Literature DB >> 20832784

The anatomy of the callosal and visual-association pathways in high-functioning autism: a DTI tractography study.

Cibu Thomas1, Kate Humphreys, Kwan-Jin Jung, Nancy Minshew, Marlene Behrmann.   

Abstract

There is increasing recognition that many of the core behavioral impairments that characterize autism potentially emerge from poor neural synchronization across nodes comprising dispersed cortical networks. A likely candidate for the source of this atypical functional connectivity in autism is an alteration in the structural integrity of intra- and inter-hemispheric white matter (WM) tracts that form large-scale cortical networks. To test this hypothesis, in a group of adults with high-functioning autism (HFA) and matched control participants, we used diffusion tensor tractography to compare the structural integrity of three intra-hemispheric visual-association WM tracts, the inferior longitudinal fasciculus (ILF), the inferior fronto-occipito fasciculus (IFOF) and the uncinate fasciculus (UF), with the integrity of three sub-portions of the major inter-hemispheric fiber tract, the corpus callosum. Compared with the control group, the HFA group evinced an increase in the volume of the intra-hemispheric fibers, particularly in the left hemisphere, and a reduction in the volume of the forceps minor (F-Mi) and body of the corpus callosum. The reduction in the volume of the F-Mi also correlated with an increase in repetitive and stereotypical behavior as measured by the Autism Diagnostic Interview. These findings suggest that the abnormalities in the integrity of key inter- and intra-hemispheric WM tracts may underlie the atypical information processing observed in these individuals.
Copyright © 2010 Elsevier Srl. All rights reserved.

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Year:  2010        PMID: 20832784      PMCID: PMC3020270          DOI: 10.1016/j.cortex.2010.07.006

Source DB:  PubMed          Journal:  Cortex        ISSN: 0010-9452            Impact factor:   4.027


  56 in total

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2.  Development of the corpus callosum in childhood, adolescence and early adulthood.

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Review 3.  Processing and visualization for diffusion tensor MRI.

Authors:  C-F Westin; S E Maier; H Mamata; A Nabavi; F A Jolesz; R Kikinis
Journal:  Med Image Anal       Date:  2002-06       Impact factor: 8.545

4.  Analysis of noise effects on DTI-based tractography using the brute-force and multi-ROI approach.

Authors:  Hao Huang; Jiangyang Zhang; Peter C M van Zijl; Susumu Mori
Journal:  Magn Reson Med       Date:  2004-09       Impact factor: 4.668

5.  A developmental study of the structural integrity of white matter in autism.

Authors:  Timothy A Keller; Rajesh K Kana; Marcel Adam Just
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6.  Reduced structural connectivity in ventral visual cortex in congenital prosopagnosia.

Authors:  Cibu Thomas; Galia Avidan; Kate Humphreys; Kwan-jin Jung; Fuqiang Gao; Marlene Behrmann
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7.  Functional and anatomical cortical underconnectivity in autism: evidence from an FMRI study of an executive function task and corpus callosum morphometry.

Authors:  Marcel Adam Just; Vladimir L Cherkassky; Timothy A Keller; Rajesh K Kana; Nancy J Minshew
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Authors:  J Piven; J Bailey; B J Ranson; S Arndt
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  59 in total

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Review 2.  Diffusion tensor imaging in autism spectrum disorder: a review.

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6.  Susceptibility to distraction in autism spectrum disorder: probing the integrity of oscillatory alpha-band suppression mechanisms.

Authors:  Jeremy W Murphy; John J Foxe; Joanna B Peters; Sophie Molholm
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7.  Diffusion tensor imaging in young children with autism: biological effects and potential confounds.

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8.  Individual differences in white matter microstructure predict semantic control.

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10.  Convergent synaptic and circuit substrates underlying autism genetic risks.

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