Mapping Anatomical Connectivity Patterns of Human Cerebral Cortex Using In Vivo Diffusion Tensor Imaging Tractography
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Open Access
- 20 June 2008
- journal article
- research article
- Published by Oxford University Press (OUP) in Cerebral Cortex
- Vol. 19 (3) , 524-536
- https://doi.org/10.1093/cercor/bhn102
Abstract
The characterization of the topological architecture of complex networks underlying the structural and functional organization of the brain is a basic challenge in neuroscience. However, direct evidence for anatomical connectivity networks in the human brain remains scarce. Here, we utilized diffusion tensor imaging deterministic tractography to construct a macroscale anatomical network capturing the underlying common connectivity pattern of human cerebral cortex in a large sample of subjects (80 young adults) and further quantitatively analyzed its topological properties with graph theoretical approaches. The cerebral cortex was divided into 78 cortical regions, each representing a network node, and 2 cortical regions were considered connected if the probability of fiber connections exceeded a statistical criterion. The topological parameters of the established cortical network (binarized) resemble that of a “small-world” architecture characterized by an exponentially truncated power-law distribution. These characteristics imply high resilience to localized damage. Furthermore, this cortical network was characterized by major hub regions in association cortices that were connected by bridge connections following long-range white matter pathways. Our results are compatible with previous structural and functional brain networks studies and provide insight into the organizational principles of human brain anatomical networks that underlie functional states.Keywords
This publication has 73 references indexed in Scilit:
- Efficiency and Cost of Economical Brain Functional NetworksPLoS Computational Biology, 2007
- Probabilistic diffusion tractography with multiple fibre orientations: What can we gain?NeuroImage, 2007
- White Matter Pathway Asymmetry Underlies Functional LateralizationCerebral Cortex, 2006
- A Resilient, Low-Frequency, Small-World Human Brain Functional Network with Highly Connected Association Cortical HubsJournal of Neuroscience, 2006
- The basis of anisotropic water diffusion in the nervous system – a technical reviewNMR in Biomedicine, 2002
- In vivo fiber tractography using DT-MRI dataMagnetic Resonance in Medicine, 2000
- Classes of small-world networksProceedings of the National Academy of Sciences, 2000
- Error and attack tolerance of complex networksNature, 2000
- Broca's region revisited: Cytoarchitecture and intersubject variabilityJournal of Comparative Neurology, 1999
- Microstructural and Physiological Features of Tissues Elucidated by Quantitative-Diffusion-Tensor MRIJournal of Magnetic Resonance, Series B, 1996