Skip to main content
Top
Published in: European Radiology 4/2010

01-04-2010 | Computer Applications

Three-dimensional textural analysis of brain images reveals distributed grey-matter abnormalities in schizophrenia

Authors: Balaji Ganeshan, Kenneth A. Miles, Rupert C. D. Young, Christopher R. Chatwin, Hugh M. D. Gurling, Hugo D. Critchley

Published in: European Radiology | Issue 4/2010

Login to get access

Abstract

Objectives

Three-dimensional (3-D) selective- and relative-scale texture analysis (TA) was applied to structural magnetic resonance (MR) brain images to quantify the presence of grey-matter (GM) and white-matter (WM) textural abnormalities associated with schizophrenia.

Materials and methods

Brain TA comprised volume filtration using the Laplacian of Gaussian filter to highlight fine, medium and coarse textures within GM and WM, followed by texture quantification. Relative TA (e.g. ratio of fine to medium) was also computed. T1-weighted MR whole-brain images from 32 participants with diagnosis of schizophrenia (n = 10) and healthy controls (n = 22) were examined. Five patients possessed marker alleles (SZ8) associated with schizophrenia on chromosome 8 in the pericentriolar material 1 gene while the remaining five had not inherited any of the alleles (SZ0).

Results

Filtered fine GM texture (mean grey-level intensity; MGI) most significantly differentiated schizophrenic patients from controls (P = 0.0058; area under the receiver-operating characteristic curve = 0.809, sensitivity = 90%, specificity = 70%). WM measurements did not distinguish the two groups. Filtered GM and WM textures (MGI) correlated with total GM and WM volume respectively. Medium-to-coarse GM entropy distinguished SZ0 from controls (P = 0.0069) while measures from SZ8 were intermediate between the two.

Conclusions

3-D TA of brain MR enables detection of subtle distributed morphological features associated with schizophrenia, determined partly by susceptibility genes.
Literature
1.
go back to reference Woolley J, McGuire P (2005) Neuroimaging in schizophrenia: what does it tell the clinician? Adv Psychiatr Treat 11:195–202CrossRef Woolley J, McGuire P (2005) Neuroimaging in schizophrenia: what does it tell the clinician? Adv Psychiatr Treat 11:195–202CrossRef
2.
go back to reference Weinberger DR, Torrey EF, Neophytides AN, Wyatt RJ (1979) Structural abnormalities in the cerebral cortex of chronic schizophrenic patients. Arch Gen Psychiatr 36:935–939PubMed Weinberger DR, Torrey EF, Neophytides AN, Wyatt RJ (1979) Structural abnormalities in the cerebral cortex of chronic schizophrenic patients. Arch Gen Psychiatr 36:935–939PubMed
3.
go back to reference Johnstone EC, Crow TJ, Frith CD et al (1976) Cerebral ventricular size and cognitive impairment in chronic schizophrenia. Lancet 2:924–926CrossRefPubMed Johnstone EC, Crow TJ, Frith CD et al (1976) Cerebral ventricular size and cognitive impairment in chronic schizophrenia. Lancet 2:924–926CrossRefPubMed
4.
go back to reference Harvey I, Ron MA, Du Boulay G et al (1993) Reduction of cortical volume in schizophrenia on magnetic resonance imaging. Psychol Med 23:591–604CrossRefPubMed Harvey I, Ron MA, Du Boulay G et al (1993) Reduction of cortical volume in schizophrenia on magnetic resonance imaging. Psychol Med 23:591–604CrossRefPubMed
5.
go back to reference Lim KO, Tew W, Kushner M et al (1996) Cortical grey matter volume deficit in patients with first-episode schizophrenia. Am J Psychiatr 153:1548–1553PubMed Lim KO, Tew W, Kushner M et al (1996) Cortical grey matter volume deficit in patients with first-episode schizophrenia. Am J Psychiatr 153:1548–1553PubMed
6.
go back to reference Wright IC, Rabe-Hesketh S, Woodruff PW et al (2000) Meta-analysis of regional brain volumes in schizophrenia. Am J Psychiatr 157:16–25PubMed Wright IC, Rabe-Hesketh S, Woodruff PW et al (2000) Meta-analysis of regional brain volumes in schizophrenia. Am J Psychiatr 157:16–25PubMed
7.
go back to reference Nelson MD, Saykin AJ, Flashman LA et al (1998) Hippocampal volume reduction in schizophrenia as assessed by magnetic resonance imaging: a meta-analytic study. Arch Gen Psychiatr 55:433–440CrossRefPubMed Nelson MD, Saykin AJ, Flashman LA et al (1998) Hippocampal volume reduction in schizophrenia as assessed by magnetic resonance imaging: a meta-analytic study. Arch Gen Psychiatr 55:433–440CrossRefPubMed
8.
go back to reference Gur RE, Maany V, Mozley PD et al (1998) Subcortical MRI volumes in neuroleptic-naive and treated patients with schizophrenia. Am J Psychiatr 155:1711–1717PubMed Gur RE, Maany V, Mozley PD et al (1998) Subcortical MRI volumes in neuroleptic-naive and treated patients with schizophrenia. Am J Psychiatr 155:1711–1717PubMed
9.
go back to reference Lawrie SM, McIntosh AM, Hall J et al (2008) Brain structure and function changes during the development of schizophrenia: the evidence from studies of subjects at increased genetic risk. Schizophr Bull 34:330–340CrossRefPubMed Lawrie SM, McIntosh AM, Hall J et al (2008) Brain structure and function changes during the development of schizophrenia: the evidence from studies of subjects at increased genetic risk. Schizophr Bull 34:330–340CrossRefPubMed
10.
go back to reference Lawrie SM, Abukmeil SS (1998) Brain abnormality in schizophrenia. A systematic and quantitative review of volumetric magnetic resonance imaging studies. Br J Psychiatr 160:179–186 Lawrie SM, Abukmeil SS (1998) Brain abnormality in schizophrenia. A systematic and quantitative review of volumetric magnetic resonance imaging studies. Br J Psychiatr 160:179–186
11.
go back to reference Liddle PF (1987) Schizophrenic syndromes, cognitive performance and neurological dysfunction. Psychol Med 17:49–57CrossRefPubMed Liddle PF (1987) Schizophrenic syndromes, cognitive performance and neurological dysfunction. Psychol Med 17:49–57CrossRefPubMed
12.
go back to reference Lerski R (2006) Clinical applications of texture analysis. In: Hajek M, Dezortova M, Materka A, Lerski R (eds) Texture analysis for magnetic resonance imaging. Med4publishing, Prague, pp 151–187 Lerski R (2006) Clinical applications of texture analysis. In: Hajek M, Dezortova M, Materka A, Lerski R (eds) Texture analysis for magnetic resonance imaging. Med4publishing, Prague, pp 151–187
13.
go back to reference Kloppel S, Stonnington CM et al (2008) Automatic classification of MR scans in Alzheimer’s disease. Brain 131:681–689CrossRefPubMed Kloppel S, Stonnington CM et al (2008) Automatic classification of MR scans in Alzheimer’s disease. Brain 131:681–689CrossRefPubMed
14.
go back to reference Freeborough PA, Fox NC (1998) MR image texture analysis applied to the diagnosis and tracking of Alzheimer’s disease. IEEE Trans Med Imag 17:475–479CrossRef Freeborough PA, Fox NC (1998) MR image texture analysis applied to the diagnosis and tracking of Alzheimer’s disease. IEEE Trans Med Imag 17:475–479CrossRef
15.
go back to reference Liu Y, Teverovskiy L, Carmichael O et al (2004) Discriminative MR image feature analysis for automatic schizophrenia and Alzheimer’s disease classification. Technical report CMU-RI-TR-04-15. The Robotics Institute, Carnegie Mellon University, Pittsburgh Liu Y, Teverovskiy L, Carmichael O et al (2004) Discriminative MR image feature analysis for automatic schizophrenia and Alzheimer’s disease classification. Technical report CMU-RI-TR-04-15. The Robotics Institute, Carnegie Mellon University, Pittsburgh
16.
go back to reference Kovalev VA, Petrou M, Suckling J (2003) Detection of structural differences between the brains of schizophrenic patients and controls. Psychiatr Res 124:177–189CrossRef Kovalev VA, Petrou M, Suckling J (2003) Detection of structural differences between the brains of schizophrenic patients and controls. Psychiatr Res 124:177–189CrossRef
17.
go back to reference Im K, Lee JM et al (2006) Fractal dimension in human cortical surface: multiple regression analysis with cortical thickness, sulcal depth, and folding area. Hum Brain Mapp 27:994–1003CrossRefPubMed Im K, Lee JM et al (2006) Fractal dimension in human cortical surface: multiple regression analysis with cortical thickness, sulcal depth, and folding area. Hum Brain Mapp 27:994–1003CrossRefPubMed
18.
go back to reference Gurling H, Critchley H, Datta SR et al (2006) Genetic association and brain morphology studies and the chromosome 8p22 pericentriolar material 1 (PCM1) gene in susceptibility to schizophrenia. Arch Gen Psychiatr 63:844–854CrossRefPubMed Gurling H, Critchley H, Datta SR et al (2006) Genetic association and brain morphology studies and the chromosome 8p22 pericentriolar material 1 (PCM1) gene in susceptibility to schizophrenia. Arch Gen Psychiatr 63:844–854CrossRefPubMed
19.
go back to reference Deichmann R, Good CD, Josephs O, Ashburner J, Turner R (2000) Optimization of 3-D MP-RAGE sequences for structural brain imaging. NeuroImage 12:112–127CrossRefPubMed Deichmann R, Good CD, Josephs O, Ashburner J, Turner R (2000) Optimization of 3-D MP-RAGE sequences for structural brain imaging. NeuroImage 12:112–127CrossRefPubMed
20.
21.
go back to reference Ganeshan B, Miles KA, Young RCD, Chatwin CR (2008) Three dimensional selective-scale texture analysis of CT pulmonary angiograms. Invest Radiol 43:382–394CrossRefPubMed Ganeshan B, Miles KA, Young RCD, Chatwin CR (2008) Three dimensional selective-scale texture analysis of CT pulmonary angiograms. Invest Radiol 43:382–394CrossRefPubMed
22.
go back to reference Jonsson SA, Luts A, Guldberg-Kjaer N, Ohman R (1999) Pyramidal neuron size in the hippocampus of schizophrenics correlates with total cell count and degree of cell disarray. Eur Arch Psychiatr Clin Neurosci 249:169–173CrossRef Jonsson SA, Luts A, Guldberg-Kjaer N, Ohman R (1999) Pyramidal neuron size in the hippocampus of schizophrenics correlates with total cell count and degree of cell disarray. Eur Arch Psychiatr Clin Neurosci 249:169–173CrossRef
23.
go back to reference Casanova MF, Rothberg B (2002) Shape distortion of the hippocampus: a possible explanation of the pyramidal cell disarray reported in schizophrenia. Schizophr Res 55:19–24CrossRefPubMed Casanova MF, Rothberg B (2002) Shape distortion of the hippocampus: a possible explanation of the pyramidal cell disarray reported in schizophrenia. Schizophr Res 55:19–24CrossRefPubMed
24.
go back to reference Roberts RC, Roche JK, Conley RR (2005) Synaptic differences in the postmortem striatum of subjects with schizophrenia: a stereological ultrastructural analysis. Synapse 56:185–197CrossRefPubMed Roberts RC, Roche JK, Conley RR (2005) Synaptic differences in the postmortem striatum of subjects with schizophrenia: a stereological ultrastructural analysis. Synapse 56:185–197CrossRefPubMed
25.
go back to reference Tabarés-Seisdedos R, Escámez T et al (2006) Variations in genes regulating neuronal migration predict reduced prefrontal cognition in schizophrenia and bipolar subjects from Mediterranean Spain: a preliminary study. Neuroscience 139:1289–1300CrossRefPubMed Tabarés-Seisdedos R, Escámez T et al (2006) Variations in genes regulating neuronal migration predict reduced prefrontal cognition in schizophrenia and bipolar subjects from Mediterranean Spain: a preliminary study. Neuroscience 139:1289–1300CrossRefPubMed
26.
go back to reference Haroutunian V, Davis KL (2007) Introduction to the special section: myelin and oligodendrocyte abnormalities in schizophrenia. Int J Neuropsychopharmacol 10:499–502CrossRefPubMed Haroutunian V, Davis KL (2007) Introduction to the special section: myelin and oligodendrocyte abnormalities in schizophrenia. Int J Neuropsychopharmacol 10:499–502CrossRefPubMed
27.
go back to reference Konrad A, Winterer G (2008) Disturbed structural connectivity in schizophrenia sprimary factor in pathology or epiphenomenon? Schizophr Bull 34:72–92CrossRefPubMed Konrad A, Winterer G (2008) Disturbed structural connectivity in schizophrenia sprimary factor in pathology or epiphenomenon? Schizophr Bull 34:72–92CrossRefPubMed
28.
go back to reference Zilles K (1990) In: Paxinos G (ed) The human nervous system. Academic, San Diego, pp 757–802 Zilles K (1990) In: Paxinos G (ed) The human nervous system. Academic, San Diego, pp 757–802
29.
go back to reference Von Economo C (1929) The cytoarchitectonics of the human cerebral cortex. Oxford University Press, London Von Economo C (1929) The cytoarchitectonics of the human cerebral cortex. Oxford University Press, London
30.
go back to reference Moorhead TWJ, Harris JM et al (2006) Automated computation of the gyrification index in prefrontal lobes: methods and comparison with manual implementation. NeuroImage 31:1560–1566CrossRefPubMed Moorhead TWJ, Harris JM et al (2006) Automated computation of the gyrification index in prefrontal lobes: methods and comparison with manual implementation. NeuroImage 31:1560–1566CrossRefPubMed
31.
go back to reference Fischl B, Dale AM (2000) Measuring the thickness of the human cerebral cortex from magnetic resonance images. PNAS 97:11050–11055CrossRefPubMed Fischl B, Dale AM (2000) Measuring the thickness of the human cerebral cortex from magnetic resonance images. PNAS 97:11050–11055CrossRefPubMed
32.
go back to reference Harris JM, Yates S et al (2004) Gyrification in first-episode schizophrenia: a morphometric study. Biol Psychiatr 55:141–147CrossRef Harris JM, Yates S et al (2004) Gyrification in first-episode schizophrenia: a morphometric study. Biol Psychiatr 55:141–147CrossRef
33.
go back to reference Kulynych JJ, Luevano LF et al (1997) Cortical abnormality in schizophrenia: an in vivo application of the gyrification index. Biol Psychiatr 41:995–999CrossRef Kulynych JJ, Luevano LF et al (1997) Cortical abnormality in schizophrenia: an in vivo application of the gyrification index. Biol Psychiatr 41:995–999CrossRef
34.
go back to reference Sallet PC, Elkis H et al (2003) Reduced cortical folding in schizophrenia: an MRI morphometric study. Am J Psychiatr 160:1606–1613CrossRefPubMed Sallet PC, Elkis H et al (2003) Reduced cortical folding in schizophrenia: an MRI morphometric study. Am J Psychiatr 160:1606–1613CrossRefPubMed
35.
go back to reference Vogeley K, Tepest R et al (2001) Right frontal hypergyria differentiation in affected and unaffected siblings from families multiply affected with schizophrenia: a morphometric MRI study. Am J Psychiatr 158:494–496CrossRefPubMed Vogeley K, Tepest R et al (2001) Right frontal hypergyria differentiation in affected and unaffected siblings from families multiply affected with schizophrenia: a morphometric MRI study. Am J Psychiatr 158:494–496CrossRefPubMed
36.
go back to reference Harris JM, Whalley H et al (2004) Abnormal cortical folding in high risk individuals: a predictor of the development of schizophrenia? Biol Psychiatr 56:182–189CrossRef Harris JM, Whalley H et al (2004) Abnormal cortical folding in high risk individuals: a predictor of the development of schizophrenia? Biol Psychiatr 56:182–189CrossRef
38.
go back to reference Kendler KS, Myers JM et al (2000) Clinical features of schizophrenia and linkage to chromosomes 5q, 6p, 8p, and 10p in the Irish study of high density schizophrenia families. Am J Psychiatr 157:402–408CrossRefPubMed Kendler KS, Myers JM et al (2000) Clinical features of schizophrenia and linkage to chromosomes 5q, 6p, 8p, and 10p in the Irish study of high density schizophrenia families. Am J Psychiatr 157:402–408CrossRefPubMed
Metadata
Title
Three-dimensional textural analysis of brain images reveals distributed grey-matter abnormalities in schizophrenia
Authors
Balaji Ganeshan
Kenneth A. Miles
Rupert C. D. Young
Christopher R. Chatwin
Hugh M. D. Gurling
Hugo D. Critchley
Publication date
01-04-2010
Publisher
Springer-Verlag
Published in
European Radiology / Issue 4/2010
Print ISSN: 0938-7994
Electronic ISSN: 1432-1084
DOI
https://doi.org/10.1007/s00330-009-1605-1

Other articles of this Issue 4/2010

European Radiology 4/2010 Go to the issue