Spontaneous Gamma Activity in Schizophrenia

被引:183
作者
Hirano, Yoji [1 ,2 ,3 ]
Oribe, Naoya [1 ,2 ,3 ]
Kanba, Shigenobu [3 ]
Onitsuka, Toshiaki [3 ]
Nestor, Paul G. [1 ,4 ]
Spencer, Kevin M. [1 ,2 ]
机构
[1] Vet Affairs Boston Healthcare Syst, Res Serv, Neural Dynam Lab, Boston, MA 02130 USA
[2] Harvard Univ, Sch Med, Dept Psychiat, Boston, MA 02115 USA
[3] Kyushu Univ, Grad Sch Med Sci, Dept Neuropsychiat, Fukuoka 812, Japan
[4] Univ Massachusetts, Dept Psychol, Boston, MA 02125 USA
基金
美国国家卫生研究院; 日本学术振兴会;
关键词
AUDITORY HALLUCINATION SYMPTOMS; PREFRONTAL CORTEX; PARVALBUMIN INTERNEURONS; RECEPTOR ANTAGONISTS; STEADY-STATE; MOUSE MODEL; OSCILLATIONS; SYNCHRONY; DEFICITS; NETWORK;
D O I
10.1001/jamapsychiatry.2014.2642
中图分类号
R749 [精神病学];
学科分类号
100205 ;
摘要
IMPORTANCE A major goal of translational neuroscience is to identify neural circuit abnormalities in neuropsychiatric disorders that can be studied in animal models to facilitate the development of new treatments. Oscillations in the gamma band (30-100 Hz) of the electroencephalogram have received considerable interest as the basic mechanisms underlying these oscillations are understood, and gamma abnormalities have been found in schizophrenia (SZ). Animal models of SZ based on hypofunction of the N-methyl-D-aspartate receptor (NMDAR) demonstrate increased spontaneous broadband gamma power, but this phenomenon has not been identified clearly in patients with SZ. OBJECTIVE To examine spontaneous gamma power and its relationship to evoked gamma oscillations in the auditory cortex of patients with SZ. DESIGN, SETTING, AND PARTICIPANTS We performed a cross-sectional study including 24 patients with chronic SZ and 24 matched healthy control participants at the Veterans Affairs Boston Healthcare System from January 1, 2009, through December 31, 2012. Electroencephalograms were obtained during auditory steady-state stimulation at multiple frequencies (20, 30, and 40 Hz) and during a resting state in 18 participants in each group. MAIN OUTCOMES AND MEASURES Electroencephalographic activity in the auditory cortex was estimated using dipole source localization. Auditory steady-state response (ASSR) measures included the phase-locking factor and evoked power. Spontaneous gamma power was measured as induced (non-phase-locked) gamma power in the ASSR data and as total gamma power in the resting-state data. RESULTS The ASSR phase-locking factor was reduced significantly in patients with SZ compared with controls for the 40-Hz stimulation (mean [SD], 0.075 [0.028] vs 0.113 [0.065]; F-1,F-46 = 6.79 [P = .012]) but not the 20- or the 30-Hz stimulation (0.042 [0.038] vs 0.043 [0.034]; F-1,F-46 = 0.006 [P = .938] and 0.084 [0.040] vs 0.098 [0.050]; F-1,F-46 = 1.605 [P = .212], respectively), repeating previous findings. The mean [SD] broadband-induced (30-100 Hz) gamma power was increased in patients with SZ compared with controls during steady-state stimulation (6.579 [3.783] vs 3.984 [1.843]; F-1,F-46 = 9.128 [P = .004]; d = 0.87) but not during rest (0.006 [0.003] vs 0.005 [0.002]; F-1,F-34 = 1.067 [P = .309]; d = 0.35). Induced gamma power in the left hemisphere of the patients with SZ during the 40-Hz stimulation was positively correlated with auditory hallucination symptoms (tangential,. = 0.587 [P = .031]; radial,. = 0.593 [P = .024]) and negatively correlated with the ASSR phase-locking factor (baseline:. = -0.572 [P = .024]; ASSR:. = -0.568 [P = .032]). CONCLUSIONS AND RELEVANCE Spontaneous gamma activity is increased during auditory steady-state stimulation in SZ, reflecting a disruption in the normal balance of excitation and inhibition. This phenomenon interacts with evoked oscillations, possibly contributing to the gamma ASSR deficit found in SZ. The similarity of increased spontaneous gamma power in SZ to the findings of increased spontaneous gamma power in animal models of NMDAR hypofunction suggests that spontaneous gamma power could serve as a biomarker for the integrity of NMDARs on parvalbumin-expressing inhibitory interneurons in humans and in animal models of neuropsychiatric disorders.
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收藏
页码:813 / 821
页数:9
相关论文
共 65 条
  • [1] Mouse behavioral endophenotypes for schizophrenia
    Amann, Laura C.
    Gandal, Michael J.
    Halene, Tobias B.
    Ehrlichman, Richard S.
    White, Samantha L.
    McCarren, Hilary S.
    Siegel, Steven J.
    [J]. BRAIN RESEARCH BULLETIN, 2010, 83 (3-4) : 147 - 161
  • [2] Neuregulin and dopamine modulation of hippocampal gamma oscillations is dependent on dopamine D4 receptors
    Andersson, Richard H.
    Johnston, April
    Herman, Paul A.
    Winzer-Serhan, Ursula H.
    Karavanova, Irina
    Vullhorst, Detlef
    Fisahn, Andre
    Buonanno, Andres
    [J]. PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA, 2012, 109 (32) : 13118 - 13123
  • [3] Andreasen NC., 1984, SCALE ASSESSMENT POS
  • [4] Postnatal NMDA receptor ablation in corticolimbic interneurons confers schizophrenia-like phenotypes
    Belforte, Juan E.
    Zsiros, Veronika
    Sklar, Elyse R.
    Jiang, Zhihong
    Yu, Gu
    Li, Yuqing
    Quinlan, Elizabeth M.
    Nakazawa, Kazu
    [J]. NATURE NEUROSCIENCE, 2010, 13 (01) : 76 - U240
  • [5] Parvalbumin Cell Ablation of NMDA-RI Causes Increased Resting Network Excitability with Associated Social and Self-Care Deficits
    Billingslea, Eddie N.
    Tatard-Leitman, Valerie M.
    Anguiano, Jaynie
    Jutzeler, Catherine R.
    Suh, Jimmy
    Saunders, John A.
    Morita, Susumu
    Featherstone, Robert E.
    Ortinski, Pavel I.
    Gandal, Michael J.
    Lin, Robert
    Liang, Yuling
    Gur, Raquel E.
    Carlson, Gregory C.
    Hahn, Chang-Gyu
    Siegel, Steven J.
    [J]. NEUROPSYCHOPHARMACOLOGY, 2014, 39 (07) : 1603 - 1613
  • [6] Glutamatergic deficits and parvalbumin-containing inhibitory neurons in the prefrontal cortex in schizophrenia
    Bitanihirwe, B. K. Y.
    Lim, M. P.
    Kelley, J. F.
    Kaneko, T.
    Woo, T. U. W.
    [J]. BMC PSYCHIATRY, 2009, 9
  • [7] Steady State Responses: Electrophysiological Assessment of Sensory Function in Schizophrenia
    Brenner, Colleen A.
    Krishnan, Giri P.
    Vohs, Jenifer L.
    Ahn, Woo-Young
    Hetrick, William P.
    Morzorati, Sandra L.
    O'Donnell, Brian F.
    [J]. SCHIZOPHRENIA BULLETIN, 2009, 35 (06) : 1065 - 1077
  • [8] Mechanisms of Gamma Oscillations
    Buzsaki, Gyoergy
    Wang, Xiao-Jing
    [J]. ANNUAL REVIEW OF NEUROSCIENCE, VOL 35, 2012, 35 : 203 - 225
  • [9] A critical role for NMDA receptors in parvalbumin interneurons for gamma rhythm induction and behavior
    Carlen, M.
    Meletis, K.
    Siegle, J. H.
    Cardin, J. A.
    Futai, K.
    Vierling-Claassen, D.
    Ruehlmann, C.
    Jones, S. R.
    Deisseroth, K.
    Sheng, M.
    Moore, C. I.
    Tsai, L-H
    [J]. MOLECULAR PSYCHIATRY, 2012, 17 (05) : 537 - 548
  • [10] Glutamate and schizophrenia: beyond the dopamine hypothesis.
    Joseph T. Coyle
    [J]. Cellular and Molecular Neurobiology, 2006, 26 (4) : 365 - 384