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Non-linear optimisation.\nAndersson, L.R., Jenkinson, M., Smith, S., 2007. Non-linear registration, aka Spatial normalisation.\nAoki, 2013, Comparison of white matter integrity between autism spectrum disorder subjects and typically developing individuals: a meta-analysis of diffusion tensor imaging tractography studies, Mol. Autism, 4\nBarnea-Goraly, 2010, Similar white matter aberrations in children with autism and their unaffected siblings: a diffusion tensor imaging study using tract-based spatial statistics, Arch. Gen. Psychiatry, 67, 1052, 10.1001\u002Farchgenpsychiatry.2010.123\nBeaulieu, 2002, The basis of anisotropic water diffusion in the nervous system - a technical review, NMR Biomed., 15, 435, 10.1002\u002Fnbm.782\nBehrens, 2007, Probabilistic diffusion tractography with multiple fibre orientations: what can we gain?, Neuroimage, 34, 144, 10.1016\u002Fj.neuroimage.2006.09.018\nBelmonte, 2004, Autism and abnormal development of brain connectivity, J. Neurosci., 24, 9228, 10.1523\u002FJNEUROSCI.3340-04.2004\nBen Bashat, 2007, Accelerated maturation of white matter in young children with autism: a high b value DWI study, Neuroimage, 37, 40, 10.1016\u002Fj.neuroimage.2007.04.060\nBerument, 1999, Autism screening questionnaire: diagnostic validity, Br. J. Psychiatry, 175, 444, 10.1192\u002Fbjp.175.5.444\nBetancur, 2011, Etiological heterogeneity in autism spectrum disorders: more than 100 genetic and genomic disorders and still counting, Brain Res., 1380, 42, 10.1016\u002Fj.brainres.2010.11.078\nBlanken, 2015, Cortical morphology in 6-to 10-Year old children with autistic traits: a population-based neuroimaging study, Am. J. Psychiatry, 172, 479, 10.1176\u002Fappi.ajp.2014.14040482\nBrito, 2009, Diffusion tensor imaging findings in school-aged autistic children, J. Neuroimaging, 19, 337, 10.1111\u002Fj.1552-6569.2009.00366.x\nCarper, 2015, Corticospinal tract anatomy and functional connectivity of primary motor cortex in autism, J. Am. Acad. Child Adolesc. Psychiatry, 54, 859, 10.1016\u002Fj.jaac.2015.07.007\nChang, 2005, RESTORE: robust estimation of tensors by outlier rejection, Magn. Reson. Med., 53, 1088, 10.1002\u002Fmrm.20426\nCheng, 2010, Atypical development of white matter microstructure in adolescents with autism spectrum disorders, Neuroimage, 50, 873, 10.1016\u002Fj.neuroimage.2010.01.011\nCheon, 2011, Involvement of the anterior thalamic radiation in boys with high functioning autism spectrum disorders: a Diffusion Tensor Imaging study, Brain Res., 1417, 77, 10.1016\u002Fj.brainres.2011.08.020\nConstantino, 2002\nConstantino, 2011, The quantitative nature of autistic social impairment, Pediatr. Res., 69, 55R, 10.1203\u002FPDR.0b013e318212ec6e\nConstantino, 2003, Validation of a brief quantitative measure of autistic traits: comparison of the social responsiveness scale with the autism diagnostic interview-revised, J. Autism Dev. Disord., 33, 427, 10.1023\u002FA:1025014929212\nCook, P.A., Bai, Y., Nedjati-Gilani, S., Seunarine, K.K., Hall, M.G., Parker, G.J., Alexander, D.C., 2006. Camino: Open-Source Diffusion-MRI Reconstruction and Processing, In: Proceedings of the 14th Scientific Meeting of the International Society for Magnetic Resonance in Medicine, Seattle, WA, USA, p. 2759.\nDelmonte, 2013, Functional and structural connectivity of frontostriatal circuitry in Autism Spectrum Disorder, Front. Hum. Neurosci., 7, 430, 10.3389\u002Ffnhum.2013.00430\nDennis, 2013, Typical and atypical brain development: a review of neuroimaging studies, Dialog-. Clin. Neurosci., 15, 359, 10.31887\u002FDCNS.2013.15.3\u002Fedennis\nDi Martino, 2009, Relationship between cingulo-insular functional connectivity and autistic traits in neurotypical adults, Am. J. Psychiatry, 166, 891, 10.1176\u002Fappi.ajp.2009.08121894\nGeschwind, 2007, Autism spectrum disorders: developmental disconnection syndromes, Curr. Opin. Neurobiol., 17, 103, 10.1016\u002Fj.conb.2007.01.009\nGoddard, M.N., van Rijn, S., Rombouts, S.A., Swaab, H., 2015. White matter microstructure in a genetically defined group at increased risk of autism symptoms, and a comparison with idiopathic autism: an exploratory study. Brain Imaging Behav.\nGorgolewski, 2011, Nipype: a flexible, lightweight and extensible neuroimaging data processing framework in python, Front. Neuroinform., 5, 13, 10.3389\u002Ffninf.2011.00013\nGotts, 2012, Fractionation of social brain circuits in autism spectrum disorders, Brain, 135, 2711, 10.1093\u002Fbrain\u002Faws160\nde Groot, 2015, Tract-specific white matter degeneration in aging: the Rotterdam Study, Alzheimers Dement., 11, 321, 10.1016\u002Fj.jalz.2014.06.011\nHappe, 2006, Time to give up on a single explanation for autism, Nat. Neurosci., 9, 1218, 10.1038\u002Fnn1770\nHaselgrove, 1996, Correction for distortion of echo-planar images used to calculate the apparent diffusion coefficient, Magn. Reson. Med., 36, 960, 10.1002\u002Fmrm.1910360620\nIidaka, 2012, White matter connectivity between superior temporal sulcus and amygdala is associated with autistic trait in healthy humans, Neurosci. Lett., 510, 154, 10.1016\u002Fj.neulet.2012.01.029\nJaddoe, 2012, The Generation R Study: design and cohort update 2012, Eur. J. Epidemiol., 27, 739, 10.1007\u002Fs10654-012-9735-1\nJakab, 2013, Autistic traits in neurotypical adults: correlates of graph theoretical functional network topology and white matter anisotropy patterns, PLoS One, 8, e60982, 10.1371\u002Fjournal.pone.0060982\nJenkinson, 2001, A global optimisation method for robust affine registration of brain images, Med. Image Anal., 5, 143, 10.1016\u002FS1361-8415(01)00036-6\nJenkinson, M., Beckmann, C.F., Behrens, T.E., Woolrich, M.W., Smith, S.M., 2012. Fsl. Neuroimage 62, pp. 782–790.\nJones, 2010, Twenty-five pitfalls in the analysis of diffusion MRI data, NMR Biomed., 23, 803, 10.1002\u002Fnbm.1543\nJones, 2013, White matter integrity, fiber count, and other fallacies: the do's and don'ts of diffusion MRI, Neuroimage, 73, 239, 10.1016\u002Fj.neuroimage.2012.06.081\nJoober, 2012, Publication bias: what are the challenges and can they be overcome?, J. Psychiatry Neurosci., 37, 149, 10.1503\u002Fjpn.120065\nJou, 2011, Structural neural phenotype of autism: preliminary evidence from a diffusion tensor imaging study using tract-based spatial statistics, AJNR Am. J. Neuroradiol., 32, 1607, 10.3174\u002Fajnr.A2558\nKendler, 2013, What psychiatric genetics has taught us about the nature of psychiatric illness and what is left to learn, Mol. Psychiatry, 18, 1058, 10.1038\u002Fmp.2013.50\nKoolschijn, 2015, Are Autistic Traits in the General Population Related to Global and Regional Brain Differences?, J. Autism Dev. Disord., 45, 2779, 10.1007\u002Fs10803-015-2441-6\nLebel, 2008, Microstructural maturation of the human brain from childhood to adulthood, Neuroimage, 40, 1044, 10.1016\u002Fj.neuroimage.2007.12.053\nMueller, 2013, Convergent findings of altered functional and structural brain connectivity in individuals with high functioning autism: a multimodal MRI study, PLoS One, 8, e67329, 10.1371\u002Fjournal.pone.0067329\nMuetzel, 2015, White matter integrity and cognitive performance in school-age children: a population-based neuroimaging study, Neuroimage, 119, 119, 10.1016\u002Fj.neuroimage.2015.06.014\nNair, 2013, Impaired thalamocortical connectivity in autism spectrum disorder: a study of functional and anatomical connectivity, Brain, 136, 1942, 10.1093\u002Fbrain\u002Fawt079\nNoriuchi, 2010, Altered white matter fractional anisotropy and social impairment in children with autism spectrum disorder, Brain Res., 1362, 141, 10.1016\u002Fj.brainres.2010.09.051\nOuyang, 2016, A typical age-dependent effects of autism on white matter microstructure in children of 2-7 years, Hum. 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10.1016\u002FS1364-6613(00)01483-2\nCampbell, 2006, An update on regional brain volume differences associated with mood disorders, Current Opinion in Psychiatry, 19, 25, 10.1097\u002F01.yco.0000194371.47685.f2\nCampbell, 2004, Lower hippocampal volume in patients suffering from depression: a meta-analysis, American Journal of Psychiatry, 161, 598, 10.1176\u002Fappi.ajp.161.4.598\nCatani, 2002, Virtual in vivo interactive dissection of white matter fasciculi in the human brain, NeuroImage, 17, 77, 10.1006\u002Fnimg.2002.1136\nCiccarelli, 2003, From diffusion tractography to quantitative white matter tract measures: a reproducibility study, NeuroImage, 18, 348, 10.1016\u002FS1053-8119(02)00042-3\nConcha, 2005, Diffusion tensor tractography of the limbic system, AJNR: American Journal of Neuroradiology, 26, 2267\nFornito, 2006, The influence of sulcal variability on morphometry of the human anterior cingulate and paracingulate cortex, NeuroImage, 33, 843, 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post-mortem study of normal subjects and patients with schizophrenia, Cerebral Cortex, 12, 1218, 10.1093\u002Fcercor\u002F12.11.1218\nHofer, 2006, Topography of the human corpus callosum revisited—comprehensive fiber tractography using diffusion tensor magnetic resonance imaging, NeuroImage, 32, 989, 10.1016\u002Fj.neuroimage.2006.05.044\nHopkins, 2000, Measures of reliability in sports medicine and science, Sports Medicine, 30, 1, 10.2165\u002F00007256-200030010-00001\nHuppi, 2006, Diffusion tensor imaging of brain development, Seminars in Fetal and Neonatal Medicine, 11, 489, 10.1016\u002Fj.siny.2006.07.006\nHuster, 2007, Morphologic asymmetry of the human anterior cingulate cortex, NeuroImage, 34, 888, 10.1016\u002Fj.neuroimage.2006.10.023\nJiang, 2006, DtiStudio: resource program for diffusion tensor computation and fiber bundle tracking, Computer Methods and Programs in Biomedicine, 81, 106, 10.1016\u002Fj.cmpb.2005.08.004\nJones, 2005, The effect of filter size on VBM analyses of DT-MRI data, NeuroImage, 26, 546, 10.1016\u002Fj.neuroimage.2005.02.013\nJones, 2006, Age effects on diffusion tensor magnetic resonance imaging tractography measures of frontal cortex connections in schizophrenia, Human Brain Mapping, 27, 230, 10.1002\u002Fhbm.20179\nKanaan, 2006, Tract-specific anisotropy measurements in diffusion tensor imaging, Psychiatry Research. 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Quantitative diffusion tensor fiber tracking of age-related changes in the limbic system. European Radiology (Electronic publication ahead of print, ISSN 0938-7994 (Print) 1432-1084 (Online)). doi:10.1007\u002Fs00330-007-0733-8.\nSteen, 2006, Brain volume in first-episode schizophrenia: systematic review and meta-analysis of magnetic resonance imaging studies, British Journal of Psychiatry, 188, 510, 10.1192\u002Fbjp.188.6.510\nSullivan, 2006, Diffusion tensor imaging and aging, Neuroscience and Biobehavioral Reviews, 30, 749, 10.1016\u002Fj.neubiorev.2006.06.002\nSundgren, 2004, Diffusion tensor imaging of the brain: review of clinical applications, Neuroradiology, 46, 339, 10.1007\u002Fs00234-003-1114-x\nVogt, 2005, Pain and emotion interactions in subregions of the cingulate gyrus, Nature Reviews. 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Neurosci., 270, 761, 10.1007\u002Fs00406-019-01027-8\nCao, 2016, Altered functional subnetwork during emotional face processing: a potential intermediate phenotype for schizophrenia, JAMA Psychiatry, 73, 598, 10.1001\u002Fjamapsychiatry.2016.0161\nChannouf, 2014, Power and sample size calculations for Poisson and zero-inflated Poisson regression models, Comput. Stat. Data Anal., 72, 241, 10.1016\u002Fj.csda.2013.09.029\nChopra, 2021, Functional connectivity in antipsychotic-treated and antipsychotic-naive patients with first-episode psychosis and low risk of self-harm or aggression: a secondary analysis of a randomized clinical trial, JAMA Psychiatry, 78, 994, 10.1001\u002Fjamapsychiatry.2021.1422\nCraig, 2009, How do you feel - now? The anterior insula and human awareness, Nat. Rev. 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Alcohol, 43, 1157, 10.15288\u002Fjsa.1982.43.1157\nSullivan, 2005, Neurocircuitry in alcoholism: a substrate of disruption and repair, Psychopharmacology, 180, 583, 10.1007\u002Fs00213-005-2267-6\nSwick, 2008, Left inferior frontal gyrus is critical for response inhibition, BMC Neurosci., 9, 102, 10.1186\u002F1471-2202-9-102\nSwick, 2011, Are the neural correlates of stopping and not going identical? Quantitative meta-analysis of two response inhibition tasks, NeuroImage, 56, 1655, 10.1016\u002Fj.neuroimage.2011.02.070\nTian, 2012, Regional homogeneity of resting state fMRI signals predicts stop signal task performance, NeuroImage, 60, 539, 10.1016\u002Fj.neuroimage.2011.11.098\nTrick, 2014, Impaired fear recognition and attentional set-shifting is associated with brain structural changes in alcoholic patients, Addict. Biol., 19, 1041, 10.1111\u002Fadb.12175\nTuithof, 2014, Alcohol consumption and symptoms as predictors for relapse of DSM-5 alcohol use disorder, Drug Alcohol Depend., 140, 85, 10.1016\u002Fj.drugalcdep.2014.03.035\nVerbruggen, 2013, Fictitious inhibitory differences: how skewness and slowing distort the estimation of stopping latencies, Psychol. Sci., 24, 352, 10.1177\u002F0956797612457390\nYan, 2009, Decreased amygdala activation during risk taking in non-dependent habitual alcohol users: a preliminary fMRI study of the stop signal task, Am. J. Drug Alcohol Abuse, 35, 284, 10.1080\u002F00952990902968569\nZhang, 2012, Functional networks for cognitive control in a stop signal task: independent component analysis, Hum. 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10.1192\u002Fbjp.123.6.663","https:\u002F\u002Fwww.cambridge.org\u002Fcore\u002Fproduct\u002Fidentifier\u002FS0007125000197788\u002Ftype\u002Fjournal_article",{"doi":1058},"10.1192\u002Fbjp.123.6.663",{"id":1042,"text":1060,"url":1044,"identifiers":1061},"Brooks, 1982, Alternative formula for glucose utilization using labeled deoxyglucose, Journal of Nuclear Medicine, 23, 538",{"doi":1046},{"id":1042,"text":1063,"url":1044,"identifiers":1064},"Clark, 1984, Correlational methods for determining regional coupling of cerebral glucose metabolism: A pilot study, Biological Psychiatry, 19, 663",{"doi":1046},{"id":18,"text":1066,"url":18,"identifiers":1067},"Cox, 1989, Neuropsychological testing of obsessive-compulsive adolescents, 73",{},{"id":1069,"text":1070,"url":1071,"identifiers":1072},"fd1db1df-42a0-4358-9635-31408e7d9d81","Cummings, 1985, Gilles de la Tourette syndrome and the neurological basis of obsessions and compulsions, Biological Psychiatry, 20, 1117, 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Alzheimer's disease, Brain Research, 407, 294, 10.1016\u002F0006-8993(87)91107-3","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002F0006899387911073",{"doi":1133},"10.1016\u002F0006-8993(87)91107-3",{"id":18,"text":1135,"url":18,"identifiers":1136},"Horwitz, 1990, Interregional cerebral blood flow (rCBF) among posterior cortical brain regions during object and spatial visual processing, Abstracts Society for Neuroscience, 16, 28",{},{"id":1042,"text":1138,"url":1044,"identifiers":1139},"Horwitz, 1988, Partial correlation coefficients approximate the real intrasubject correlation pattern in the analysis of interregional relations of cerebral metabolic activity, Journal of Nuclear Medicine, 29, 392",{"doi":1046},{"id":1141,"text":1142,"url":1143,"identifiers":1144},"5b50055f-1e20-47d2-9716-986374a78ab9","Horwitz, 1988, The cerebral metabolic landscape in autism: Intercorrelations of regional glucose utilization, Archives of Neurology, 45, 749, 10.1001\u002Farchneur.1988.00520310055018","http:\u002F\u002Farchneur.jamanetwork.com\u002Farticle.aspx?doi=10.1001\u002Farchneur.1988.00520310055018",{"doi":1145},"10.1001\u002Farchneur.1988.00520310055018",{"id":1042,"text":1147,"url":1044,"identifiers":1148},"Horwitz, 1990, Cerebral metabolic pattern in young adult Down's syndrome subjects: Altered intercorrelations between regional rates of cerebral glucose utilization, Journal of Mental Deficiency Research, 34, 237",{"doi":1046},{"id":1150,"text":1151,"url":1152,"identifiers":1153},"1afb20f6-c4e5-457d-8667-7581d52ff459","Huang, 1980, Non-invasive determination of local cerebral metabolic rate of glucose in man, American Journal of Physiology, 238, E69","https:\u002F\u002Fwww.physiology.org\u002Fdoi\u002F10.1152\u002Fajpendo.1980.238.1.E69",{"doi":1154},"10.1152\u002Fajpendo.1980.238.1.e69",{"id":1042,"text":1156,"url":1044,"identifiers":1157},"Insel, 1988, Obsessive-compulsive disorder: A neuroethological perspective, 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10.1136\u002Fjnnp.47.4.377","https:\u002F\u002Fjnnp.bmj.com\u002Flookup\u002Fdoi\u002F10.1136\u002Fjnnp.47.4.377",{"doi":1193},"10.1136\u002Fjnnp.47.4.377",{"id":18,"text":1195,"url":18,"identifiers":1196},"Luria, 1973",{},{"id":1198,"text":1199,"url":1200,"identifiers":1201},"ede5adfb-8dd4-43fd-a79b-d1d214e8f929","Luxenberg, 1988, Neuroanatomical abnormalities in obsessive-compulsive disorder detected with quantitative X-ray computed tomography, American Journal of Psychiatry, 145, 1089, 10.1176\u002Fajp.145.9.1089","https:\u002F\u002Fpsychiatryonline.org\u002Fdoi\u002F10.1176\u002Fajp.145.9.1089",{"doi":1202},"10.1176\u002Fajp.145.9.1089",{"id":1204,"text":1205,"url":1206,"identifiers":1207},"81958fa1-61ed-497e-81ef-22e9b9f3d334","Malloy, 1989, Topographic evoked potential mapping in obsessive-compulsive disorder: Evidence of frontal lobe dysfunction, Psychiatry Research, 28, 63, 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10.1186\u002F1744-9081-3-54","https:\u002F\u002Fbehavioralandbrainfunctions.biomedcentral.com\u002Farticles\u002F10.1186\u002F1744-9081-3-54",{"doi":1709},"10.1186\u002F1744-9081-3-54",{"id":18,"text":1711,"url":1712,"identifiers":1713},"Derogatis, 1976, The SCL-90 and the MMPI: a step in the validation of a new self-report scale, The British Journal of Psychiatry: the Journal of Mental Science, 128, 280, 10.1192\u002Fbjp.128.3.280","https:\u002F\u002Fdoi.org\u002F10.1192\u002Fbjp.128.3.280",{"mag":1714,"openalex":1715,"pm":1716,"doi":1717},"2168534058","W2168534058","1252693","10.1192\u002Fbjp.128.3.280",{"id":18,"text":1719,"url":1720,"identifiers":1721},"Dufour, 2008, Cingulate gyral reductions are related to low executive functioning and psychotic symptoms in 22q 11.2 deletion syndrome, Neuropsychologia, 46, 2986, 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10.1152\u002Fjn.00077.2008","https:\u002F\u002Fdoi.org\u002F10.1152\u002Fjn.00077.2008",{"mag":1752,"pmc":1753,"openalex":1754,"pm":1755,"doi":1756},"2150872839","2493488","W2150872839","18385483","10.1152\u002Fjn.00077.2008",{"id":18,"text":1758,"url":1759,"identifiers":1760},"Kapur, 2003, Antipsychotic dosing in preclinical models is often unrepresentative of the clinical condition: a suggested solution based on in vivo occupancy, Journal of Pharmacology and Experimental Therapeutics, 305, 625, 10.1124\u002Fjpet.102.046987","https:\u002F\u002Fdoi.org\u002F10.1124\u002Fjpet.102.046987",{"mag":1761,"openalex":1762,"pm":1763,"doi":1764},"2018742347","W2018742347","12606608","10.1124\u002Fjpet.102.046987",{"id":18,"text":1766,"url":1767,"identifiers":1768},"Kates, 1997, Reliability and validity of MRI measurement of the amygdala and hippocampus in children with fragile X syndrome, Psychiatry Research: Neuroimaging, 75, 31, 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an at-risk mental state for schizophrenia, Journal of Psychiatry and Neuroscience: JPN, 35, 33, 10.1503\u002Fjpn.090013","https:\u002F\u002Fdoi.org\u002F10.1503\u002Fjpn.090013",{"mag":1896,"pmc":1897,"openalex":1898,"pm":1899,"doi":1900},"2138270985","2799502","W2138270985","20040244","10.1503\u002Fjpn.090013",{"id":1902,"text":1903,"url":1904,"identifiers":1905},"1be24dcb-589a-44f9-a96e-a7e958a40124","Zhou, 2008, Altered resting-state functional connectivity and anatomical connectivity of hippocampus in schizophrenia, Schizophrenia Research, 100, 120, 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Bridging the neurochemistry and neuroanatomy of schizophrenia, British Journal of Psychiatry, 176, 203, 10.1192\u002Fbjp.176.3.203\nCarlsson, 1999, A glutamatergic deficiency model of schizophrenia, British Journal of Psychiatry Supplement, 37, 2, 10.1192\u002FS0007125000293574\nFirst, 1997\nGattaz, 1987, Increased plasma phospholipase-A2 activity in schizophrenic patients: reduction after neuroleptic therapy, Biological Psychiatry, 22, 421, 10.1016\u002F0006-3223(87)90164-8\nGruetter, 1993, Automatic, localized in vivo adjustment of all first- and second-order shim coils, Magnetic Resonance in Medicine, 29, 804, 10.1002\u002Fmrm.1910290613\nHoang, 1998, Quantitative proton-decoupled 31P MRS and 1H MRS in the evaluation of Huntington's and Parkinson's diseases, Neurology, 50, 1033, 10.1212\u002FWNL.50.4.1033\nJavitt, 1991, Recent advances in the phencyclidine model of schizophrenia, American Journal of Psychiatry, 148, 1301, 10.1176\u002Fajp.148.10.1301\nJensen, 2002, In vivo brain 31P-MRS: measuring the phospholipid resonances at 4 Tesla from small voxels, NMR in Biomedicine, 15, 338, 10.1002\u002Fnbm.776\nJensen, 2002\nJensen, 2002, Region-specific changes in phospholipid metabolism in chronic, medicated schizophrenia: 31P-MRS study at 4.0 Tesla, British Journal of Psychiatry, 180, 39, 10.1192\u002Fbjp.180.1.39\nKe, 2002\nKeshavan, 2000, Magnetic resonance spectroscopy in schizophrenia: methodological issues and findings—part II, Biological Psychiatry, 48, 369, 10.1016\u002FS0006-3223(00)00940-9\nMagistretti, 1999, Energy on demand, Science, 283, 496, 10.1126\u002Fscience.283.5401.496\nMichaelis, 1993, Absolute concentrations of metabolites in the adult human brain in vivo: quantification of localized proton MR spectra, Radiology, 187, 219, 10.1148\u002Fradiology.187.1.8451417\nMoffett, 1991, Immunohistochemical localization of N-acetylaspartate in rat, NeuroReport, 2, 131, 10.1097\u002F00001756-199103000-00005\nOlney, 1995, Glutamate receptor dysfunction and schizophrenia, Archives of General Psychiatry, 52, 998, 10.1001\u002Farchpsyc.1995.03950240016004\nPettegrew, 1991, Alterations in brain high-energy phosphate and membrane phospholipid metabolism in first-episode, drug-naive schizophrenics. A pilot study of the dorsal prefrontal cortex by in vivo phosphorus 31 nuclear magnetic resonance spectroscopy, Archives of General Psychiatry, 48, 563, 10.1001\u002Farchpsyc.1991.01810300075011\nPfefferbaum, 1999, Brain gray and white matter transverse relaxation time in schizophrenia, Psychiatry Research: Neuroimaging, 91, 93, 10.1016\u002FS0925-4927(99)00023-2\nPotwarka, 1999, A 1H-decoupled 31P chemical shift imaging study of medicated schizophrenic patients and healthy controls, Biological Psychiatry, 45, 687, 10.1016\u002FS0006-3223(98)00136-X\nRoss, 1998, In vivo MR spectroscopy of human dementia, Neuroimaging Clinics of North America, 8, 809\nRothman, 1999, In vivo nuclear magnetic resonance spectroscopy studies of the relationship between the glutamate–glutamine neurotransmitter cycle and functional neuroenergetics, Philosophical Transactions of the Royal Society of London. 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abnormalities in patients with simple schizophrenia: Structural and functional brain-imaging studies in five cases",{"VOID":2147},"[\"5214655533627374189\"]",{"VOID":2149},"American Psychiatric Association, 1980\nAmerican Psychiatric Association, 1987\nAmerican Psychiatric Association, 1994\nAnanth, 2002, Cortical and subcortical gray matter abnormalities in schizophrenia determined through structural magnetic resonance imaging with optimized volumetric voxel-based morphometry, American Journal of Psychiatry, 159, 1497, 10.1176\u002Fappi.ajp.159.9.1497\nAndreasen, 1983\nAndreasen, 1984\nAndreasen, 1992, The Comprehensive Assessment of Symptoms and History (CASH): an instrument for assessing diagnosis and psychopathology, Archives of General Pscychiatry, 49, 615, 10.1001\u002Farchpsyc.1992.01820080023004\nAndreasen, 1994, Regional brain abnormalities in schizophrenia measured with magnetic resonance imaging, JAMA: Journal of the American Medical Association, 272, 1763, 10.1001\u002Fjama.272.22.1763\nAndreasen, 1996, Schizophrenia and cognitive dysmetria: a positron emission tomography study of dysfunctional prefrontal–thalamic–cerebellar circuitry, Proceedings of National Academy of Sciences of the United States of America, 93, 9985, 10.1073\u002Fpnas.93.18.9985\nAshburner, 2000, Voxel-based morphometry—the methods, NeuroImage, 11, 805, 10.1006\u002Fnimg.2000.0582\nAylward, 1984, Intelligence in schizophrenia: meta-analysis of the research, Schizophrenia Bulletin, 10, 430, 10.1093\u002Fschbul\u002F10.3.430\nBenes, 1986, Quantitative cytoarchitectural studies of the cerebral cortex of schizophrenics, Archives of General Psychiatry, 43, 31, 10.1001\u002Farchpsyc.1986.01800010033004\nBenes, 1991, Deficits in small interneurons in prefrontal and cingulate cortices of schizophrenic and schizoaffective patients, Archives of General Psychiatry, 48, 996, 10.1001\u002Farchpsyc.1991.01810350036005\nBlack, 1989, Simple schizophrenia: past, present, and future, American Journal of Psychiatry, 146, 1267, 10.1176\u002Fajp.146.10.1267\nBleuler, 1911\nBogerts, 1993, Hippocampus–amygdala volumes and psychopathology in chronic schizophrenia, Biological Psychiatry, 33, 236, 10.1016\u002F0006-3223(93)90289-P\nBuchanan, 1998, Structural evaluation of the prefrontal cortex in schizophrenia, American Journal of Psychiatry, 155, 1049, 10.1176\u002Fajp.155.8.1049\nBuchsbaum, 1992, Frontostriatal disorder of cerebral metabolism in never-medicated schizophrenics, Archives of General Psychiatry, 49, 935, 10.1001\u002Farchpsyc.1992.01820120023005\nBuchsbaum, 2002, Kraepelinian and non-Kraepelinian schizophrenia subgroup differences in cerebral metabolic rate, Schizophrenia Research, 55, 25, 10.1016\u002FS0920-9964(01)00206-7\nChemerinski, 2002, Morphology of the ventral frontal cortex in schizophrenia: relationship with social dysfunction, Biological Psychiatry, 52, 1, 10.1016\u002FS0006-3223(01)01363-4\nChua, 1997, Grey matter correlates of syndromes in schizophrenia, British Journal of Psychiatry, 170, 406, 10.1192\u002Fbjp.170.5.406\nCrespo-Facorro, 2000, Regional frontal abnormalities in schizophrenia: a quantitative gray matter volume and cortical surface size study, Biological Psychiatry, 48, 110, 10.1016\u002FS0006-2332(00)00238-9\nDegreef, 1992, Volumes of ventricular system subdivisions measured from magnetic resonance images in first-episode schizophrenic patients, Archives of General Psychiatry, 49, 531, 10.1001\u002Farchpsyc.1992.01820070025004\nFriston, 1990, The relationship between global and local changes in PET scans, Journal of Cerebral Blood Flow and Metabolism, 10, 458, 10.1038\u002Fjcbfm.1990.88\nFriston, 1995, Statistical parametric maps in functional imaging: a general linear approach, Human Brain Mapping, 2, 189, 10.1002\u002Fhbm.460020402\nFuster, 1997\nGalderisi, 1999, Simple schizophrenia: a controlled MRI and clinical\u002F neuropsychological study, Psychiatry Research. Neuroimaging, 91, 175, 10.1016\u002FS0925-4927(99)00026-8\nIngvar, 1974, Distribution of cerebral activity in chronic schizophrenia, Lancet, II, 1484, 10.1016\u002FS0140-6736(74)90221-9\nKawasaki, 1993, A quantitative magnetic resonance imaging study of patients with schizophrenia, European Archives of Psychiatry and Clinical Neuroscience, 242, 268, 10.1007\u002FBF02190385\nKawasaki, 2004, Structural brain differences in patients with schizophrenia and schizotypal disorder demonstrated by voxel-based morphometry, European Archives of Psychiatry and Clinical Neuroscience, 254, 406, 10.1007\u002Fs00406-004-0522-1\nKubicki, 2002, Voxel-based morphometric analysis of gray matter in first episode schizophrenia, NeuroImage, 17, 1711, 10.1006\u002Fnimg.2002.1296\nLawrie, 1998, Brain abnormality in schizophrenia: a systematic and quantitative review of volumetric magnetic resonance imaging studies, British Journal of Psychiatry, 172, 110, 10.1192\u002Fbjp.172.2.110\nLiddle, 1992, Patterns of cerebral blood flow in schizophrenia, British Journal of Psychiatry, 160, 179, 10.1192\u002Fbjp.160.2.179\nMitelman, 2003, MRI assessment of gray and white matter distribution in Brodmann's areas of the cortex in patients with schizophrenia with good and poor outcome, American Journal of Psychiatry, 160, 2154, 10.1176\u002Fappi.ajp.160.12.2154\nNohara, 2000, Neural correlates of memory organization deficits in schizophrenia. A single photon emission computed tomography study with 99mTc-ethyl-cysteinate dimer during a verbal learning task, Schizophrenia Research, 42, 209, 10.1016\u002FS0920-9964(99)00131-0\nPaillère-Martinot, 2001, Cerebral gray and white matter reductions and clinical correlates in patients with early onset of schizophrenia, Schizophrenia Research, 50, 19, 10.1016\u002FS0920-9964(00)00137-7\nRajkowska, 1998, Neuronal and glial somal size in the prefrontal cortex. A postmortem morphometric study of schizophrenia and Huntington disease, Archives of General Psychiatry, 55, 215, 10.1001\u002Farchpsyc.55.3.215\nRussell, 2000, The National Adult Reading Test as a measure of premorbid IQ in schizophrenia, British Journal of Clinical Psychology, 39, 297, 10.1348\u002F014466500163301\nSelemon, 1995, Abnormally high neuronal density in the schizophrenic cortex, Archives of General Psychiatry, 52, 805, 10.1001\u002Farchpsyc.1995.03950220015005\nSerra-Mestres, 2000, Simple schizophrenia revisited: a clinical, neuropsychological, and neuroimaging analysis of nine cases, Schizophrenia Bulletin, 26, 479, 10.1093\u002Foxfordjournals.schbul.a033467\nShenton, 2001, A review of MRI findings in schizophrenia, Schizophrenia Research, 49, 1, 10.1016\u002FS0920-9964(01)00163-3\nSigmundsson, 2001, Structural abnormalities in frontal, temporal, and limbic regions and interconnecting white matter tracts in schizophrenic patients with prominent negative symptoms, American Journal of Psychiatry, 158, 234, 10.1176\u002Fappi.ajp.158.2.234\nSilverstein, 1982, Two- and four-subtest forms of the Wechsler Adult Intelligence Scale-Revised, Journal of Consulting and Clinical Psychology, 50, 415, 10.1037\u002F0022-006X.50.3.415\nSowell, 2001, Mapping continued brain growth and gray matter density reduction in dorsal frontal cortex: inverse relationships during postadolescent brain maturation, Journal of Neuroscience, 21, 8819, 10.1523\u002FJNEUROSCI.21-22-08819.2001\nSowell, 2003, Mapping cortical change across the human life span, Nature Neuroscience, 6, 309, 10.1038\u002Fnn1008\nStuss, 1986\nSullivan, 1998, A profile of cortical gray matter volume deficits characteristic of schizophrenia, Cerebral Cortex, 8, 117, 10.1093\u002Fcercor\u002F8.2.117\nSuzuki, 2002, Regional changes in brain gray and white matter in patients with schizophrenia demonstrated with voxel-based analysis of MRI, Schizophrenia Research, 55, 41, 10.1016\u002FS0920-9964(01)00224-9\nTalairach, 1988\nTaylor, 1996, Cerebral blood flow activation and functional lesions in schizophrenia, Schizophrenia Research, 19, 129, 10.1016\u002F0920-9964(95)00000-3\nWeinberger, 1986, Physiologic dysfunction of dorsolateral prefrontal cortex in schizophrenia: I. 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alterations in medication-free patients with bipolar disorder: A 3T CSF-corrected magnetic resonance spectroscopic imaging study",{"VOID":100},{"VOID":2335},"Alexander, 1986, Parallel organization of functionally segregated circuits linking basal ganglia and cortex, Annual Review of Neuroscience, 9, 357, 10.1146\u002Fannurev.ne.09.030186.002041\nAltman, 1997, The Altman self-rating mania scale, Biological Psychiatry, 42, 948, 10.1016\u002FS0006-3223(96)00548-3\nAmerican Psychiatric Association, 2000\nBeck, 1996, Comparison of Beck depression inventories-IA and -II in psychiatric outpatients, Journal of Personality Assessment, 67, 588, 10.1207\u002Fs15327752jpa6703_13\nBertolino, 2003, Neuronal pathology in the hippocampal area of patients with bipolar disorder: a study with proton magnetic resonance spectroscopic imaging, Biological Psychiatry, 53, 906, 10.1016\u002FS0006-3223(02)01911-X\nBrambilla, 2001, Anatomical MRI study of basal ganglia in bipolar disorder patients, Psychiatry Research: Neuroimaging, 106, 65, 10.1016\u002FS0925-4927(01)00073-7\nBrambilla, 2005, Magnetic resonance findings in bipolar disorder, Psychiatric Clinics of North America, 28, 443, 10.1016\u002Fj.psc.2005.01.006\nCastillo, 1998, Proton MR spectroscopy in psychiatric and neurodevelopmental childhood disorders: early experience, Neuroimaging Clinics of North America, 8, 901\nCastillo, 2000, Proton MR spectroscopy in children with bipolar affective disorder: preliminary observations, American Journal of Neuroradiology, 21, 832\nCecil, 2002, Frontal lobe differences in bipolar disorder as determined by proton MR spectroscopy, Bipolar Disorders, 4, 357, 10.1034\u002Fj.1399-5618.2002.02235.x\nCecil, 2003, Proton magnetic resonance spectroscopy of the frontal lobe and cerebellar vermis in children with a mood disorder and a familial risk for bipolar disorders, Journal of Child and Adolescent Psychopharmacology, 13, 545, 10.1089\u002F104454603322724931\nDager, 2004, Brain metabolic alterations in medication-free patients with bipolar disorder, Archives of General Psychiatry, 61, 450, 10.1001\u002Farchpsyc.61.5.450\nDavanzo, 2001, Decreased anterior cingulate myo-inositol\u002Fcreatine spectroscopy resonance with lithium treatment in children with bipolar disorder, Neuropsychopharmacology, 24, 359, 10.1016\u002FS0893-133X(00)00207-4\nDeicken, 2001, Increased thalamic N-acetylaspartate in male patients with familial bipolar I disorder, Psychiatry Research: Neuroimaging, 106, 35, 10.1016\u002FS0925-4927(00)00083-4\nDeicken, 2003, Lower concentration of hippocampal N-acetylaspartate in familial bipolar I disorder, American Journal of Psychiatry, 160, 873, 10.1176\u002Fappi.ajp.160.5.873\nDe Stefano, 2001, Evidence of axonal damage in the early stages of multiple sclerosis and its relevance to disability, Archives of Neurology, 58, 65, 10.1001\u002Farchneur.58.1.65\nFirst, 1996\nFrahm, 1991, On the N-acetyl methyl resonance in localized 1H NMR spectra of the human brain in vivo, NMR in Biomedicine, 4, 201, 10.1002\u002Fnbm.1940040408\nFukuzako, 1997, Metabolite changes with age measured by proton magnetic resonance spectroscopy in normal subjects, Psychiatry and Clinical Neurosciences, 51, 261, 10.1111\u002Fj.1440-1819.1997.tb02595.x\nGibbons, 2000, Mixed-effects models for mental health services research, Health Services and Outcomes Research Methodology, 1, 91, 10.1023\u002FA:1010018505011\nGuimaraes, 1995, Quantitative in vivo 1H nuclear magnetic resonance spectroscopic imaging of neuronal loss in rat brain, Neuroscience, 69, 1095, 10.1016\u002F0306-4522(95)00300-8\nHamakawa, 1998, Quantitative proton magnetic resonance spectroscopy of the basal ganglia in patients with affective disorders, European Archives of Psychiatry and Clinical Neuroscience, 248, 53, 10.1007\u002Fs004060050017\nHamakawa, 1999, Quantitative proton magnetic resonance spectroscopy of the bilateral frontal lobes in patients with bipolar disorder, Psychological Medicine, 29, 639, 10.1017\u002FS0033291799008442\nHarvey, 1991, Compliance during lithium treatment, intra-erythrocyte lithium variability, and relapse, Journal of Clinical Psychopharmacology, 11, 362, 10.1097\u002F00004714-199112000-00006\nHedeker, 1996, MIXOR: a computer program for mixed-effects ordinal regression analysis, Computer Methods and Programs in Biomedicine, 49, 157, 10.1016\u002F0169-2607(96)01720-8\nJenkins, 1993, Evidence for impairment of energy metabolism in vivo in Huntington's disease using localized 1H NMR spectroscopy, Neurology, 43, 2689, 10.1212\u002FWNL.43.12.2689\nKato, 1996, Lithium side effects in relation to brain lithium concentration measured by lithium-7 magnetic resonance spectroscopy, Progress in Neuro-psychopharmacology & Biological Psychiatry, 20, 87, 10.1016\u002F0278-5846(95)00294-4\nKato, 1998, Magnetic resonance spectroscopy in affective disorders, Journal of Neuropsychiatry and Clinical Neurosciences, 10, 133, 10.1176\u002Fjnp.10.2.133\nMcLean, 2000, Quantitative analysis of short echo time (1)H-MRSI of cerebral gray and white matter, Magnetic Resonance in Medicine, 44, 401, 10.1002\u002F1522-2594(200009)44:3\u003C401::AID-MRM10>3.0.CO;2-W\nMeyerhoff, 1994, Axonal injury and membrane alterations in Alzheimer's disease suggested by in vivo proton magnetic resonance spectroscopic imaging, Annals of Neurology, 36, 40, 10.1002\u002Fana.410360110\nMichael, 2003, Acute mania is accompanied by elevated glutamate\u002Fglutamine levels within the left dorsolateral prefrontal cortex, Psychopharmacology (Berl), 29, 639\nMoats, 1994, Abnormal cerebral metabolite concentrations in patients with probable Alzheimer disease, Magnetic Resonance in Medicine, 32, 110, 10.1002\u002Fmrm.1910320115\nMoore, 1999, Effects of myo-inositol ingestion on human brain myo-inositol levels: a proton magnetic resonance spectroscopic imaging study, Biological Psychiatry, 45, 1197, 10.1016\u002FS0006-3223(98)00249-2\nMoore, 2000, Choline, myo-inositol and mood in bipolar disorder: a proton magnetic resonance spectroscopic imaging study of the anterior cingulate cortex, Bipolar Disorders, 2, 207, 10.1034\u002Fj.1399-5618.2000.20302.x\nMoore, 2000, Lithium increases N-acetyl-aspartate in the human brain: in vivo evidence in support of bcl-2's neurotrophic effects?, Biological Psychiatry, 48, 1, 10.1016\u002FS0006-3223(00)00252-3\nMurashita, 2000, Altered brain energy metabolism in lithium-resistant bipolar disorder detected by photic stimulated P-MR spectroscopy, Psychological Medicine, 30, 107, 10.1017\u002FS0033291799001439\nMurray, C.J.L., Lopez, A.D., Harvard School of Public Health., World Health Organization. and World Bank, 1996. The global burden of disease: a comprehensive assessment of mortality and disability from diseases, injuries, and risk factors in 1990 and projected to 2020. [Cambridge, Mass.], Published by the Harvard School of Public Health on behalf of the World Health Organization and the World Bank: Distributed by Harvard University Press.\nOhara, 1998, Proton magnetic resonance spectroscopy of the lenticular nuclei in bipolar I affective disorder, Psychiatry Research: Neuroimaging, 84, 55, 10.1016\u002FS0925-4927(98)00050-X\nProvencher, 1993, Estimation of metabolite concentrations from localized in vivo proton NMR spectra, Magnetic Resonance in Medicine, 30, 672, 10.1002\u002Fmrm.1910300604\nRajkowska, 2001, Reductions in neuronal and glial density characterize the dorsolateral prefrontal cortex in bipolar disorder, Biological Psychiatry, 49, 741, 10.1016\u002FS0006-3223(01)01080-0\nSager, 1995, Changes in N-acetyl-aspartate content during focal and global brain ischemia of the rat, Journal of Cerebral Blood Flow and Metobolism, 15, 639, 10.1038\u002Fjcbfm.1995.79\nSager, 1999, N-Acetylaspartate distribution in rat brain striatum during acute brain ischemia, Journal of Cerebral Blood Flow and Metobolism, 19, 164, 10.1097\u002F00004647-199902000-00008\nSassi, 2005, Reduced NAA levels in the dorsolateral prefrontal cortex of young bipolar patients, American Journal of Psychiatry, 162, 2109, 10.1176\u002Fappi.ajp.162.11.2109\nSharma, 1992, Proton magnetic resonance spectroscopy of the brain in schizophrenic and affective patients, Schizophrenia Research, 8, 43, 10.1016\u002F0920-9964(92)90059-E\nSilverstone, 2004, Lithium and valproate protect against dextro-amphetamine induced brain choline concentration changes in bipolar disorder patients, World Journal of Biological Psychiatry, 5, 38, 10.1080\u002F15622970410029906\nSimmons, 1991, Immunocytochemical localization of N-acetyl-aspartate with monoclonal antibodies, Neuroscience, 45, 37, 10.1016\u002F0306-4522(91)90101-S\nSoares, 1997, Intracellular phosphatidylinositol pathway abnormalities in bipolar disorder patients, Psychopharmacology Bulletin, 33, 685\nStrakowski, 1999, Brain magnetic resonance imaging of structural abnormalities in bipolar disorder, Archives of General Psychiatry, 56, 254, 10.1001\u002Farchpsyc.56.3.254\nStrakowski, 2005, The functional neuroanatomy of bipolar disorder: a review of neuroimaging findings, Molecular Psychiatry, 10, 105, 10.1038\u002Fsj.mp.4001585\nSullivan, 2002, Rationale for long-term treatment of bipolar disorder and evidence for long-term lithium treatment, Journal of Clinical Psychiatry, 63, 1012\nWilke, 2004, Voxel-based morphometry in adolescents with bipolar disorder: first results, Psychiatry Research: Neuroimaging, 131, 57, 10.1016\u002Fj.pscychresns.2004.01.004\nWinsberg, 2000, Decreased dorsolateral prefrontal N-acetyl aspartate in bipolar disorder, Biological Psychiatry, 47, 475, 10.1016\u002FS0006-3223(99)00183-3\nYildiz-Yesiloglu, 2006, Neurochemical alterations of the brain in bipolar disorder and their implications for pathophysiology: a systematic review of the in vivo proton magnetic resonance spectroscopy findings, Progress in Neuro-Psychopharmacology & Biological Psychiatry, 30, 969, 10.1016\u002Fj.pnpbp.2006.03.012",{"VOID":2337},"10.1016\u002Fj.pscychresns.2007.08.004","2024-06-24T10:50:03.783+00:00","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0925492707001527",[2341,2356,2371,2384],{"id":2342,"sortIndex":19,"researcher":18,"roles":2343,"affiliations":2344,"properties":2353,"displayName":2355,"givenName":18,"familyName":18},"8a83a814-edf2-45e3-af00-bd367ecb8141",[114],[2345],{"id":2346,"sortIndex":19,"affiliation":2347,"properties":18},"544b8906-ded5-431a-bda0-579fba4c2ab4",{"id":2346,"createTime":18,"updateTime":18,"relativeEntities":2348,"slug":18,"properties":2349,"entityType":18,"verifyStatus":18,"verifyTime":18,"verifyNote":18,"languages":18,"translateLanguages":18,"viewCount":18,"url":18,"parentIds":2352,"statistic":18},[],{"title":2350},{"VI":2351},"Department of Radiology (Mayo E2A), Mayo Clinic, 200 First Street SW, Rochester, MN, 55905, USA",[],{"title":2354},{"VI":2355},"John D. 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