behav Neurosci 113:902–913PubMedCrossRef
go back to reference Cook SC, Wellman CL (2004) Chronic stress alters dendritic morphology in rat medial prefrontal cortex. J Neurobiol 60:236–248PubMedCrossRef Cook SC, Wellman CL (2004) Chronic stress alters dendritic morphology in rat medial prefrontal cortex. J Neurobiol 60:236–248PubMedCrossRef
go back to reference Czeh B, Perez-Cruz C, Fuchs E, Flugge G (2008) Chronic stress-induced cellular changes in the medial prefrontal cortex and their potential clinical implications: does hemisphere location matter? Behav Brain Res 190:1–13PubMedCrossRef Czeh B, Perez-Cruz C, Fuchs E, Flugge G (2008) Chronic stress-induced cellular changes in the medial prefrontal cortex and their potential clinical implications: does hemisphere location matter? Behav Brain Res 190:1–13PubMedCrossRef
go back to reference Dahlström A, Fuxe K (1964) Evidence for the existence of monoamine-containing neurons in the central nervous system. I. Demonstration of monoamines in the cell bodies of brain stem neurons. Acta Physiol Scand Suppl 232:1–55 Dahlström A, Fuxe K (1964) Evidence for the existence of monoamine-containing neurons in the central nervous system. I. Demonstration of monoamines in the cell bodies of brain stem neurons. Acta Physiol Scand Suppl 232:1–55
go back to reference Dawirs RR, Teuchert-Noodt G, Busse M (1991) Single doses of methamphetamine cause changes in the density of dendritic spines in the prefrontal cortex of gerbils (Meriones unguiculatus). Neuropharmacology 30:275–282PubMedCrossRef Dawirs RR, Teuchert-Noodt G, Busse M (1991) Single doses of methamphetamine cause changes in the density of dendritic spines in the prefrontal cortex of gerbils (Meriones unguiculatus). Neuropharmacology 30:275–282PubMedCrossRef
go back to reference de Brabander JM, de Bruin JP, van Eden CG (1991) Comparison of the effects of neonatal and adult medial prefrontal cortex lesions on food hoarding and spatial delayed alternation. Behav Brain Res 42:67–75PubMedCrossRef de Brabander JM, de Bruin JP, van Eden CG (1991) Comparison of the effects of neonatal and adult medial prefrontal cortex lesions on food hoarding and spatial delayed alternation. Behav Brain Res 42:67–75PubMedCrossRef
go back to reference Descarries L, Lemay B, Doucet G, Berger B (1987) Regional and laminar density of the dopamine innervation in adult rat cerebral cortex. Neuroscience 21:807–824PubMedCrossRef Descarries L, Lemay B, Doucet G, Berger B (1987) Regional and laminar density of the dopamine innervation in adult rat cerebral cortex. Neuroscience 21:807–824PubMedCrossRef
go back to reference Divac I, Bjorklund A, Lindvall O, Passingham RE (1978) Converging projections from the mediodorsal thalamic nucleus and mesencephalic dopaminergic neurons to the neocortex in three species. J Comp Neurol 180:59–71PubMedCrossRef Divac I, Bjorklund A, Lindvall O, Passingham RE (1978) Converging projections from the mediodorsal thalamic nucleus and mesencephalic dopaminergic neurons to the neocortex in three species. J Comp Neurol 180:59–71PubMedCrossRef
go back to reference Doucet G, Descarries L, Audet MA, Garcia S, Berger B (1988) Radioautographic method for quantifying regional monoamine innervations in the rat brain. Application to the cerebral cortex. Brain Res 441:233–259PubMedCrossRef Doucet G, Descarries L, Audet MA, Garcia S, Berger B (1988) Radioautographic method for quantifying regional monoamine innervations in the rat brain. Application to the cerebral cortex. Brain Res 441:233–259PubMedCrossRef
go back to reference Duchesne A, Dufresne MM, Sullivan RM (2009) Sex differences in corticolimbic dopamine and serotonin systems in the rat and the effect of postnatal handling. Prog Neuropsychopharmacol Biol Psychiatry 33:251–261PubMedCrossRef Duchesne A, Dufresne MM, Sullivan RM (2009) Sex differences in corticolimbic dopamine and serotonin systems in the rat and the effect of postnatal handling. Prog Neuropsychopharmacol Biol Psychiatry 33:251–261PubMedCrossRef
go back to reference Fallon JH, Loughlin SE (1982) Monoamine innervation of the forebrain: collateralization. Brain Res Bull 9:295–307PubMedCrossRef Fallon JH, Loughlin SE (1982) Monoamine innervation of the forebrain: collateralization. Brain Res Bull 9:295–307PubMedCrossRef
go back to reference Fibiger HC, LePiane FG, Jakubovic A, Phillips AG (1987) The role of dopamine in intracranial self-stimulation of the ventral tegmental area. J Neurosci 7:3888–3896PubMed Fibiger HC, LePiane FG, Jakubovic A, Phillips AG (1987) The role of dopamine in intracranial self-stimulation of the ventral tegmental area. J Neurosci 7:3888–3896PubMed
go back to reference Garrett JE, Wellman CL (2009) Chronic stress effects on dendritic morphology in medial prefrontal cortex: sex differences and estrogen dependence. Neuroscience 162:195–207PubMedCrossRef Garrett JE, Wellman CL (2009) Chronic stress effects on dendritic morphology in medial prefrontal cortex: sex differences and estrogen dependence. Neuroscience 162:195–207PubMedCrossRef
go back to reference Gaspar P, Bloch B, Le Moine C (1995) D1 and D2 receptor gene expression in the rat frontal cortex: cellular localization in different classes of efferent neurons. Eur J Neurosci 7:1050–1063PubMedCrossRef Gaspar P, Bloch B, Le Moine C (1995) D1 and D2 receptor gene expression in the rat frontal cortex: cellular localization in different classes of efferent neurons. Eur J Neurosci 7:1050–1063PubMedCrossRef
go back to reference George MS, Nahas Z, Borckardt JJ, Anderson B, Foust MJ, Burns C, Kose S, Short EB (2007) Brain stimulation for the treatment of psychiatric disorders. Curr Opin Psychiatry 20:250–254 (discussion 247–259)PubMed George MS, Nahas Z, Borckardt JJ, Anderson B, Foust MJ, Burns C, Kose S, Short EB (2007) Brain stimulation for the treatment of psychiatric disorders. Curr Opin Psychiatry 20:250–254 (discussion 247–259)PubMed
go back to reference Goldman-Rakic PS (1987) Circuitry of the frontal association cortex and its relevance to dementia. Arch Gerontol Geriatr 6:299–309PubMedCrossRef Goldman-Rakic PS (1987) Circuitry of the frontal association cortex and its relevance to dementia. Arch Gerontol Geriatr 6:299–309PubMedCrossRef
go back to reference Goldwater DS, Pavlides C, Hunter RG, Bloss EB, Hof PR, McEwen BS, Morrison JH (2009) Structural and functional alterations to rat medial prefrontal cortex following chronic restraint stress and recovery. Neuroscience 164:798–808PubMedCrossRef Goldwater DS, Pavlides C, Hunter RG, Bloss EB, Hof PR, McEwen BS, Morrison JH (2009) Structural and functional alterations to rat medial prefrontal cortex following chronic restraint stress and recovery. Neuroscience 164:798–808PubMedCrossRef
go back to reference Hains AB, Arnsten AF (2008) Molecular mechanisms of stress-induced prefrontal cortical impairment: implications for mental illness. Learn Mem 15:551–564PubMedCrossRef Hains AB, Arnsten AF (2008) Molecular mechanisms of stress-induced prefrontal cortical impairment: implications for mental illness. Learn Mem 15:551–564PubMedCrossRef
go back to reference Hess G, Jacobs KM, Donoghue JP (1994) N-methyl-d-aspartate receptor mediated component of field potentials evoked in horizontal pathways of rat motor cortex. Neuroscience 61:225–235PubMedCrossRef Hess G, Jacobs KM, Donoghue JP (1994) N-methyl-d-aspartate receptor mediated component of field potentials evoked in horizontal pathways of rat motor cortex. Neuroscience 61:225–235PubMedCrossRef
go back to reference Jacobson S, Trojanowski JQ (1975) Corticothalamic neurons and thalamocortical terminal fields: an investigation in rat using horseradish peroxidase and autoradiography. Brain Res 85:385–401PubMedCrossRef Jacobson S, Trojanowski JQ (1975) Corticothalamic neurons and thalamocortical terminal fields: an investigation in rat using horseradish peroxidase and autoradiography. Brain Res 85:385–401PubMedCrossRef
go back to reference Jauzac P, Blasco A, Vigoni F, Valdiguie P, Bes A (1982) Cerebral circulatory effects of a dopaminergic agonist (apomorphine) in the dog. J Cereb Blood Flow Metab 2:369–372PubMedCrossRef Jauzac P, Blasco A, Vigoni F, Valdiguie P, Bes A (1982) Cerebral circulatory effects of a dopaminergic agonist (apomorphine) in the dog. J Cereb Blood Flow Metab 2:369–372PubMedCrossRef
go back to reference Kehr W, Lindqvist M, Carlsson A (1976) Distribution of dopamine in the rat cerebral cortex. J Neural Transm 38:173–180PubMedCrossRef Kehr W, Lindqvist M, Carlsson A (1976) Distribution of dopamine in the rat cerebral cortex. J Neural Transm 38:173–180PubMedCrossRef
go back to reference Kim DR, Pesiridou A, O’Reardon JP (2009) Transcranial magnetic stimulation in the treatment of psychiatric disorders. Curr Psychiatry Rep 11:447–452PubMedCrossRef Kim DR, Pesiridou A, O’Reardon JP (2009) Transcranial magnetic stimulation in the treatment of psychiatric disorders. Curr Psychiatry Rep 11:447–452PubMedCrossRef
go back to reference Kolb B (1984) Functions of the frontal cortex of the rat: a comparative review. Brain Res 320:65–98PubMed Kolb B (1984) Functions of the frontal cortex of the rat: a comparative review. Brain Res 320:65–98PubMed
go back to reference Latagliata EC, Patrono E, Puglisi-Allegra S, Ventura R (2010) Food seeking in spite of harmful consequences is under prefrontal cortical noradrenergic control. BMC Neurosci 11:15PubMedCrossRef Latagliata EC, Patrono E, Puglisi-Allegra S, Ventura R (2010) Food seeking in spite of harmful consequences is under prefrontal cortical noradrenergic control. BMC Neurosci 11:15PubMedCrossRef
go back to reference Lindvall O, Bjorklund A (1974) The organization of the ascending catecholamine neuron systems in the rat brain as revealed by the glyoxylic acid fluorescence method. Acta Physiol Scand Suppl 412:1–48PubMed Lindvall O, Bjorklund A (1974) The organization of the ascending catecholamine neuron systems in the rat brain as revealed by the glyoxylic acid fluorescence method. Acta Physiol Scand Suppl 412:1–48PubMed
go back to reference Lindvall O, Bjorklund A, Divac I (1978) Organization of catecholamine neurons projecting to the frontal cortex in the rat. Brain Res 142:1–24PubMedCrossRef Lindvall O, Bjorklund A, Divac I (1978) Organization of catecholamine neurons projecting to the frontal cortex in the rat. Brain Res 142:1–24PubMedCrossRef
go back to reference Liston C, Miller MM, Goldwater DS, Radley JJ, Rocher AB, Hof PR, Morrison JH, McEwen BS (2006) Stress-induced alterations in prefrontal cortical dendritic morphology predict selective impairments in perceptual attentional set-shifting. J Neurosci 26:7870–7874PubMedCrossRef Liston C, Miller MM, Goldwater DS, Radley JJ, Rocher AB, Hof PR, Morrison JH, McEwen BS (2006) Stress-induced alterations in prefrontal cortical dendritic morphology predict selective impairments in perceptual attentional set-shifting. J Neurosci 26:7870–7874PubMedCrossRef
go back to reference Liu RJ, Aghajanian GK (2008) Stress blunts serotonin- and hypocretin-evoked EPSCs in prefrontal cortex: role of corticosterone-mediated apical dendritic atrophy. Proc Natl Acad Sci USA 105:359–364PubMedCrossRef Liu RJ, Aghajanian GK (2008) Stress blunts serotonin- and hypocretin-evoked EPSCs in prefrontal cortex: role of corticosterone-mediated apical dendritic atrophy. Proc Natl Acad Sci USA 105:359–364PubMedCrossRef
go back to reference Lu XY, Churchill L, Kalivas PW (1997) Expression of D1 receptor mRNA in projections from the forebrain to the ventral tegmental area. Synapse 25:205–214PubMedCrossRef Lu XY, Churchill L, Kalivas PW (1997) Expression of D1 receptor mRNA in projections from the forebrain to the ventral tegmental area. Synapse 25:205–214PubMedCrossRef
go back to reference McEwen BS (2008) Central effects of stress hormones in health and disease: understanding the protective and damaging effects of stress and stress mediators. Eur J Pharmacol 583:174–185PubMedCrossRef McEwen BS (2008) Central effects of stress hormones in health and disease: understanding the protective and damaging effects of stress and stress mediators. Eur J Pharmacol 583:174–185PubMedCrossRef
go back to reference Mizoguchi K, Yuzurihara M, Ishige A, Sasaki H, Chui DH, Tabira T (2000) Chronic stress induces impairment of spatial working memory because of prefrontal dopaminergic dysfunction. J Neurosci 20:1568–1574PubMed Mizoguchi K, Yuzurihara M, Ishige A, Sasaki H, Chui DH, Tabira T (2000) Chronic stress induces impairment of spatial working memory because of prefrontal dopaminergic dysfunction. J Neurosci 20:1568–1574PubMed
go back to reference Murmu MS, Salomon S, Biala Y, Weinstock M, Braun K, Bock J (2006) Changes of spine density and dendritic complexity in the prefrontal cortex in offspring of mothers exposed to stress during pregnancy. Eur J Neurosci 24:1477–1487PubMedCrossRef Murmu MS, Salomon S, Biala Y, Weinstock M, Braun K, Bock J (2006) Changes of spine density and dendritic complexity in the prefrontal cortex in offspring of mothers exposed to stress during pregnancy. Eur J Neurosci 24:1477–1487PubMedCrossRef
go back to reference O’Mahony CM, Clarke G, Gibney S, Dinan TG, Cryan JF (2011) Strain differences in the neurochemical response to chronic restraint stress in the rat: relevance to depression. Pharmacol Biochem Behav 97:690–699PubMedCrossRef O’Mahony CM, Clarke G, Gibney S, Dinan TG, Cryan JF (2011) Strain differences in the neurochemical response to chronic restraint stress in the rat: relevance to depression. Pharmacol Biochem Behav 97:690–699PubMedCrossRef
go back to reference Olds J (1962) Hypothalamic substrates of reward. Physiol Rev 42:554–604PubMed Olds J (1962) Hypothalamic substrates of reward. Physiol Rev 42:554–604PubMed
go back to reference Passingham R (1993) The front lobe and voluntary action. Oxford University Press, UK Passingham R (1993) The front lobe and voluntary action. Oxford University Press, UK
go back to reference Paxinos G, Watson C (1982) The rat brain in stereotaxic coordinates. Academic press, New York Paxinos G, Watson C (1982) The rat brain in stereotaxic coordinates. Academic press, New York
go back to reference Perez-Cruz C, Muller-Keuker JI, Heilbronner U, Fuchs E, Flugge G (2007) Morphology of pyramidal neurons in the rat prefrontal cortex: lateralized dendritic remodeling by chronic stress. Neural Plas 2007:46276 Perez-Cruz C, Muller-Keuker JI, Heilbronner U, Fuchs E, Flugge G (2007) Morphology of pyramidal neurons in the rat prefrontal cortex: lateralized dendritic remodeling by chronic stress. Neural Plas 2007:46276
go back to reference Perez-Vega MI, Feria-Velasco A, Gonzalez-Burgos I (2000) Prefrontocortical serotonin depletion results in plastic changes of prefrontocortical pyramidal neurons, underlying a greater efficiency of short-term memory. Brain Res Bull 53:291–300PubMedCrossRef Perez-Vega MI, Feria-Velasco A, Gonzalez-Burgos I (2000) Prefrontocortical serotonin depletion results in plastic changes of prefrontocortical pyramidal neurons, underlying a greater efficiency of short-term memory. Brain Res Bull 53:291–300PubMedCrossRef
go back to reference Radley JJ, Morrison JH (2005) Repeated stress and structural plasticity in the brain. Ageing Res Rev 4:271–287PubMedCrossRef Radley JJ, Morrison JH (2005) Repeated stress and structural plasticity in the brain. Ageing Res Rev 4:271–287PubMedCrossRef
go back to reference Radley JJ, Sisti HM, Hao J, Rocher AB, McCall T, Hof PR, McEwen BS, Morrison JH (2004) Chronic behavioral stress induces apical dendritic reorganization in pyramidal neurons of the medial prefrontal cortex. Neuroscience 125:1–6PubMedCrossRef Radley JJ, Sisti HM, Hao J, Rocher AB, McCall T, Hof PR, McEwen BS, Morrison JH (2004) Chronic behavioral stress induces apical dendritic reorganization in pyramidal neurons of the medial prefrontal cortex. Neuroscience 125:1–6PubMedCrossRef
go back to reference Radley JJ, Arias CM, Sawchenko PE (2006) Regional differentiation of the medial prefrontal cortex in regulating adaptive responses to acute emotional stress. J Neurosci 26:12967–12976PubMedCrossRef Radley JJ, Arias CM, Sawchenko PE (2006) Regional differentiation of the medial prefrontal cortex in regulating adaptive responses to acute emotional stress. J Neurosci 26:12967–12976PubMedCrossRef
go back to reference Radley JJ, Rocher AB, Rodriguez A, Ehlenberger DB, Dammann M, McEwen BS, Morrison JH, Wearne SL, Hof PR (2008) Repeated stress alters dendritic spine morphology in the rat medial prefrontal cortex. J Comp Neurol 507:1141–1150PubMedCrossRef Radley JJ, Rocher AB, Rodriguez A, Ehlenberger DB, Dammann M, McEwen BS, Morrison JH, Wearne SL, Hof PR (2008) Repeated stress alters dendritic spine morphology in the rat medial prefrontal cortex. J Comp Neurol 507:1141–1150PubMedCrossRef
go back to reference Ramkumar K, Srikumar BN, Shankaranarayana Rao BS, Raju TR (2008) Self-stimulation rewarding experience restores stress-induced CA3 dendritic atrophy, spatial memory deficits and alterations in the levels of neurotransmitters in the hippocampus. Neurochem Res 33:1651–1662PubMedCrossRef Ramkumar K, Srikumar BN, Shankaranarayana Rao BS, Raju TR (2008) Self-stimulation rewarding experience restores stress-induced CA3 dendritic atrophy, spatial memory deficits and alterations in the levels of neurotransmitters in the hippocampus. Neurochem Res 33:1651–1662PubMedCrossRef
go back to reference Redolar-Ripoll D, Soriano-Mas C, Guillazo-Blanch G, Aldavert-Vera L, Segura-Torres P, Morgado-Bernal I (2003) Posttraining intracranial self-stimulation ameliorates the detrimental effects of parafascicular thalamic lesions on active avoidance in young and aged rats. Behav Neurosci 117:246–256PubMedCrossRef Redolar-Ripoll D, Soriano-Mas C, Guillazo-Blanch G, Aldavert-Vera L, Segura-Torres P, Morgado-Bernal I (2003) Posttraining intracranial self-stimulation ameliorates the detrimental effects of parafascicular thalamic lesions on active avoidance in young and aged rats. Behav Neurosci 117:246–256PubMedCrossRef
go back to reference Robinson TE, Kolb B (2004) Structural plasticity associated with exposure to drugs of abuse. Neuropharmacology 47(Suppl 1):33–46 Robinson TE, Kolb B (2004) Structural plasticity associated with exposure to drugs of abuse. Neuropharmacology 47(Suppl 1):33–46
go back to reference Rutledge LT, Wright C, Duncan J (1974) Morphological changes in pyramidal cells of mammalian neocortex associated with increased use. Exp Neurol 44:209–228PubMedCrossRef Rutledge LT, Wright C, Duncan J (1974) Morphological changes in pyramidal cells of mammalian neocortex associated with increased use. Exp Neurol 44:209–228PubMedCrossRef
go back to reference Rye DB, Wainer BH, Mesulam MM, Mufson EJ, Saper CB (1984) Cortical projections arising from the basal forebrain: a study of cholinergic and noncholinergic components employing combined retrograde tracing and immunohistochemical localization of choline acetyltransferase. Neuroscience 13:627–643PubMedCrossRef Rye DB, Wainer BH, Mesulam MM, Mufson EJ, Saper CB (1984) Cortical projections arising from the basal forebrain: a study of cholinergic and noncholinergic components employing combined retrograde tracing and immunohistochemical localization of choline acetyltransferase. Neuroscience 13:627–643PubMedCrossRef
go back to reference Sandi C, Pinelo-Nava MT (2007) Stress and memory: behavioral effects and neurobiological mechanisms. Neural Plast 2007:78970PubMedCrossRef Sandi C, Pinelo-Nava MT (2007) Stress and memory: behavioral effects and neurobiological mechanisms. Neural Plast 2007:78970PubMedCrossRef
go back to reference Scatton B, Javoy-Agid F, Rouquier L, Dubois B, Agid Y (1983) Reduction of cortical dopamine, noradrenaline, serotonin and their metabolites in Parkinson’s disease. Brain Res 275:321–328PubMedCrossRef Scatton B, Javoy-Agid F, Rouquier L, Dubois B, Agid Y (1983) Reduction of cortical dopamine, noradrenaline, serotonin and their metabolites in Parkinson’s disease. Brain Res 275:321–328PubMedCrossRef
go back to reference Schultz W (1986) Responses of midbrain dopamine neurons to behavioral trigger stimuli in the monkey. J Neurophysiol 56:1439–1461PubMed Schultz W (1986) Responses of midbrain dopamine neurons to behavioral trigger stimuli in the monkey. J Neurophysiol 56:1439–1461PubMed
go back to reference Schultz W, Apicella P, Ljungberg T (1993) Responses of monkey dopamine neurons to reward and conditioned stimuli during successive steps of learning a delayed response task. J Neurosci 13:900–913PubMed Schultz W, Apicella P, Ljungberg T (1993) Responses of monkey dopamine neurons to reward and conditioned stimuli during successive steps of learning a delayed response task. J Neurosci 13:900–913PubMed
go back to reference Sesack SR, Pickel VM (1992) Prefrontal cortical efferents in the rat synapse on unlabeled neuronal targets of catecholamine terminals in the nucleus accumbens septi and on dopamine neurons in the ventral tegmental area. J Comp Neurol 320:145–160PubMedCrossRef Sesack SR, Pickel VM (1992) Prefrontal cortical efferents in the rat synapse on unlabeled neuronal targets of catecholamine terminals in the nucleus accumbens septi and on dopamine neurons in the ventral tegmental area. J Comp Neurol 320:145–160PubMedCrossRef
go back to reference Shankaranarayana Rao BS, Desiraju T, Raju TR (1993) Neuronal plasticity induced by self-stimulation rewarding experience in rats—a study on alteration in dendritic branching in pyramidal neurons of hippocampus and motor cortex. Brain Res 627:216–224CrossRef Shankaranarayana Rao BS, Desiraju T, Raju TR (1993) Neuronal plasticity induced by self-stimulation rewarding experience in rats—a study on alteration in dendritic branching in pyramidal neurons of hippocampus and motor cortex. Brain Res 627:216–224CrossRef
go back to reference Shankaranarayana Rao BS, Desiraju T, Meti BL, Raju TR (1994) Plasticity of hippocampal and motor cortical pyramidal neurons induced by self-stimulation experience. Indian J Physiol Pharmacol 38:23–28 Shankaranarayana Rao BS, Desiraju T, Meti BL, Raju TR (1994) Plasticity of hippocampal and motor cortical pyramidal neurons induced by self-stimulation experience. Indian J Physiol Pharmacol 38:23–28
go back to reference Shankaranarayana Rao BS, Raju TR, Meti BL (1998a) Alterations in the density of excrescences in CA3 neurons of hippocampus in rats subjected to self-stimulation experience. Brain Res 804:320–324PubMedCrossRef Shankaranarayana Rao BS, Raju TR, Meti BL (1998a) Alterations in the density of excrescences in CA3 neurons of hippocampus in rats subjected to self-stimulation experience. Brain Res 804:320–324PubMedCrossRef
go back to reference Shankaranarayana Rao BS, Raju TR, Meti BL (1998b) Long-lasting structural changes in CA3 hippocampal and layer V motor cortical pyramidal neurons associated with self-stimulation rewarding experience: a quantitative Golgi study. Brain Res Bull 47:95–101PubMedCrossRef Shankaranarayana Rao BS, Raju TR, Meti BL (1998b) Long-lasting structural changes in CA3 hippocampal and layer V motor cortical pyramidal neurons associated with self-stimulation rewarding experience: a quantitative Golgi study. Brain Res Bull 47:95–101PubMedCrossRef
go back to reference Shankaranarayana Rao BS, Raju TR, Meti BL (1998c) Self-stimulation of lateral hypothalamus and ventral tegmentum increases the levels of noradrenaline, dopamine, glutamate, and AChE activity, but not 5-hydroxytryptamine and GABA levels in hippocampus and motor cortex. Neurochem Res 23:1053–1059PubMedCrossRef Shankaranarayana Rao BS, Raju TR, Meti BL (1998c) Self-stimulation of lateral hypothalamus and ventral tegmentum increases the levels of noradrenaline, dopamine, glutamate, and AChE activity, but not 5-hydroxytryptamine and GABA levels in hippocampus and motor cortex. Neurochem Res 23:1053–1059PubMedCrossRef
go back to reference Shankaranarayana Rao BS, Lakshmana MK, Meti BL, Raju TR (1999a) Chronic (−) deprenyl administration alters dendritic morphology of layer III pyramidal neurons in the prefrontal cortex of adult Bonnett monkeys. Brain Res 821:218–223PubMedCrossRef Shankaranarayana Rao BS, Lakshmana MK, Meti BL, Raju TR (1999a) Chronic (−) deprenyl administration alters dendritic morphology of layer III pyramidal neurons in the prefrontal cortex of adult Bonnett monkeys. Brain Res 821:218–223PubMedCrossRef
go back to reference Shankaranarayana Rao BS, Raju TR, Meti BL (1999b) Increased numerical density of synapses in CA3 region of hippocampus and molecular layer of motor cortex after self-stimulation rewarding experience. Neuroscience 91:799–803CrossRef Shankaranarayana Rao BS, Raju TR, Meti BL (1999b) Increased numerical density of synapses in CA3 region of hippocampus and molecular layer of motor cortex after self-stimulation rewarding experience. Neuroscience 91:799–803CrossRef
go back to reference Shankaranarayana Rao BS, Raju TR, Meti BL (1999c) Self-stimulation rewarding experience induced alterations in dendritic spine density in CA3 hippocampal and layer V motor cortical pyramidal neurons. Neuroscience 89:1067–1077PubMedCrossRef Shankaranarayana Rao BS, Raju TR, Meti BL (1999c) Self-stimulation rewarding experience induced alterations in dendritic spine density in CA3 hippocampal and layer V motor cortical pyramidal neurons. Neuroscience 89:1067–1077PubMedCrossRef
go back to reference Shankaranarayana Rao BS, Madhavi R, Sunanda RajuTR (2001) Complete reversal of dendritic atrophy in CA3 neurons of hippocampus by rehablitation in restrained stressed rats. Curr Sci 80:53–59 Shankaranarayana Rao BS, Madhavi R, Sunanda RajuTR (2001) Complete reversal of dendritic atrophy in CA3 neurons of hippocampus by rehablitation in restrained stressed rats. Curr Sci 80:53–59
go back to reference Srikumar BN, Raju TR, Shankaranarayana Rao BS (2006) The involvement of cholinergic and noradrenergic systems in behavioral recovery following oxotremorine treatment to chronically stressed rats. Neuroscience 143:679–688PubMedCrossRef Srikumar BN, Raju TR, Shankaranarayana Rao BS (2006) The involvement of cholinergic and noradrenergic systems in behavioral recovery following oxotremorine treatment to chronically stressed rats. Neuroscience 143:679–688PubMedCrossRef
go back to reference Srikumar BN, Raju TR, Shankaranarayana Rao BS (2007) Contrasting effects of bromocriptine on learning of a partially baited radial arm maze task in the presence and absence of restraint stress. Psychopharmacology (Berl) 193:363–374CrossRef Srikumar BN, Raju TR, Shankaranarayana Rao BS (2007) Contrasting effects of bromocriptine on learning of a partially baited radial arm maze task in the presence and absence of restraint stress. Psychopharmacology (Berl) 193:363–374CrossRef
go back to reference Steketee JD (2003) Neurotransmitter systems of the medial prefrontal cortex: potential role in sensitization to psychostimulants. Brain Res Brain Res Rev 41:203–228PubMedCrossRef Steketee JD (2003) Neurotransmitter systems of the medial prefrontal cortex: potential role in sensitization to psychostimulants. Brain Res Brain Res Rev 41:203–228PubMedCrossRef
go back to reference Sunanda Shankaranarayana, Rao BS, Raju TR (2000a) Chronic restraint stress impairs acquisition and retention of spatial memory task in rats. Curr Sci 79:1581–1584 Sunanda Shankaranarayana, Rao BS, Raju TR (2000a) Chronic restraint stress impairs acquisition and retention of spatial memory task in rats. Curr Sci 79:1581–1584
go back to reference Sunanda Shankaranarayana, Rao BS, Raju TR (2000b) Restraint stress-induced alterations in the levels of biogenic amines, amino acids, and AChE activity in the hippocampus. Neurochem Res 25:1547–1552PubMedCrossRef Sunanda Shankaranarayana, Rao BS, Raju TR (2000b) Restraint stress-induced alterations in the levels of biogenic amines, amino acids, and AChE activity in the hippocampus. Neurochem Res 25:1547–1552PubMedCrossRef
go back to reference Tassin JP, Bockaert J, Blanc G, Stinus L, Thierry AM, Lavielle S, Premont J, Glowinski J (1978) Topographical distribution of dopaminergic innervation and dopaminergic receptors of the anterior cerebral cortex of the rat. Brain Res 154:241–251PubMedCrossRef Tassin JP, Bockaert J, Blanc G, Stinus L, Thierry AM, Lavielle S, Premont J, Glowinski J (1978) Topographical distribution of dopaminergic innervation and dopaminergic receptors of the anterior cerebral cortex of the rat. Brain Res 154:241–251PubMedCrossRef
go back to reference Trulson ME, Preussler DW (1984) Dopamine-containing ventral tegmental area neurons in freely moving cats: activity during the sleep-waking cycle and effects of stress. Exp Neurol 83:367–377PubMed Trulson ME, Preussler DW (1984) Dopamine-containing ventral tegmental area neurons in freely moving cats: activity during the sleep-waking cycle and effects of stress. Exp Neurol 83:367–377PubMed
go back to reference Van Eden CG, Hoorneman EM, Buijs RM, Matthijssen MA, Geffard M, Uylings HB (1987) Immunocytochemical localization of dopamine in the prefrontal cortex of the rat at the light and electron microscopical level. Neuroscience 22:849–862PubMedCrossRef Van Eden CG, Hoorneman EM, Buijs RM, Matthijssen MA, Geffard M, Uylings HB (1987) Immunocytochemical localization of dopamine in the prefrontal cortex of the rat at the light and electron microscopical level. Neuroscience 22:849–862PubMedCrossRef
go back to reference Veena J, Srikumar BN, Raju TR, Shankaranarayana Rao BS (2009) Exposure to enriched environment restores the survival and differentiation of new born cells in the hippocampus and ameliorates depressive symptoms in chronically stressed rats. Neurosci Lett 455:178–182PubMedCrossRef Veena J, Srikumar BN, Raju TR, Shankaranarayana Rao BS (2009) Exposure to enriched environment restores the survival and differentiation of new born cells in the hippocampus and ameliorates depressive symptoms in chronically stressed rats. Neurosci Lett 455:178–182PubMedCrossRef
go back to reference Wang HD, Deutch AY (2008) Dopamine depletion of the prefrontal cortex induces dendritic spine loss: reversal by atypical antipsychotic drug treatment. Neuropsychopharmacology 33:1276–1286PubMedCrossRef Wang HD, Deutch AY (2008) Dopamine depletion of the prefrontal cortex induces dendritic spine loss: reversal by atypical antipsychotic drug treatment. Neuropsychopharmacology 33:1276–1286PubMedCrossRef
go back to reference Wellman CL (2001) Dendritic reorganization in pyramidal neurons in medial prefrontal cortex after chronic corticosterone administration. J Neurobiol 49:245–253PubMedCrossRef Wellman CL (2001) Dendritic reorganization in pyramidal neurons in medial prefrontal cortex after chronic corticosterone administration. J Neurobiol 49:245–253PubMedCrossRef
go back to reference Yoganarasimha D, Shankaranarayana Rao BS, Raju TR, Meti BL (1998) Facilitation of acquisition and performance of operant and spatial learning tasks in self-stimulation experienced rats. Behav Neurosci 112:725–729PubMedCrossRef Yoganarasimha D, Shankaranarayana Rao BS, Raju TR, Meti BL (1998) Facilitation of acquisition and performance of operant and spatial learning tasks in self-stimulation experienced rats. Behav Neurosci 112:725–729PubMedCrossRef
go back to reference Zilles K, Wree A (1995) Cortex: areal and laminar structure. In: Paxinos G (ed) The rat nervous system, 2nd edn. Academic Press, San Diego, pp 496–685 Zilles K, Wree A (1995) Cortex: areal and laminar structure. In: Paxinos G (ed) The rat nervous system, 2nd edn. Academic Press, San Diego, pp 496–685
Metadata
Title
Reversal of stress-induced dendritic atrophy in the prefrontal cortex by intracranial self-stimulation
Authors
K. Ramkumar
B. N. Srikumar
D. Venkatasubramanian
R. Siva
B. S. Shankaranarayana Rao
T. R. Raju
Publication date
01-05-2012
Publisher
Springer Vienna
Published in
Journal of Neural Transmission / Issue 5/2012
Print ISSN: 0300-9564
Electronic ISSN: 1435-1463
DOI
https://doi.org/10.1007/s00702-011-0740-4

Other articles of this Issue 5/2012

Journal of Neural Transmission 5/2012 Go to the issue

Biological Psychiatry - CONy Pro/Con debate

Where does a migraine attack originate? In the brainstem

Biological Psychiatry - CONy Pro/Con debate

Why all migraine patients should be treated with magnesium