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PMID: 23892770 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Thalamocortical connectivity during resting state in schizophrenia.

European archives of psychiatry and clinical neuroscience ·Vol. 264 ·No. 2 ·2014-03-00 ·Pages 111-9

Klingner CM, Langbein K, Dietzek M, Smesny S, Witte OW, Sauer H, Nenadic I

Abstract

Schizophrenia has been linked to disturbed connectivity between large-scale brain networks. Altered thalamocortical connectivity might be a major mechanism mediating regionally distributed dysfunction, yet it is only incompletely understood. We analysed functional magnetic resonance imaging data obtained during resting state from 22 DSM-IV schizophrenia patients and 22 matched healthy controls to directly assess the differences in thalamocortical functional connectivity. We identified significantly higher overall thalamocortical functional connectivity in patients, which was mostly accounted for by difference in thalamic connections to right ventrolateral prefrontal and bilateral secondary motor and sensory (superior temporal and lateral occipital) cortical areas. Voxelwise analysis showed group differences at the thalamic level to be mostly in medial and anterior thalamic nuclei and arising thalamocortical changes to be mostly due to higher positive correlations in prefrontal and superior temporal correlations, as well as absent negative correlations to sensory areas in patients. Our findings demonstrate that different types of thalamocortical dysfunction contribute to network alterations, including lack of inhibitory interaction attributed to the lack of significant negative thalamic/sensory cortical connections. These results emphasize the functional importance of the thalamus in the pathophysiology of schizophrenia.

MeSH Terms
Adult Brain Mapping Cerebral Cortex/blood supply,pathology Echo-Planar Imaging Female Functional Laterality Humans Image Processing, Computer-Assisted Magnetic Resonance Imaging Male Neural Pathways/pathology Oxygen/blood Rest/physiology Schizophrenia/pathology,physiopathology Thalamus/pathology Young Adult
Chemicals
Oxygen
Authors & Affiliations
7 authors, click to expand affiliations / ORCID
Klingner Carsten M
Department of Psychiatry and Psychotherapy, Jena University Hospital, Philosophenweg 3, 07743, Jena, Germany.
Langbein Kerstin
Dietzek Maren
Smesny Stefan
Witte Otto W
Sauer Heinrich
Nenadic Igor
References (61)
61 references, click to expand
  1. Functional connectivity and brain networks in schizophrenia.
    J Neurosci. 2010 Jul 14;30(28):9477-87 PMID: 20631176
  2. Thalamic-insular dysconnectivity in schizophrenia: evidence from structural equation modeling.
    Hum Brain Mapp. 2012 Mar;33(3):740-52 PMID: 21484952
  3. Circuits formultisensory integration and attentional modulation through the prefrontal cortex and the thalamic reticular nucleus in primates.
    Rev Neurosci. 2007;18(6):417-38 PMID: 18330211
  4. Neurophysiological architecture of functional magnetic resonance images of human brain.
    Cereb Cortex. 2005 Sep;15(9):1332-42 PMID: 15635061
  5. Functional connectivity between task-positive and task-negative brain areas and its relation to working memory performance.
    Magn Reson Imaging. 2010 Oct;28(8):1051-7 PMID: 20409665
  6. The thalamus and schizophrenia: current status of research.
    Acta Neuropathol. 2009 Apr;117(4):347-68 PMID: 18604544
  7. The thalamus is more than just a relay.
    Curr Opin Neurobiol. 2007 Aug;17(4):417-22 PMID: 17707635
  8. Disrupted small-world networks in schizophrenia.
    Brain. 2008 Apr;131(Pt 4):945-61 PMID: 18299296
  9. Coherent spontaneous activity accounts for trial-to-trial variability in human evoked brain responses.
    Nat Neurosci. 2006 Jan;9(1):23-5 PMID: 16341210
  10. Thalamic morphology in schizophrenia and schizoaffective disorder.
    J Psychiatr Res. 2011 Mar;45(3):378-85 PMID: 20797731
  11. The function of efference copy signals: implications for symptoms of schizophrenia.
    Vision Res. 2013 Jan 14;76:124-33 PMID: 23159418
  12. Correlations and anticorrelations in resting-state functional connectivity MRI: a quantitative comparison of preprocessing strategies.
    Neuroimage. 2009 Oct 1;47(4):1408-16 PMID: 19442749
  13. Investigation of anatomical thalamo-cortical connectivity and FMRI activation in schizophrenia.
    Neuropsychopharmacology. 2012 Jan;37(2):499-507 PMID: 21956440
  14. Grouping of brain rhythms in corticothalamic systems.
    Neuroscience. 2006;137(4):1087-106 PMID: 16343791
  15. Low-frequency BOLD fluctuations demonstrate altered thalamocortical connectivity in schizophrenia.
    Schizophr Bull. 2010 Jul;36(4):713-22 PMID: 18990709
  16. Functional connectivity: the principal-component analysis of large (PET) data sets.
    J Cereb Blood Flow Metab. 1993 Jan;13(1):5-14 PMID: 8417010
  17. Neurophysiological measures of sensory registration, stimulus discrimination, and selection in schizophrenia patients.
    Curr Top Behav Neurosci. 2010;4:283-309 PMID: 21312404
  18. The role of the thalamus in the flow of information to the cortex.
    Philos Trans R Soc Lond B Biol Sci. 2002 Dec 29;357(1428):1695-708 PMID: 12626004
  19. Brain connectivity is not only lower but different in schizophrenia: a combined anatomical and functional approach.
    Biol Psychiatry. 2010 Jul 1;68(1):61-9 PMID: 20497901
  20. Perceptual plasticity is mediated by connectivity changes of the medial thalamic nucleus.
    Hum Brain Mapp. 2013 Sep;34(9):2343-52 PMID: 22451353
  21. PET and MRI of the thalamus in never-medicated patients with schizophrenia.
    Am J Psychiatry. 1996 Feb;153(2):191-9 PMID: 8561198
  22. Recalling word lists reveals "cognitive dysmetria" in schizophrenia: a positron emission tomography study.
    Am J Psychiatry. 1999 Mar;156(3):386-92 PMID: 10080553
  23. Automated anatomical labeling of activations in SPM using a macroscopic anatomical parcellation of the MNI MRI single-subject brain.
    Neuroimage. 2002 Jan;15(1):273-89 PMID: 11771995
  24. Magnetic resonance imaging of mediodorsal, pulvinar, and centromedian nuclei of the thalamus in patients with schizophrenia.
    Arch Gen Psychiatry. 2003 Oct;60(10):983-91 PMID: 14557143
  25. Widespread functional disconnectivity in schizophrenia with resting-state functional magnetic resonance imaging.
    Neuroreport. 2006 Feb 6;17(2):209-13 PMID: 16407773
  26. Thalamocortical disconnection in the orbitofrontal region associated with cortical thinning in schizophrenia.
    JAMA Psychiatry. 2013 Jan;70(1):12-21 PMID: 22945538
  27. Subcortical visual dysfunction in schizophrenia drives secondary cortical impairments.
    Brain. 2007 Feb;130(Pt 2):417-30 PMID: 16984902
  28. Hierarchical organization of human cortical networks in health and schizophrenia.
    J Neurosci. 2008 Sep 10;28(37):9239-48 PMID: 18784304
  29. EEG α power modulation of fMRI resting-state connectivity.
    Brain Connect. 2012;2(5):254-64 PMID: 22938826
  30. Attention orienting dysfunction during salient novel stimulus processing in schizophrenia.
    Schizophr Res. 2005 Jun 15;75(2-3):159-71 PMID: 15885507
  31. Resting-state brain activity in schizophrenia and major depression: a quantitative meta-analysis.
    Schizophr Bull. 2013 Mar;39(2):358-65 PMID: 22080493
  32. Meta-analysis of thalamic size in schizophrenia.
    Biol Psychiatry. 2001 Jan 1;49(1):28-38 PMID: 11163777
  33. Thalamic dysfunction in schizophrenia: neurochemical, neuropathological, and in vivo imaging abnormalities.
    Schizophr Res. 2004 Aug 1;69(2-3):237-53 PMID: 15469196
  34. Default mode network activity in schizophrenia studied at resting state using probabilistic ICA.
    Schizophr Res. 2012 Jul;138(2-3):143-9 PMID: 22578721
  35. Mean diffusivity and fractional anisotropy as indicators of disease and genetic liability to schizophrenia.
    J Psychiatr Res. 2011 Jul;45(7):980-8 PMID: 21306734
  36. Schizophrenia, neuroimaging and connectomics.
    Neuroimage. 2012 Oct 1;62(4):2296-314 PMID: 22387165
  37. Change of conduction velocity by regional myelination yields constant latency irrespective of distance between thalamus and cortex.
    Proc Natl Acad Sci U S A. 2003 May 13;100(10):6174-9 PMID: 12719546
  38. Whole brain functional connectivity in the early blind.
    Brain. 2007 Aug;130(Pt 8):2085-96 PMID: 17533167
  39. Early sensory contributions to contextual encoding deficits in schizophrenia.
    Arch Gen Psychiatry. 2011 Jul;68(7):654-64 PMID: 21383251
  40. The volume of the mediodorsal thalamic nucleus in treated and untreated schizophrenics.
    Schizophr Res. 1992 Jul;7(2):95-100 PMID: 1355358
  41. Schizophrenia as a disorder of disconnectivity.
    Eur Arch Psychiatry Clin Neurosci. 2011 Nov;261 Suppl 2:S150-4 PMID: 21866371
  42. Reduced number of mediodorsal and anterior thalamic neurons in schizophrenia.
    Biol Psychiatry. 2000 Jun 1;47(11):944-53 PMID: 10838062
  43. A resilient, low-frequency, small-world human brain functional network with highly connected association cortical hubs.
    J Neurosci. 2006 Jan 4;26(1):63-72 PMID: 16399673
  44. Correlations between MRI-assessed volumes of the thalamus and cortical Brodmann's areas in schizophrenia.
    Schizophr Res. 2005 Jun 15;75(2-3):265-81 PMID: 15885518
  45. Competition between functional brain networks mediates behavioral variability.
    Neuroimage. 2008 Jan 1;39(1):527-37 PMID: 17919929
  46. The assessment and analysis of handedness: the Edinburgh inventory.
    Neuropsychologia. 1971 Mar;9(1):97-113 PMID: 5146491
  47. Dysregulation of thalamic sensory "transmission" in schizophrenia: neurochemical vulnerability to hallucinations.
    J Psychopharmacol. 2006 May;20(3):356-72 PMID: 16174672
  48. Schizophrenia-associated reduction of neuronal and oligodendrocyte numbers in the anterior principal thalamic nucleus.
    Schizophr Res. 2006 Jul;85(1-3):245-53 PMID: 16730162
  49. When doors of perception close: bottom-up models of disrupted cognition in schizophrenia.
    Annu Rev Clin Psychol. 2009;5:249-75 PMID: 19327031
  50. Treatment with olanzapine is associated with modulation of the default mode network in patients with Schizophrenia.
    Neuropsychopharmacology. 2010 Mar;35(4):904-12 PMID: 19956088
  51. Subnucleus-specific loss of neurons in medial thalamus of schizophrenics.
    Proc Natl Acad Sci U S A. 2000 Aug 1;97(16):9276-80 PMID: 10908653
  52. When top-down meets bottom-up: auditory training enhances verbal memory in schizophrenia.
    Schizophr Bull. 2009 Nov;35(6):1132-41 PMID: 19745022
  53. Differential relationships of mismatch negativity and visual p1 deficits to premorbid characteristics and functional outcome in schizophrenia.
    Biol Psychiatry. 2012 Mar 15;71(6):521-9 PMID: 22192361
  54. Meta-analysis of 41 functional neuroimaging studies of executive function in schizophrenia.
    Arch Gen Psychiatry. 2009 Aug;66(8):811-22 PMID: 19652121
  55. Spurious but systematic correlations in functional connectivity MRI networks arise from subject motion.
    Neuroimage. 2012 Feb 1;59(3):2142-54 PMID: 22019881
  56. Variable global dysconnectivity and individual differences in schizophrenia.
    Biol Psychiatry. 2011 Jul 1;70(1):43-50 PMID: 21496789
  57. Pronounced reduction of total neuron number in mediodorsal thalamic nucleus and nucleus accumbens in schizophrenics.
    Arch Gen Psychiatry. 1990 Nov;47(11):1023-8 PMID: 2241504
  58. Increased cortico-subcortical functional connectivity in schizophrenia.
    Brain Imaging Behav. 2012 Mar;6(1):27-35 PMID: 22002475
  59. Analysis of fMRI time-series revisited.
    Neuroimage. 1995 Mar;2(1):45-53 PMID: 9343589
  60. Short-term effects of antipsychotic treatment on cerebral function in drug-naive first-episode schizophrenia revealed by "resting state" functional magnetic resonance imaging.
    Arch Gen Psychiatry. 2010 Aug;67(8):783-92 PMID: 20679586
  61. Anterior cingulate gyrus dysfunction and selective attention deficits in schizophrenia: [15O]H2O PET study during single-trial Stroop task performance.
    Am J Psychiatry. 1997 Dec;154(12):1670-5 PMID: 9396944
Article Info
Journal
European archives of psychiatry and clinical neuroscience
Abbr.
Eur Arch Psychiatry Clin Neurosci
ISSN
1433-8491
Published
2014-03-00
Epub
2013-00-27
Pages
111-9
Language
English
Region
Germany
NLM ID
9103030
Subset
IM
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