Abnormal Local Activity and Functional Dysconnectivity in Patients with Schizophrenia Having Auditory Verbal Hallucinations

Cheng Chen , Gao-hua Wang , Shi-hao Wu , Ji-lin Zou , Yuan Zhou , Hui-ling Wang

Current Medical Science ›› 2020, Vol. 40 ›› Issue (5) : 979 -984.

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Current Medical Science ›› 2020, Vol. 40 ›› Issue (5) : 979 -984. DOI: 10.1007/s11596-020-2271-4
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Abnormal Local Activity and Functional Dysconnectivity in Patients with Schizophrenia Having Auditory Verbal Hallucinations

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Abstract

Auditory verbal hallucination (AVH) is emphasized as a pathological hallmark of schizophrenia. Neuroimaging studies provide evidence linking AVH to overlapping functional abnormalities in distributed networks. However, no clear conclusion has still been reached. This study aimed to further explore the brain activity of patients with schizophrenia having AVH from both local activity (LA) and functional connectivity (FC) insights, while excluding confounding factors from other positive symptoms. A total of 42 patients with AVH (AVH patients group, APG), 26 without AVH (non-AVH patients group, NPG), and 82 normal controls (NC) underwent resting-state functional magnetic resonance imaging (fMRI). LA measures, including regional homogeneity (ReHo) and fractional amplitude of low-frequency fluctuations (fALFF), and FC measures were evaluated to understand the neuroimaging mechanism of AVH. APG showed increased ReHo and fALFF in the bilateral putamen (Put) compared with NPG and NC. FC analysis (using bilateral putamen as seeds) revealed that all patients showed abnormal FC of multiple resting-state network regions, including the anterior and post cingulate cortex, middle frontal gyrus, inferior parietal gyrus, and left angular gyrus. Interestingly, APG showed significantly decreased FC of insula extending to the superior temporal gyrus and inferior frontal gyrus compared with NPG and NC. The present findings suggested a significant correlation of abnormal LA and dysfunctional putamen-auditory cortical connectivity with the neuropathological mechanism of AVH, providing evidence for the functional disconnection hypothesis of schizophrenia.

Keywords

auditory verbal hallucination / functional connectivity / local activity / resting-state functional magnetic resonance imaging / schizophrenia

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Cheng Chen, Gao-hua Wang, Shi-hao Wu, Ji-lin Zou, Yuan Zhou, Hui-ling Wang. Abnormal Local Activity and Functional Dysconnectivity in Patients with Schizophrenia Having Auditory Verbal Hallucinations. Current Medical Science, 2020, 40(5): 979-984 DOI:10.1007/s11596-020-2271-4

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References

[1]

BauerSM, SchandaH, KarakulaH, et al.. Culture and the prevalence of hallucinations in schizophrenia. Compr Psychiatry, 2011, 52(3): 319-325

[2]

GavrilescuM, RossellS, StuartGW, et al.. Reduced connectivity of the auditory cortex in patients with auditory hallucinations: a resting state functional magnetic resonance imaging study. Psychol Med, 2010, 40(7): 1149-1158

[3]

WolfND, SambataroF, VasicN, et al.. Disconnectivity of multiple resting-state networks in patients with schizophrenia who have persistent auditory verbal hallucinations. J Psychiatry Neurosci, 2011, 36(6): 366-374

[4]

Alonso-solisA, Vives-GilabertY, GrasaER, et al.. Resting-state functional connectivity alterations in the default network of schizophrenia patients with persistent auditory verbal hallucination. Schizophr Res, 2015, 161(3): 261-268

[5]

RaichleME. The Brain’s default mode network. Annu Rev Neurosci, 2015, 38: 433-447

[6]

Rotarska-JagielaA, van de VenV, Oertel-KnöchelV, et al.. Resting-state functional network correlates of psychotic symptoms in schizophrenia. Schizophr Res, 2010, 117(1): 21-30

[7]

ChangX, XiYB, CuiLB, et al.. Distinct inter-hemispheric dysconnectivity in schizophrenia patients with and without auditory verbal hallucinations. Sci Rep, 2015, 5: 11 218

[8]

NazimekJM, HunterMD, WoodruffPW, et al.. Auditory hallucinations: expectation-perception model. Med Hypotheses, 2012, 78(6): 802-810

[9]

HoffmanRE, FernandezT, PittmanB, et al.. Elevated functional connectivity along a corticostriatal loop and the mechanism of auditory/verbal hallucinations in patients with schizophrenia. Biol Psychiatry, 2011, 69(5): 407-414

[10]

Stephane M. Auditory verbal hallucinations result from combinatoric associations of multiple neural events. Front Hum Neurosci,2013,7:239

[11]

HomanP, VermathenP, Van SwamC, et al.. Magnetic resonance spectroscopy investigations of functionally defined language areas in schizophrenia patients with and without auditory hallucinations. Neuroimage, 2014, 94: 23-32

[12]

JardriR, PouchetA, PinsD, et al.. Cortical activations during auditory verbal hallucinations in schizophrenia: a coordinate-based meta-analysis. Am J Psychiatry, 2011, 168(1): 73-81

[13]

PriceCJ. The anatomy of language: a review of 100 fMRI studies published in 2009. Ann NY AcadSci, 2010, 1191: 62-88

[14]

JonesSR. Do we need multiplemodels of auditory verbal hallucinations? Examining the phenomenological fit of cognitive and neurological models. Schizophr Bull, 2010, 36(3): 566-575

[15]

Alba-FerraraL, WeisS, DamjanovicL, et al.. Voice identity recognition failure in patients with schizophrenia. J Nerv Ment Dis, 2012, 200(9): 784-790

[16]

FordJM, MathalonDH, WhitfieldS, et al.. Reduced communication between frontal and temporallobes during talking in schizophrenia. Biol Psychiatry, 2002, 51(6): 485-492

[17]

ChhabraS, BadcockJC, MayberyMT, et al.. Voice identity discrimination in schizophrenia. Neuropsychologia, 2012, 50(12): 2730-2735

[18]

BrownM, KuperbergGR. A Hierarchical Generative Framework of Language Processing: Linking Language Perception, Interpretation, and Production Abnormalities in Schizophrenia. Front Hum Neurosci, 2015, 27(9): 643

[19]

KaySR, FiszbeinA, OplerLA. The positive and negative syndrome scale (PANSS) for schizophrenia. Schizophr Bull, 1987, 13: 261-276

[20]

HoffmanRE, HawkinsKA, GueorguievaR, et al.. Transcranial magnetic stimulation of left temporoparietal cortex and medication-resistant auditory hallucinations. Arch Gen Psychiatry, 2003, 60(1): 49-56

[21]

SongXW, DongZY, LongXY, et al.. REST: a toolkit for resting-state functional magnetic resonance imaging data processing. PLoS One, 2011, 6: e25031

[22]

YanCG, ZangYF. DPARSF: a MATLAB toolbox for “pipeline” data analysis of resting-state fMRI. Front Syst Neurosci, 2010, 4(13): 20577591

[23]

AshburnerJ. A fast diffeomorphic image registration algorithm. Neuroimage, 2007, 38(1): 95-113

[24]

YanCG, CraddockRC, ZuoXN, et al.. Standardizing the intrinsic brain: towards robust measurement of inter-individual variation in1000 functional connectomes. Neuroimage, 2013, 80: 246-262

[25]

YanCG, CheungB, KellyC, et al.. A comprehensive assessment of regional variation in the impact of head micromovements on functional connectomics. Neuroimage, 2013, 76: 183-201

[26]

ZangY, JiangT, LuY, et al.. Regional homogeneity approach to fMRI data analysis. Neuroimage, 2004, 22(1): 394-400

[27]

ZouQH, ZhuCZ, YangY, et al.. An improved approach to detection of amplitude of low-frequency fluctuation (ALFF) for resting-state fMRI: fractional ALFF. J Neurosci Methods, 2008, 172(1): 137-141

[28]

BentalebLA, BeauregardM, LiddleP, et al.. Cerebral activity associated with auditory verbal hallucinations: A functional magnetic resonance imaging case study. Psychiatry Neurosci, 2002, 27(2): 110-115

[29]

HaberSN. The primate basal ganglia: parallel and integrative networks. J Chem Neuroanat, 2003, 26(4): 317-330

[30]

HoffmanRE, HampsonM. Functional connectivity studies of patients with auditory verbal hallucinations. Front Hum Neurosci, 2012, 31(6): 6

[31]

Viñas-GuaschN, WuYJ. The Role of the Putamen in Language: A Meta-Analytic Connectivity Modeling Study. Brain Struct Funct, 2017, 222(9): 3991-4004

[32]

TangY, ChenK, ZhouY, et al.. Neural activity changes in unaffected children of patients with schizophrenia: A resting-state fMRI study. Schizophr Res, 2015, 168(1–2): 360-365

[33]

MenonV. Large-scale brain networks and psychopathology: a unifying triplenetwork model. Trends Cogn Sci, 2011, 15(10): 483-506

[34]

MondinoM, JardriR, Suaud-ChagnyMF, et al.. Effects of Fronto-Temporal Transcranial Direct Current Stimulation on Auditory Verbal Hallucinations and Resting-State Functional Connectivity of the Left Temporo-Parietal Junction in Patients with Schizophrenia. Schizophr Bull, 2016, 42(2): 318-326

[35]

AllenP, LaroiF, McGuirePK, et al.. The hallucinating brain: a review of structural and functional neuroimaging studies of hallucinations. Neurosci Biobehav Rev, 2008, 32(1): 175-191

[36]

CuiLB, LiuK, LiC, et al.. Putamen-related Regional and Network Functional Deficits in First-Episode Schizophrenia with Auditory Verbal Hallucinations. Schizophr Res, 2016, 173(2): 13-22

[37]

Bastos-LeiteAJ, RidgwayGR, SilveiraC, et al.. Dysconnectivity within the default mode in first-episode schizophrenia: a stochastic dynamic causal modeling study with functional magnetic resonance imaging. Schizophr Bull, 2015, 41(1): 144-153

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