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PMID: 22378875 Published · ppublish English Comparative Study Journal Article Research Support, N.I.H., Extramural Research Support, Non-U.S. Gov't

Disruption of prefrontal cortex large scale neuronal activity by different classes of psychotomimetic drugs.

Wood J, Kim Y, Moghaddam B

Abstract

In the absence of overt cellular pathology but profound perceptual disorganization and cognitive deficits, schizophrenia is increasingly considered a disorder of neural coordination. Thus, different causal factors can similarly interrupt the dynamic function of neuronal ensembles and networks, in particular in the prefrontal cortex (PFC), leading to behavioral disorganization. The importance of establishing preclinical biomarkers for this aberrant function has prompted investigations into the nature of psychotomimetic drug effects on PFC neuronal activity. The drugs used in this context include serotonergic hallucinogens, amphetamine, and NMDA receptor antagonists. A prominent line of thinking is that these drugs create psychotomimetic states by similarly disinhibiting the activity of PFC pyramidal neurons. In the present study we did not find evidence in support of this mechanism in PFC subregions of freely moving rats. Whereas the NMDA receptor antagonist MK801 increased PFC population activity, the serotonergic hallucinogen DOI dose-dependently decreased population activity. Amphetamine did not strongly affect this measure. Despite different effects on the direction of change in activity, all three drugs caused similar net disruptions of population activity and modulated gamma oscillations. We also observed reduced correlations between spike-rate and local field potential power selectively in the gamma band suggesting that these drugs disconnect spike-discharge from PFC gamma oscillators. Gamma band oscillations support cognitive functions affected in schizophrenia. These findings provide insight into mechanisms that may lead to cortical processing deficits in schizophrenia and provide a novel electrophysiological approach for phenotypic characterization of animal models of this disease.

MeSH Terms
Action Potentials/drug effects,physiology Amphetamines/classification,pharmacology Animals Dizocilpine Maleate/classification,pharmacology Hallucinogens/classification,pharmacology Male Neurons/drug effects,physiology Prefrontal Cortex/drug effects,physiology Random Allocation Rats Rats, Sprague-Dawley
Chemicals
Amphetamines Hallucinogens Dizocilpine Maleate 4-iodo-2,5-dimethoxyphenylisopropylamine
Authors & Affiliations
3 authors, click to expand affiliations / ORCID
Wood Jesse
Department of Neuroscience, University of Pittsburgh, Pittsburgh, Pennsylvania 15260, USA.
Kim Yunbok
Moghaddam Bita
References (75)
75 references, click to expand
  1. Psychedelics and schizophrenia.
    Trends Neurosci. 2009 Apr;32(4):225-32 PMID: 19269047
  2. Serotonin, via 5-HT2A receptors, increases EPSCs in layer V pyramidal cells of prefrontal cortex by an asynchronous mode of glutamate release.
    Brain Res. 1999 Apr 17;825(1-2):161-71 PMID: 10216183
  3. The local field potential reflects surplus spike synchrony.
    Cereb Cortex. 2011 Dec;21(12):2681-95 PMID: 21508303
  4. Serotonin induces excitatory postsynaptic potentials in apical dendrites of neocortical pyramidal cells.
    Neuropharmacology. 1997 Apr-May;36(4-5):589-99 PMID: 9225284
  5. Orbitofrontal cortex neurons as a common target for classic and glutamatergic antipsychotic drugs.
    Proc Natl Acad Sci U S A. 2008 Nov 18;105(46):18041-6 PMID: 19004793
  6. Analysis of dynamic brain imaging data.
    Biophys J. 1999 Feb;76(2):691-708 PMID: 9929474
  7. Coupling between neuronal firing rate, gamma LFP, and BOLD fMRI is related to interneuronal correlations.
    Curr Biol. 2007 Aug 7;17(15):1275-85 PMID: 17686438
  8. Recruitment of parvalbumin-positive interneurons determines hippocampal function and associated behavior.
    Neuron. 2007 Feb 15;53(4):591-604 PMID: 17296559
  9. Gamma-band synchronization in visual cortex predicts speed of change detection.
    Nature. 2006 Feb 9;439(7077):733-6 PMID: 16372022
  10. The hallucinogen 1-[2,5-dimethoxy-4-iodophenyl]-2-aminopropane (DOI) increases cortical extracellular glutamate levels in rats.
    Neurosci Lett. 2003 Aug 7;346(3):137-40 PMID: 12853103
  11. Hypofrontality in schizophrenia: distributed dysfunctional circuits in neuroleptic-naïve patients.
    Lancet. 1997 Jun 14;349(9067):1730-4 PMID: 9193383
  12. Activation of metabotropic glutamate 2/3 receptors reverses the effects of NMDA receptor hypofunction on prefrontal cortex unit activity in awake rats.
    J Neurophysiol. 2005 Apr;93(4):1989-2001 PMID: 15590730
  13. NMDA receptor hypofunction produces opposite effects on prefrontal cortex interneurons and pyramidal neurons.
    J Neurosci. 2007 Oct 24;27(43):11496-500 PMID: 17959792
  14. Activation of serotonin receptors modulates synaptic transmission in rat cerebral cortex.
    J Neurophysiol. 1999 Dec;82(6):2989-99 PMID: 10601434
  15. Serotonin receptor activation inhibits sodium current and dendritic excitability in prefrontal cortex via a protein kinase C-dependent mechanism.
    J Neurosci. 2002 Aug 15;22(16):6846-55 PMID: 12177182
  16. Targeting metabotropic glutamate receptors for treatment of the cognitive symptoms of schizophrenia.
    Psychopharmacology (Berl). 2004 Jun;174(1):39-44 PMID: 15205877
  17. Electrophysiological characterization of 5-hydroxytryptamine2 receptors in the rat medial prefrontal cortex.
    J Pharmacol Exp Ther. 1990 Jan;252(1):171-8 PMID: 2137174
  18. Abnormal neural oscillations and synchrony in schizophrenia.
    Nat Rev Neurosci. 2010 Feb;11(2):100-13 PMID: 20087360
  19. Neuronal oscillations in cortical networks.
    Science. 2004 Jun 25;304(5679):1926-9 PMID: 15218136
  20. Event-related fMRI of frontotemporal activity during word encoding and recognition in schizophrenia.
    Am J Psychiatry. 2004 Jun;161(6):1004-15 PMID: 15169688
  21. AMPA receptor involvement in 5-hydroxytryptamine2A receptor-mediated pre-frontal cortical excitatory synaptic currents and DOI-induced head shakes.
    Prog Neuropsychopharmacol Biol Psychiatry. 2008 Jan 1;32(1):62-71 PMID: 17728034
  22. Responsiveness of 5-HT(1A) and 5-HT2 receptors in the rat orbitofrontal cortex after long-term serotonin reuptake inhibition.
    J Psychiatry Neurosci. 2005 Jul;30(4):268-74 PMID: 16049570
  23. Evidence for involvement of 5-HT2 and 5-HT1C receptors in the behavioral effects of the 5-HT agonist 1-(2,5-dimethoxy-4-iodophenyl aminopropane)-2 (DOI).
    Neurosci Lett. 1990 Jul 17;115(1):74-80 PMID: 2216059
  24. Behavioral evidence for interactions between a hallucinogenic drug and group II metabotropic glutamate receptors.
    Neuropsychopharmacology. 2000 Nov;23(5):569-76 PMID: 11027922
  25. DOI-Induced activation of the cortex: dependence on 5-HT2A heteroceptors on thalamocortical glutamatergic neurons.
    J Neurosci. 2000 Dec 1;20(23):8846-52 PMID: 11102493
  26. Impaired recruitment of the hippocampus during conscious recollection in schizophrenia.
    Nat Neurosci. 1998 Aug;1(4):318-23 PMID: 10195166
  27. Functional Interaction Between NMDA and mGlu5 Receptors: Effects on Working Memory, Instrumental Learning, Motor Behaviors, and Dopamine Release.
    Neuropsychopharmacology. 2004 Jul;29(7):1259-69 PMID: 15010696
  28. Serotonin research: contributions to understanding psychoses.
    Trends Pharmacol Sci. 2008 Sep;29(9):445-53 PMID: 19086254
  29. The electrophysiology of prefrontal serotonin systems: therapeutic implications for mood and psychosis.
    Biol Psychiatry. 1998 Dec 1;44(11):1118-27 PMID: 9836015
  30. In vivo electrophysiological characterization of 5-HT receptors in the guinea pig head of caudate nucleus and orbitofrontal cortex.
    Neuropharmacology. 1997 Apr-May;36(4-5):577-88 PMID: 9225283
  31. Psilocybin induces schizophrenia-like psychosis in humans via a serotonin-2 agonist action.
    Neuroreport. 1998 Dec 1;9(17):3897-902 PMID: 9875725
  32. The dopamine hypothesis of schizophrenia: focus on the dopamine receptor.
    Am J Psychiatry. 1976 Feb;133(2):197-202 PMID: 1251927
  33. Hallucinogens recruit specific cortical 5-HT(2A) receptor-mediated signaling pathways to affect behavior.
    Neuron. 2007 Feb 1;53(3):439-52 PMID: 17270739
  34. Bringing order to the glutamate chaos in schizophrenia.
    Neuron. 2003 Dec 4;40(5):881-4 PMID: 14659087
  35. Serotonin (5-HT) induces IPSPs in pyramidal layer cells of rat piriform cortex: evidence for the involvement of a 5-HT2-activated interneuron.
    Brain Res. 1990 Jan 1;506(1):62-9 PMID: 2105822
  36. Working memory dysfunction in schizophrenia.
    J Neuropsychiatry Clin Neurosci. 1994 Fall;6(4):348-57 PMID: 7841806
  37. Serotonin model of schizophrenia: emerging role of glutamate mechanisms.
    Brain Res Brain Res Rev. 2000 Mar;31(2-3):302-12 PMID: 10719157
  38. Impaired hippocampal recruitment during normal modulation of memory performance in schizophrenia.
    Biol Psychiatry. 2003 Jan 1;53(1):48-55 PMID: 12513944
  39. Local field potential in cortical area MT: stimulus tuning and behavioral correlations.
    J Neurosci. 2006 Jul 26;26(30):7779-90 PMID: 16870724
  40. The pipeline and future of drug development in schizophrenia.
    Mol Psychiatry. 2007 Oct;12(10):904-22 PMID: 17667958
  41. Chaos in neuronal networks with balanced excitatory and inhibitory activity.
    Science. 1996 Dec 6;274(5293):1724-6 PMID: 8939866
  42. Nucleus accumbens deep brain stimulation produces region-specific alterations in local field potential oscillations and evoked responses in vivo.
    J Neurosci. 2009 Apr 22;29(16):5354-63 PMID: 19386932
  43. "Psychedelic" experiences in acute psychoses.
    Arch Gen Psychiatry. 1966 Sep;15(3):240-8 PMID: 5911238
  44. Divergent plasticity of prefrontal cortex networks.
    Neuropsychopharmacology. 2008 Jan;33(1):42-55 PMID: 17912252
  45. Identification of a serotonin/glutamate receptor complex implicated in psychosis.
    Nature. 2008 Mar 6;452(7183):93-7 PMID: 18297054
  46. Neural circuitry of the prefrontal cortex in schizophrenia.
    Arch Gen Psychiatry. 1995 Apr;52(4):269-73; discussion 277-8 PMID: 10681304
  47. N-methyl d-aspartate receptor antagonists ketamine and MK-801 induce wake-related aberrant gamma oscillations in the rat neocortex.
    Biol Psychiatry. 2008 Apr 15;63(8):730-5 PMID: 18022604
  48. Molecular targets for treating cognitive dysfunction in schizophrenia.
    Schizophr Bull. 2007 Sep;33(5):1100-19 PMID: 17617664
  49. 5-HT2 receptor regulation of extracellular GABA levels in the prefrontal cortex.
    Neuropsychopharmacology. 1999 Jan;20(1):92-6 PMID: 9885788
  50. Sensitivity to perturbations in vivo implies high noise and suggests rate coding in cortex.
    Nature. 2010 Jul 1;466(7302):123-7 PMID: 20596024
  51. Cognitive dysfunction in schizophrenia: convergence of gamma-aminobutyric acid and glutamate alterations.
    Arch Neurol. 2006 Oct;63(10):1372-6 PMID: 17030651
  52. Modulation of oscillatory neuronal synchronization by selective visual attention.
    Science. 2001 Feb 23;291(5508):1560-3 PMID: 11222864
  53. An event-related brain potential substrate of disturbed response monitoring in paranoid schizophrenic patients.
    J Abnorm Psychol. 1999 May;108(2):337-46 PMID: 10369044
  54. Effects of (+/-)-DOI on medial prefrontal cortical cells: a microiontophoretic study.
    Brain Res. 1989 Oct 2;498(2):393-6 PMID: 2790491
  55. In vivo modulation of the activity of pyramidal neurons in the rat medial prefrontal cortex by 5-HT2A receptors: relationship to thalamocortical afferents.
    Cereb Cortex. 2003 Aug;13(8):870-82 PMID: 12853374
  56. The gamma cycle.
    Trends Neurosci. 2007 Jul;30(7):309-16 PMID: 17555828
  57. Distinct contributions of glutamate and dopamine receptors to temporal aspects of rodent working memory using a clinically relevant task.
    Psychopharmacology (Berl). 2001 Jan;153(3):353-64 PMID: 11271408
  58. Lysergic acid diethylamide and [-]-2,5-dimethoxy-4-methylamphetamine increase extracellular glutamate in rat prefrontal cortex.
    Brain Res. 2004 Oct 8;1023(1):134-40 PMID: 15364028
  59. Cellular mechanisms of neuronal population oscillations in the hippocampus in vitro.
    Annu Rev Neurosci. 2004;27:247-78 PMID: 15217333
  60. A neural coding scheme formed by the combined function of gamma and theta oscillations.
    Schizophr Bull. 2008 Sep;34(5):974-80 PMID: 18559405
  61. Subanesthetic effects of the noncompetitive NMDA antagonist, ketamine, in humans. Psychotomimetic, perceptual, cognitive, and neuroendocrine responses.
    Arch Gen Psychiatry. 1994 Mar;51(3):199-214 PMID: 8122957
  62. Neurophysiological evidence of error-monitoring deficits in patients with schizophrenia.
    Cereb Cortex. 2002 Aug;12(8):840-6 PMID: 12122032
  63. Physiologic dysfunction of dorsolateral prefrontal cortex in schizophrenia. I. Regional cerebral blood flow evidence.
    Arch Gen Psychiatry. 1986 Feb;43(2):114-24 PMID: 3947207
  64. The anticonvulsant MK-801 is a potent N-methyl-D-aspartate antagonist.
    Proc Natl Acad Sci U S A. 1986 Sep;83(18):7104-8 PMID: 3529096
  65. Neural dissociation between visual awareness and spatial attention.
    J Neurosci. 2008 Mar 5;28(10):2667-79 PMID: 18322110
  66. High-frequency gamma oscillations coexist with low-frequency gamma oscillations in the rat visual cortex in vitro.
    Eur J Neurosci. 2010 Apr;31(8):1435-45 PMID: 20384769
  67. Block of N-methyl-D-aspartate-activated current by the anticonvulsant MK-801: selective binding to open channels.
    Proc Natl Acad Sci U S A. 1988 Feb;85(4):1307-11 PMID: 2448800
  68. The gamma oscillation: master or slave?
    Brain Topogr. 2009 Jun;22(1):24-6 PMID: 19205863
  69. Unconscious learning versus visual perception: dissociable roles for gamma oscillations revealed in MEG.
    J Cogn Neurosci. 2009 Dec;21(12):2287-99 PMID: 18855554
  70. 5-HT2A receptor or alpha1-adrenoceptor activation induces excitatory postsynaptic currents in layer V pyramidal cells of the medial prefrontal cortex.
    Eur J Pharmacol. 1999 Feb 19;367(2-3):197-206 PMID: 10078993
  71. Anterior cingulate cortex activity and impaired self-monitoring of performance in patients with schizophrenia: an event-related fMRI study.
    Am J Psychiatry. 2001 Sep;158(9):1423-8 PMID: 11532726
  72. 5-Hydroxytryptamine-induced excitatory postsynaptic currents in neocortical layer V pyramidal cells: suppression by mu-opiate receptor activation.
    Neuroscience. 1998 Sep;86(2):485-97 PMID: 9881863
  73. NMDA receptor hypofunction produces concomitant firing rate potentiation and burst activity reduction in the prefrontal cortex.
    Proc Natl Acad Sci U S A. 2004 Jun 1;101(22):8467-72 PMID: 15159546
  74. In vivo electrophysiological examination of 5-HT2 responses in 5-HT2C receptor mutant mice.
    Naunyn Schmiedebergs Arch Pharmacol. 2000 May;361(5):484-91 PMID: 10832601
  75. The prefrontal cortex: a target for antipsychotic drugs.
    Acta Psychiatr Scand. 2010 Jan;121(1):11-21 PMID: 20059453
Article Info
Journal
The Journal of neuroscience : the official journal of the Society for Neuroscience
Abbr.
J Neurosci
ISSN
1529-2401
Published
2012-02-29
Pages
3022-31
Language
English
Region
United States
NLM ID
8102140
PMCID
PMC3531997
Subset
IM
Grants
NIMH NIH HHS · R37 MH048404 · United States
NIMH NIH HHS · R37 MH048404-22 · United States
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