Literature DB >> 10050898

The size and fibre composition of the corpus callosum with respect to gender and schizophrenia: a post-mortem study.

J R Highley1, M M Esiri, B McDonald, M Cortina-Borja, B M Herron, T J Crow.   

Abstract

In this study the cross-sectional area (in n = 14 female controls, 15 male controls, 11 female patients with schizophrenia, 15 male patients with schizophrenia) and fibre composition (in n = 11 female controls, 10 male controls, 10 female patients with schizophrenia, 10 male patients with schizophrenia) of the corpus callosum in post-mortem control and schizophrenic brains was examined. A gender x diagnosis interaction (P = 0.005) was seen in the density of axons in all regions of the corpus callosum except the posterior midbody and splenium. Amongst controls, females had greater density than males; in patients with schizophrenia this difference was reversed. A reduction in the total number of fibres in all regions of the corpus callosum except the rostrum was observed in female schizophrenic patients (P = 0.006; when controlling for brain weight, P = 0.053). A trend towards a reduced cross-sectional area of the corpus callosum was seen in schizophrenia (P = 0.098); however, this is likely to be no more than a reflection of an overall reduction in brain size. With age, all subregions of the corpus callosum except the rostrum showed a significant reduction in cross-sectional area (P = 0.018) and total fibre number (P = 0.002). These findings suggest that in schizophrenia there is a subtle and gender-dependent alteration in the forebrain commissures that may relate to the deviations in asymmetry seen in other studies, but the precise anatomical explanation remains obscure.

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Year:  1999        PMID: 10050898     DOI: 10.1093/brain/122.1.99

Source DB:  PubMed          Journal:  Brain        ISSN: 0006-8950            Impact factor:   13.501


  54 in total

1.  Evidence for white matter abnormalities in schizophrenia.

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2.  Fiber geometry in the corpus callosum in schizophrenia: evidence for transcallosal misconnection.

Authors:  Thomas J Whitford; Peter Savadjiev; Marek Kubicki; Lauren J O'Donnell; Douglas P Terry; Sylvain Bouix; Carl-Fredrik Westin; Jason S Schneiderman; Laurel Bobrow; Andrew C Rausch; Margaret Niznikiewicz; Paul G Nestor; Christos Pantelis; Stephen J Wood; Robert W McCarley; Martha E Shenton
Journal:  Schizophr Res       Date:  2011-08-09       Impact factor: 4.939

3.  The corpus callosum in primates: processing speed of axons and the evolution of hemispheric asymmetry.

Authors:  Kimberley A Phillips; Cheryl D Stimpson; Jeroen B Smaers; Mary Ann Raghanti; Bob Jacobs; Anastas Popratiloff; Patrick R Hof; Chet C Sherwood
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4.  A schizophrenia risk gene, ZNF804A, is associated with brain white matter microstructure.

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5.  Sexual dimorphism in the human corpus callosum: an MRI study using the OASIS brain database.

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Review 7.  Auditory cortex asymmetry, altered minicolumn spacing and absence of ageing effects in schizophrenia.

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Journal:  Brain Res       Date:  2008-10-28       Impact factor: 3.252

9.  Callosal Abnormalities Across the Psychosis Dimension: Bipolar Schizophrenia Network on Intermediate Phenotypes.

Authors:  Alan N Francis; Suraj S Mothi; Ian T Mathew; Neeraj Tandon; Brett Clementz; Godfrey D Pearlson; John A Sweeney; Carol A Tamminga; Matcheri S Keshavan
Journal:  Biol Psychiatry       Date:  2016-01-12       Impact factor: 13.382

10.  Reduced interhemispheric connectivity in schizophrenia-tractography based segmentation of the corpus callosum.

Authors:  M Kubicki; M Styner; S Bouix; G Gerig; D Markant; K Smith; R Kikinis; R W McCarley; M E Shenton
Journal:  Schizophr Res       Date:  2008-09-30       Impact factor: 4.939

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